CA2881742A1 - Dressing and apparatus for cleansing the wounds - Google Patents

Dressing and apparatus for cleansing the wounds Download PDF

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Publication number
CA2881742A1
CA2881742A1 CA2881742A CA2881742A CA2881742A1 CA 2881742 A1 CA2881742 A1 CA 2881742A1 CA 2881742 A CA2881742 A CA 2881742A CA 2881742 A CA2881742 A CA 2881742A CA 2881742 A1 CA2881742 A1 CA 2881742A1
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Prior art keywords
wound
fluid
dressing
negative pressure
tube
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Granted
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CA2881742A
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French (fr)
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CA2881742C (en
Inventor
Patrick Lewis Blott
Edward Yerbury Hartwell
Julian Lee-Webb
Derek Nicolini
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Smith and Nephew PLC
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Smith and Nephew PLC
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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/92Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing with liquid supply means
    • A61F13/05
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/71Suction drainage systems
    • A61M1/74Suction control
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/71Suction drainage systems
    • A61M1/74Suction control
    • A61M1/75Intermittent or pulsating suction
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/84Drainage tubes; Aspiration tips
    • A61M1/85Drainage tubes; Aspiration tips with gas or fluid supply means, e.g. for supplying rinsing fluids or anticoagulants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/91Suction aspects of the dressing
    • A61M1/915Constructional details of the pressure distribution manifold
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/91Suction aspects of the dressing
    • A61M1/916Suction aspects of the dressing specially adapted for deep wounds
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/96Suction control thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/96Suction control thereof
    • A61M1/964Suction control thereof having venting means on or near the dressing
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M27/00Drainage appliance for wounds or the like, i.e. wound drains, implanted drains
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M35/00Devices for applying media, e.g. remedies, on the human body
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M1/00Suction or pumping devices for medical purposes; Devices for carrying-off, for treatment of, or for carrying-over, body-liquids; Drainage systems
    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
    • A61M1/96Suction control thereof
    • A61M1/962Suction control thereof having pumping means on the suction site, e.g. miniature pump on dressing or dressing capable of exerting suction

Abstract

A dressing and an apparatus comprising the dressing, for cleansing the wounds in which an irrigant fluid from a reservoir connected to a conformable would dressing and would exudate from the dressing are moved by a device (which may be a single pump or two pumps) for moving fluid through a flow Path which passes through the dressing with a means for providing simultaneous aspiration and irrigation of the wound, to provide a desired balance of fluid at a controlled nominal flow rate that removes materials deleterious to wound healing, while distributing materials that are beneficial in promoting would healing over the wound bed.

Description

DRESSING AND APPARATUS FOR CLEANSING THE WOUNDS
This is a divisional of Canadian Patent Application No. 2,563,994, filed October 23, 2006.
The present invention relates to apparatus and a medical wound dressing for aspirating, irrigating and/or cleansing wounds, and a method of treating wounds using such apparatus for aspirating, irrigating and/or cleansing wounds.
It relates in particular to such an apparatus, wound dressing and method that can be easily applied to a wide variety of, but in particular chronic, wounds, to cleanse them of materials that are deleterious to wound healing, whilst distributing materials that are beneficial in some therapeutic aspect, in particular to wound healing.
Aspirating and/or irrigating apparatus are known, and tend to be used to remove wound exudate during wound therapy. In known forms of such wound therapy, aspiration and irrigation of the wound take place sequentially.
Each part of the therapy cycle is beneficial in promoting wound healing:
Aspiration applies a negative pressure to the wound, which is beneficial in itself in promoting wound healing by removing materials deleterious to wound healing with the wound exudate, reducing bacterial load, combating peri-wound oedema, increasing local blood flow to the wound and encouraging the formation of wound bed granulation tissue.
Irrigation cleanses wounds of materials that are deleterious to wound healing by diluting and moving wound exudate (which is typically relatively little fluid and may be of relatively high viscosity and particulate-filled.
Additionally, relatively little of beneficial materials involved in promoting wound healing (such as cytokines, enzymes, growth factors, cell matrix components, biological signalling molecules and other physiologically active components of the exudate) are present in a wound, and are not well =
distributed in the wound, i.e. they are not necessarily present in parts of the wound bed where they can be potentially of most benefit. These may be distributed by irrigation of the wound and thus aid in promoting wound healing. =
2 The irrigant may additionally contain materials that are potentially or actually beneficial in respect of wound healing, such as nutrients for wound cells to aid proliferation, and gases, such as oxygen. These may be distributed by irrigation of the wound and thus aid in promoting wound healing.
If aspiration and irrigation therapy is applied sequentially to a wound, the two therapies, each of which is beneficial in promoting wound healing, can only be applied intermittently.
Thus, the wound will lose the abovementioned known beneficial effects of aspiration therapy on wound healing, at least in part, while that aspiration is suspended during irrigation.
Additionally, for a given aspirate flow, whilst materials that are potentially or actually deleterious in respect of wound healing are removed from wound exudate, the removal in a given time period of application of the total irrigate and/or aspirate therapy will normally be less effective and/or slower than with continuous application of aspiration.
Even less to be desired, is that while aspiration is not applied to the wound, wound exudate and materials deleterious to wound healing (such as bacteria and debris, and iron II and iron III and for chronic wounds proteases, such as serine proteases) will pool on the wound bed and hinder wound healing, especially in a highly exuding wound. The influx of local oedema will also add to the chronicity of the wound. This is especially the case in chronic wounds.
Depending on the relative volumes of irrigant and wound exudate, the mixed exudate-irrigant fluid and may be of relatively high viscosity and/or particulate-filled. Once it is present and has pooled, it may be more difficult to shift by the application of aspiration in a conventional sequential aspirate ¨ irrigate ¨ dwell cycle than with continuous simultaneous aspiration of the wound, owing to the viscosity and blockage in the system.
3 The wound will also lose the abovementioned beneficial effects of irrigation therapy on wound healing, at least in part, while that irrigation is suspended during aspiration.
These benefits in promoting wound healing include the movement of materials that are beneficial in promoting wound healing, such as those mentioned above.
Additionally, for a given irrigant flow, the cleansing of the wound and the distribution by irrigation of the wound of such beneficial materials in a given time period of application of the total irrigate and/or aspirate therapy when such therapy is in a conventional sequential aspirate ¨ irrigate ¨ dwell cycle will normally be less effective and/or slower than with continuous application of aspiration.
Such known forms of aspiration and/or irrigation therapy systems also often create a wound environment that may result in the loss of optimum performance of the body's own tissue healing processes, and slow healing and/or in weak new tissue growth that does not have a strong three-dimensional structure adhering well to and growing from the wound bed.
This is a significant disadvantage, in particular in chronic wounds.
The relevant devices tend not to be portable.
it thus would be desirable to provide a system of aspiration and irrigation therapy for a wound, which can remove wound exudate and materials deleterious to wound healing from contact with the wound bed, whilst simultaneously cleansing it and distributing materials that are beneficial in promoting wound healing across it.
It is an object of the present invention to obviate at least some of the abovementioned disadvantages of known aspiration and/or irrigation therapy systems.
lt is a yet further object of the present invention
4 a) to obviate at least some of the abovementioned disadvantages of known aspiration and/or irrigation systems, and b) is portable.
Vascular supply to, and aspiration in, tissue underlying and surrounding the wound is often compromised.
t is a further object of the present invention to provide a system of therapy that also promotes vascular supply to tissue underlying and surrounding a wound, promoting wound healing.
Thus, according to a first aspect of the present invention there is provided an apparatus for aspirating, irrigating and/or cleansing wounds, comprising a) a fluid flow path, comprising a conformable wound dressing, having a backing layer which is capable of forming a relatively fluid-tight seal or closure over a wound and at least one inlet pipe for connection to a fluid supply tube, which passes through and/or under the wound-facing face, and and at least one outlet pipe for connection to a fluid offtake tube, which passes through and/or under the wound-facing face, the point at which the or each inlet pipe and the or each outlet pipe passes through and/or under the wound-facing face forming a relatively fluid-tight seal or closure over the wound;
b) a fluid reservoir connected by a fluid supply tube to an inlet pipe via optional means for supply flow regulation;
c) at least one device for moving fluid through the wound dressing;
characterised in that it comprises d) means for providing simultaneous aspiration and irrigation of the wound, such that fluid may be supplied to fill the flowpath from the fluid reservoir via the fluid supply tube (optionally via means for supply flow =
regulation) while fluid is aspirated by a device through the fluid offtake tube (optionally or as necessary via means for aspirate flow regulation).

Where any pipe is described in connection with the apparatus as being connected or for connection to a (mating end of a) tube, e.g. a fluid supply tube or fluid offtake tube, the pipe and the tube may form a single integer in the flow path.
5 The present invention in this aspect provides several advantages.
One is that application of an irrigant to a wound under simultaneous aspiration creates a wound environment that is exposed to the continuous beneficial effects of both aspects of the therapy for wound healing, as opposed to the sequential intermittent application of irrigant flow and aspiration in known aspirating and/or irrigating apparatus. The latter result in less than optimum performance of the body's own tissue healing processes, and slower healing and/or weaker tissue growth that does not have a strong three-dimensional structure adhering well to and growing from the wound bed. This is a significant disadvantage, in particular in chronic wounds.
Thus, the use of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds retains and enhances the beneficial effects of aspiration in respect of wound healing by continuous and preferably constant aspiration. These include removing materials deleterious to wound healing with the wound exudate, reducing bacterial load, combating peri-wound oedema and encouraging the formation of wound bed granulation tissue.
Preferred embodiments of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing chronic wounds apply a milder negative pressure than in conventional negative pressure therapy (which is too aggressive for the fragile tissues of many such wounds). This leads to increased patient comfort, and lessens the risk of inflammation of the wound.
=
6 The removal of wound exudate in a given time period of application of the total irrigate and/or aspirate therapy will normally be more effective and/or faster than with a conventional sequential intermittent aspiration and/or irrigation therapy.
Even more desirably, since simultaneous aspiration and irrigation is applied to the wound, wound exudate and materials deleterious to wound healing (such as bacteria and debris, and iron H and iron 111 and for chronic wounds proteases) will not pool on the wound bed and hinder wound healing, especially in a highly exuding wound. This is especially important in chronic wounds.
The resulting mixed exudate-irrigant fluid will usually be of relatively lower viscosity.
Because simultaneous aspiration and irrigation of the wound provides continuous removal at a constant relatively high speed, the fluid does not have to be accelerated cyclically from rest, and will be easier to shift than with known forms of aspiration and/or irrigation therapy systems with a conventional sequential aspirate ¨ irrigate ¨ dwell cycle.
This will thus exert a greater net effect on the removal of adherent bacteria and debris.
This is especially the case in those embodiments of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds where there is an inlet manifold (as described in further detail hereinafter) that covers and contacts most of the wound bed with openings that deliver the fluid directly to the wound bed over an extended area.
The present form of aspiration and/or irrigation therapy systems also often create a wound environment for better distribution of materials that are beneficial in some therapeutic aspect, in particular to wound healing,
7 that are present in a wound, but may not be well distributed in the wound, e.g. in a highly exuding wound (These include cytokines, enzymes, growth factors, cell matrix components, biological signalling molecules and other physiologically active components of the exudate.), and or materials contained in the irrigant such as nutrients for wound cells to aid proliferation, and gases, such as oxygen.
These may aid wound cell proliferation and new tissue growth that has a strong three-dimensional structure adhering well to and growing from the wound bed. This is a significant advantage, in particular in chronic wounds.
This is especially the case in those embodiments of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds where there is an inlet manifold as described below.
This covers and contacts most of the wound bed with openings that deliver the fluid directly to the wound bed over an extended area.
It will be seen that the balance of fluid between fluid aspirated from the wound and irrigant supplied to the wound from the irrigant reservoir may provide a predetermined steady state concentration equilibrium of materials beneficial in promoting wound healing over the wound bed. Simultaneous aspiration of wound fluid and irrigation at a controlled flow rate aids in the attainment and maintenance of this equilibrium The apparatus for irrigating and/or aspirating wounds of the present invention may be used cyclically and/or with reversal of flow.
Preferably the present apparatus for aspirating, irrigating and/or cleansing wounds is a conventionally automated, programmable system which can cleanse the wound with minimal supervision.
The means for providing simultaneous aspiration and irrigation of the wound often comprises a (first) device for moving fluid through the wound applied to fluid downstream of and away from the wound dressing, in combination with at least one of
8 a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing;
means for aspirate flow regulation, connected to a fluid offtake tube, and means for supply flow regulation, connected to a fluid supply tube;
The (first) device will apply negative pressure (i.e. below-atmospheric pressure or vacuum) to the wound bed. It may be applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing.
Alternatively or additionally, where appropriate, the aspirate in the fluid offtake tube downstream of the wound dressing may be aspirated into a collection vessel, and the first device may act on fluid such as air from the collection vessel.
The (first) device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve.
Alternatively, where appropriate the (first) device for moving fluid through the wound may be a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a (first) device for moving fluid through the wound with means for aspirate flow regulation and/or means for supply flow regulation in a single integer.
The (first) device for moving fluid through the wound pill often be a pump of any of the following types, or a piped supply of vacuum, applied to fluid downstream of and away from the wound dressing. In the case of any pump it may be a fixed-speed pump, with (as above) a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve. Alternatively, where appropriate the pump may be a variable-throughput or variable-speed pump.
9 The following types of pump may be used as the (first) device:
reciprocating pumps, such as piston pumps - where pistons pump fluids through check valves, in particular for positive and/or negative pressure on the wound bed; and diaphragm pumps - where pulsations of one or two flexible diaphragms displace liquid with check valves.
and rotary pumps, such as:
progressing cavity pumps - with a cooperating screw rotor and stator, in particular for higher-viscosity and particulate-filled exudate; and vacuum pumps - with pressure regulators.
The (first) device may be a diaphragm pump, e.g. preferably a small '15 portable diaphragm pump. This is a preferred type of pump, in order in particular to reduce or eliminate contact of internal surfaces and moving parts of the pump with (chronic) wound exudate, and for ease of cleaning.
Where the pump is a diaphragm pump, and preferably a small portable diaphragm pump, the one or two flexible diaphragms that displace liquid may each be, for example a polymer film, sheet or membrane, that is connected to means for creating the pulsations. This may be provided in any form that is convenient, inter alia as a piezoelectric transducer, a core of a solenoid or a ferromagnetic integer and coil in which the direction of current flow alternates, a rotary cam and follower, and so on.
Where any second device is applied to the fluid in the fluid supply tube upstream of and towards the wound dressing, it will usually apply positive pressure (i.e. above-atmospheric pressure) to the wound bed.
with the (first) device, it may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for supply flow regulation, connected to a fluid supply tube, e.g. a regulator, such as a rotary valve.

Alternatively, where appropriate the second device for moving irrigant fluid to the wound may be a variable-throughput device, such as a variable-speed pump, upstream of the wound dressing, thus effectively forming a combination of a second device for moving fluid through the wound with 5 means for supply flow regulation in a single integer.
The second device for moving fluid through the wound will often be a pump of any of the following types applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing. It may be a fixed-speed
10 pump, with (as above) a discrete means for supply flow regulation, connected to a fluid supply tube, e.g. a regulator, such as a rotary valve.
Alternatively, where appropriate the pump may be a variable-throughput or variable-speed pump.
The following types of pump may be used as the second device:
reciprocating pumps, such as shuttle pumps - with an oscillating shuttle mechanism to move fluids at rates from 2 to 50 ml per minute and rotary pumps, such as:
centrifugal pumps flexible impeller pumps - where elastomeric impeller traps fluid between impeller blades and a moulded housing that sweeps fluid through the pump housing.
peristaltic pumps - with peripheral rollers on rotor arms acting on a flexible fluid aspiration tube to urge fluid current flow in the tube in the direction of the rotor.
rotary vane pumps - with rotating vaned disk attached to a drive shaft moving fluid without pulsation as it spins. The outlet can be restricted without damaging the pump.
The second device may be a peristaltic pump, e.g. preferably a small portable peristaltic pump. This is a preferred type of pump, in order in particular to reduce or eliminate contact of internal surfaces and moving parts of the pump with irrigant, and for ease of cleaning.
11 Where the pump is a peristaltic pump, this may be e.g. an Instech Model P720 miniature peristaltic pump, with a flow rate: of 0.2 ¨ 180ml/hr and a weight of < 0.5 k. This is potentially useful for home and field hospital use.
Each such pump of any these types may also suitably be one that is capable of pulsed, continuous, variable and/or automated and/or programmable fluid movement. Less usually and less preferably, each such pump of any these types will be reversible.
As above, the means for supply flow regulation may be a regulator, such as a rotary valve. This is connected between two parts of a fluid supply tube, such that the desired supply flow regulation is achieved.
If there are two or more inlet pipes, these may be connected to a single fluid supply tube with a single regulator, or to first, second, etc. fluid supply tubes, respectively having a first regulator, a second regulator, etc., e.g. a valve or other control device for admitting fluids into the wound.
As above, the means for aspirate flow regulation may be similarly provided in a form in which concomitant aspirate flow regulation is possible. It may be a regulator, such as a valve or other control device, e.g. a rotary valve.
Multiple offtake tubes may be similarly provided with single or multiple regulators, all for aspiration of fluids from the apparatus, e.g. to a aspirate collection vessel, such as a collection bag.
If there is no second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing, it is only possible to apply a negative pressure to the wound, by means of the device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing.
12 =
Operation may e.g. be carried out at a negative pressure of up to 50%atm., typically at a low negative pressure of up to 20% atm., more usually up to 10% atm. at the wound, as is described hereinafter.
Examples of suitable and preferred (first) devices include those types of pump that are so described hereinbefore in relation to the first device. This may be a diaphragm pump, e.g. preferably a small portable diaphragm pump. This is a preferred type of pump, in order in particular to reduce or eliminate contact of internal surfaces and moving parts of the pump with (chronic) wound exudate, and for ease of cleaning.
Alternatively, if it is desired to apply a net positive pressure to the wound, the means for providing simultaneous aspiration and irrigation of the wound must comprise not only a first device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, =
but also a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing.
Operation may then e.g. be carried out at a positive pressure of up to 50%atm., typically at a low positive pressure of up to 20% atm., more usually up to 10% atm. at the wound, as is described hereinafter.
Examples of suitable and preferred first devices include those types of pump that are so described hereinbefore in relation to the first device. This may be a diaphragm pump, e.g. preferably a small portable diaphragm pump.
This is a preferred type of pump, in order in particular to reduce or eliminate contact of internal surfaces and moving parts of the pump with (chronic) wound exudate, and for ease of cleaning.
Examples of suitable and preferred second devices include those types of pump that are so described hereinbefore in relation to the second device.
This may be a peristaltic pump, e.g. a miniature peristaltic pump.
13 This is a preferred type of pump, in order to eliminate contact of internal surfaces and moving parts of the pump with irrigant in the fluid supply tube upstream of and towards the wound dressing, and for ease of cleaning.
It is of course equally possible to apply a negative pressure to the wound, by means of such a combination of a first device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, and a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the .wound dressing;
optionally with means for supply flow regulation, connected to a fluid supply tube;
means for aspirate flow regulation, connected to a fluid offtake tube.
Indeed, as noted below in this regard, preferred embodiments of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing chronic wounds that apply a negative pressure include such types of combination of a first device, e.g. a diaphragm pump, e.g. preferably a small portable diaphragm pump, and a second device, e.g. a peristaltic pump, preferably a miniature peristaltic pump, as described hereinbefore in relation to the device for moving fluid through the wound.
As noted above, either of the first device and the second device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve, or a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a (first) device for moving fluid through the wound with means for aspirate flow regulation and/or means for supply flow regulation in a single integer.
14 The higher end of the ranges of % positive and negative pressure noted above are potentially more suitable for hospital use, where they may only be used safely under professional supervision.
The lower end is potentially more suitable for home use, where relatively high % positive and negative pressures cannot be used safely without professional supervision, or for field hospital use.
In each case, the pressure on the wound may be held constant throughout the desired length of therapy, or may be varied cyclically in a desired positive or negative pressure regime.
As noted above, when it is desired to apply a negative pressure to the wound, it is preferred that the means for providing simultaneous aspiration and irrigation of the wound comprise not only a (first) device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, but also a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing.
Accordingly, one embodiment of the apparatus for irrigating, cleansing and/or aspirating wounds of the present invention is characterised in the means for providing simultaneous aspiration and irrigation of the wound comprises a (first) device for moving fluid through the wound applied to fluid downstream of and away from the wound dressing, and a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing, and in combination with at least one of means for supply flow regulation, connected to a fluid supply tube, and means for aspirate flow regulation, connected to a fluid offtake tube.
As noted above, either of the first device and the second device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve, or 5 a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a (first) device for moving fluid through the wound with means for aspirate flow regulation and/or means for supply flow regulation in a single integer.
10 This combination of a) a device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, and b) a device for moving fluid through the wound applied to the fluid in the
15 fluid supply tube upstream of and towards the wound dressing, may be used to apply an overall positive or negative, or even zero pressure to the wound.
At least one body in the flow path to, over and from the wound bed should have sufficient resilience against the pressure to allow any significant compression or decompression of the fluid occur.
Thus, examples of suitable bodies include those which are or are defined by a film, sheet or membrane, such as inlet or offtake and/or tubes and structures such as bags, chambers and pouches, filled with irrigant fluid, and e.g. the backing layer of the wound dressing, made of elastically resilient thermoplastic materials.
It will be seen that the balance of fluid between aspirated fluid from the wound and irrigant supplied to the wound from the fluid reservoir will thus be largely determined by a means for providing simultaneous aspiration and irrigation of the wound which is a system comprising:
a) means for aspirate flow regulation and/or a device for moving fluid through the wound applied to fluid downstream of and away from the wound dressing, and =
16 b) means for supply flow regulation and/or a device for moving fluid through the wound applied to the fluid in the fluid supply tube =
upstream of and towards the wound dressing.
As noted above, either of the first device and the second device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve, or a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a (first) device for moving fluid through the wound with means for aspirate flow regulation and/or means for supply flow regulation in a single integer.
The same means may be used to apply an overall positive or negative, or even neutral pressure to the wound.
The appropriate flow rate through the supply tube will depend on a number of factors, such as the viscosity and consistency of each of the irrigant, exudate and mixed exudate-irrigant fluid, and any changes as the wound heals;
the level of negative pressure on the wound bed, whether the irrigant in the fluid supply tube upstream of and into the wound dressing is under positive pressure, and the level of such pressure;
the level of any pressure drop between the irrigant in the fluid supply tube upstream of the wound dressing and the wound bed, such as across a porous element, e.g. a membrane wound contact layer on the lower surface of an inlet manifold that delivers the fluid directly to the wound bed; means for supply flow regulation; and/or a second device for moving fluid through the wound applied to the fluid in the fluid supply tube upstream of and towards the wound dressing;
the depth and/or capacity of the wound and the power consumption needed for a given desired fluid volume flow rate of irrigant and/or wound exudate through the wound.
17 The dressing may comprise an inlet manifold (as described in further detail hereinafter) that covers and contacts most of the wound bed with openings that deliver the fluid directly to the wound bed over an extended area, in the form of one or more inflatable hollow bodies defined by a film sheet or membrane.
The (usually small) positive pressure above atmospheric from the irrigation device when both devices are running together should be sufficient to inflate the manifold.
The desired fluid volume flow rate of irrigant and/or wound exudate is preferably that for optimum performance of the wound healing process.
The flow rate will usually be in the range of 1 to 1500 ml/hr, such as 5 to 1000 ml/hr, e.g. 15 to 300 ml/hr, such as 35 to 200 ml/hr through the supply tube. The flow rate through the wound may be held constant throughout the desired length of therapy, or may be varied cyclically in a desired flow rate regime.
In practice, the offtake rate of flow of total irrigant and/or wound exudate will be of the order of 1 to 2000, e.g. 35 to 300 m1/24 hr/cm2, where the cm2 refers to the wound area, depending on whether the wound is in a highly exuding state.
In practice, the rate of exudate flow is only of the order of up to 75 microlitres / cm2/ hr (where cm2 refers to the wound area), and the fluid can be highly mobile or not, depending on the level of proteases present).
Exudate levels drop and consistency changes as the wound heals, e.g. to a level for the same wound that equates to 12.5 ¨ 25 microlitres / cm2/ hr.
It will be seen that the aspirated fluid from the wound will typically contain a preponderance of irrigant from the fluid reservoir over wound exudate.
The necessary adjustments to maintain the desired balance of fluid by means of a) the means for aspirate flow regulation and/or downstream device, and
18 b) the means for supply flow regulation and/or upstream device for moving fluid will be apparent to the skilled person, bearing in mind that as noted above, either of the first device and the second device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, and/or means for supply flow regulation, connected to a fluid supply tube, in each case, e.g. a regulator, such as a rotary valve, or a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a (first) device for moving fluid through the wound with means for aspirate flow regulation and/or means for supply flow regulation in a single integer.
The type and/or capacity of a suitable first device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing and/or a suitable second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing and/or will be largely determined by a) the appropriate or desired fluid volume flow rate of irrigant and/or wound exudate from the wound, and b) whether it is appropriate or desired to apply a positive or negative pressure to the wound bed, and the level of such pressure to the wound bed for optimum performance of the wound healing process, and by factors such as portability, power consumption and isolation from contamination.
As noted above, when it is desired to apply a negative pressure to the wound with the apparatus of this first ottieul: of the present invention for aspirating, irrigating and/or cleansing wounds to provide simultaneous aspiration and irrigation of the wound, the means for providing simultaneous aspiration and irrigation of the wound may comprise a single device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing or
19 in combination with at least one of means for supply flow regulation, connected to a fluid supply tube, and means for aspirate flow regulation, connected to a fluid offtake tube.
As noted above, the device may be a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, e.g. a regulator, such as a rotary valve, or a variable-throughput device, such as a variable-speed pump, downstream of the wound dressing, thus effectively forming a combination of a device for moving fluid through the wound with means for aspirate flow regulation in a single integer.
The operation of a typical apparatus of this type for simultaneous aspiration and irrigation of a wound at a low negative pressure of up to 20% atm., more usually up to 10% atm. at the wound, with one pump will now be described.
Before starting the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds, the backing layer of the wound dressing is applied over the wound and conformed to the shape of the bodily part in which the wound is to form a relatively fluid-tight seal or closure.
The means for supply flow regulation, connected to a fluid supply tube, such as a regulator, such as a rotary valve, is usually closed, and the means for aspirate flow regulation (if any), connected to a fluid offtake tube, is opened.
The aspiration pump is started and run to give a negative pressure of up to 50% atm., more usually up to 20% atm., e.g. up to 10% atm. to be applied =
applies a vacuum to the interior of the dressing and the wound.

The means for fluid supply regulation is opened and is then adjusted, and/or where the aspiration pump is a variable-speed pump, downstream of the wound dressing, that is adjusted, to maintain the desired balance of fluid at a controlled nominal flow rate and to maintain the desired negative 5 -- pressure in the interior of the wound dressing.
The apparatus is then run for the desired length of therapy and with the desired negative pressure regime.
10 -- After this period, the aspiration pump is stopped.
The operation of a typical apparatus for simultaneous aspiration and irrigation of a wound at a low negative pressure of up to 20% atm., more 15 usually up to 10% atm. at the wound, with two pumps will now be described.
The necessary changes where the mode of operation is at a net positive pressure of e.g. up to 15% atm., more usually up to 10% atm. at the wound
20 -- will be apparent to the skilled person.
Such a typical apparatus for simultaneous aspiration and irrigation of a wound at a low negative pressure of up to 20% atm., more usually up to 10% atm. at the wound comprises means for providing simultaneous -- aspiration and irrigation of the wound which is a combination of a) a first device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, with optional means for aspirate flow regulation, connected to a fluid offtake tube: and b) a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing, with optional means for supply flow regulation, connected to a fluid supply tube.
-- As noted above, either device may be
21 a fixed-throughput device, such as a fixed-speed pump, which will usually require a discrete means for aspirate flow regulation, connected to a fluid offtake tube, e.g. a regulator, such as a rotary valve, or for irrigant flow regulation, connected to a fluid supply tube, either e.g. a regulator, such as a rotary valve, or a variable-throughput device, such as a variable-speed pump, thus effectively forming a combination of a device for moving fluid through the wound with means for flow regulation in a single integer.
Before starting the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds, the backing layer of the wound dressing is applied over the wound and conformed to the shape of the bodily part in which the wound is to form a relatively fluid-tight seal or closure.
Any means for supply flow regulation, connected to a fluid supply tube, such as a regulator, such as a rotary valve, is usually closed, and any means for aspirate flow regulation, connected to a fluid offtake tube, is opened.
The aspiration pump is started and run to apply a negative pressure of up to 50% atm., more usually up to 20% atm., e.g. up to 10% atm., to the interior of the dressing and the wound.
The irrigation pump is then started, so that both pumps are running together, and any means for supply flow regulation is opened.
The irrigation pump flow rate and any means for fluid supply regulation are then adjusted and/or where the aspiration pump and/or the irrigation pump is a variable-speed pump, either or both is/are is adjusted, to maintain the desired balance of fluid at a controlled nominal flow rate and to maintain the desired negative pressure in the interior of the wound dressing.
The apparatus is then run for the desired length of therapy and with the desired pressure regime.
22 After this period, the irrigation pump is stopped, shortly followed by the aspiration pump.
=
In all embodiments of the apparatus of this first aspect of the present invention for aspirating, irrigating and/or cleansing wounds, a particular advantage is the tendency of the wound dressing to conform to the shape of the bodily part to which it is applied.
The wound dressing comprises a backing layer with a wound-facing face which is capable of forming a relatively fluid-tight seal or closure over a wound and at least one inlet pipe for connection to a fluid supply tube or tube, which passes through and/or under the wound-facing face, and and at feast one outlet pipe for connection to a fluid offtake tube, which passes through and/or under the wound-facing face, the point at which the or each inlet pipe and the or each outlet pipe passes through and/or under the wound-facing face forming a relatively fluid-tight seal or closure.
The term 'relatively fluid-tight seal or closure' is used herein to indicate one which is fluid- and microbe-impermeable and permits a positive or negative pressure of up to 50% atm., more usually up to 20% atm., e.g. up to 10%
atm. to be applied to the wound. The term 'fluid' is used herein to include gels, e.g. thick exudate, liquids, e.g. water, and gases, such as air, nitrogen, etc.
The shape of the backing layer that is applied may be any that is appropriate to aspirating, irrigating and/or cleansing the wound across the area of the wound.
Examples of such include a substantially flat film, sheet or membrane, or a = bag, chamber, pouch or other structure of the backing layer, e.g. of polymer film, which can contain the fluid.
23 The backing layer may be a film, sheet or membrane, often with a (generally uniform) thickness of up to 100 micron, preferably up to 50 micron, more preferably up to 25 micron, and of 10 micron minimum thickness.
Its largest cross-dimension may be up to 500 mm (for example for large torso wounds), up to 100 rnm (for example for axillary and inguinal wounds), and up to 200 mm for limb wounds (for example for chronic wounds, such as venous leg ulcers and diabetic foot ulcers.
Desirably the dressing is resiliently deformable, since this may result in increased patient comfort, and lessen the risk of inflammation of a wound.
Suitable materials for it include synthetic polymeric materials that do not absorb aqueous fluids, such as polyolefins, such as polyethylene e.g. high-density polyethylene, polypropylene, copolymers thereof, for example with vinyl acetate and polyvinyl alcohol, and mixtures thereof; polysiloxanes;
polyesters, such as polycarbonates; polyamides, e.g. 6-6 and 6 - 10, and hydrophobic polyurethanes.
They may be hydrophilic, and thus also include hydrophilic polyurethanes.
They also include thermoplastic elastomers and elastomer blends, for example copolymers, such as ethyl vinyl acetate, optionally or as necessary blended with high-impact polystyrene.
They further include elastomeric polyurethane, particularly polyurethane formed by solution casting.
Preferred materials for the present wound dressing include thermoplastic elastomers and curable systems.
The backing layer is capable of forming a relatively fluid-tight seal or closure over the wound and/or around the inlet and outlet pipe(s).

=
24 However, in particular around the periphery of the wound dressing, outside the relatively fluid-tight seal, it is preferably of a material that has a high moisture vapour permeability, to prevent maceration of the skin around the wound. It may also be a switchable material that has a higher moisture vapour permeability when in contact with liquids, e.g. water, blood or wound exudate. This may, e.g. be a material that is used in Smith & Nephew's AffevynTM, IV3000TM and OpSiteTM dressings.
The periphery of the wound-facing face of the backing layer may bear an adhesive film, for example, to attach it to the skin around the wound.
This may, e.g. be a pressure-sensitive adhesive, if that is sufficient to hold the wound dressing in place in a fluid-tight seal around the periphery of the wound-facing face of the wound dressing.
Alternatively or additionally, where appropriate a light switchable adhesive could be used to secure the dressing in place to prevent leakage. (A light switchable adhesive is one the adhesion of which is reduced by photocuring. Its use can be beneficial in reducing the trauma of removal of the dressing.) Thus, the backing layer may have a flange or lip extending around the proximal face of the backing layer, of a transparent or translucent material (for which it will be understood that materials that are listed above are amongst those that are suitable).
This bears a film of a light switchable adhesive to secure the dressing in place to prevent leakage on its proximal face, and a layer of opaque material on its distal face.
To remove the dressing and not cause excessive trauma in removal of the dressing, the layer of opaque material on the distal face of the flange or lip extending around the proximal wound is removed prior to application of radiation of an appropriate wavelength to the flange or lip.

If the periphery of the wound dressing, outside the relatively fluid-tight seal, that bears an adhesive film to attach it to the skin around the wound, is of a material that has a high moisture vapour permeability or is a switchable material, then the adhesive film, if continuous, should also have a high or 5 switchable moisture vapour permeability, e.g. be an adhesive such as used in Smith & Nephew's Allevyn TM IV3000TM and OpSite TM dressings.
Where a vacuum is applied to hold the wound dressing in place in a fluid-tight seal around the periphery of the wound-facing face of the wound 10 dressing, the wound dressing may be provided with a silicone flange or lip to seal the dressing around the wound. This removes the need for adhesives and associated trauma to the patient's skin.
Where the interior of, and the flow of irrigant and/or wound exudate to and 15 through, the dressing is under any significant positive pressure, which will tend to act at peripheral points to lift and remove the dressing off the skin around the wound.
In such use of the apparatus, it may thus be necessary to provide means 20 for forming and maintaining such a seal or closure over the wound against such positive pressure on the wound, to act at peripheral points for this purpose.
Examples of such means include light switchable adhesives, as above, to
25 secure the dressing in place to prevent leakage.
Since the adhesion of a light switchable adhesive is reduced by photocuring, thereby reducing the trauma of removal of the dressing, a film of a more aggressive adhesive may be used, e.g. on a flange, as above.
Examples of suitable fluid adhesives for use in more extreme conditions where trauma to the patient's skin is tolerable include ones that consist essentially of cyanoacrylate and like tissue adhesives, applied around the edges of the wound and/or the proximal face of the backing layer of the wound dressing, e.g. on a flange or lip.
26 Further suitable examples of such means include adhesive (e.g. with pressure-sensitive adhesive) and non-adhesive, and elastic and non-elastic straps, bands, loops, strips, ties, bandages, e.g. compression bandages, sheets, covers, sleeves, jackets, sheathes, wraps, stockings and hose, e.g.
elastic tubular hose or elastic tubular stockings that are a compressive fit over a limb wound to apply suitable pressure to it when the therapy is applied in this way; and inflatable cuffs, sleeves, jackets, trousers, sheathes, wraps, stockings and hose that are a compressive fit over a limb wound to apply suitable pressure to it when the therapy is applied in this way.
Such means may each be laid out over the wound dressing to extend beyond the periphery of the backing layer of the wound dressing, and as appropriate will be adhered or otherwise secured to the skin around the wound and/or itself and as appropriate will apply compression (e.g. with elastic bandages, stockings) to a degree that is sufficient to hold the wound dressing in place in a fluid-tight seal around the periphery of the wound, Such means may each be integral with the other components of the dressing, in particular the backing layer.
Alternatively, it may be permanently attached or releasably attached to the dressing, in particular the backing layer, with an adhesive film, for example, or these components may be a Velcro TM, push snap or twist-lock fit with each other.
The means and the dressing may be separate structures, permanently unattached to each other.
In a more suitable layout for higher positive pressures on the wound, a stiff flange or lip extends around the periphery of the proximal face of the backing layer of the wound dressing as hereinbefore defined.
The flange or lip is concave on its proximal face to define a peripheral channel or conduit.
27 It has a suction outlet that passes through the flange or lip to communicate with the channel or conduit and may be connected to a device for applying a vacuum, such as a pump or a piped supply of vacuum.
The backing layer may be integral with or attached, for example by heat-sealing, to the flange or lip extending around its proximal face.
To form the relatively fluid-tight seal or closure over a wound that is needed and to prevent passage of irrigant and/or exudate under the periphery of the wound-facing face of the wound dressing, in use of the apparatus, the dressing is set on the skin around the wound.
The device then applies a vacuum to the interior of the flange or lip, thus forming and maintaining a seal or closure acting at peripheral points around the wound against the positive pressure on the wound.
With all the foregoing means of attachment, and means for forming and maintaining a seal or closure over the wound, against positive or negative pressure on the wound at peripheral points around the wound, the wound dressing sealing periphery is preferably of a generally round shape, such as an ellipse, and in particular circular.
To form the relatively fluid-tight seal or closure over a wound and around the inlet pipe(s) and outlet pipe(s) at the point at which they pass through and/or under the wound-facing face, the backing layer may be integral with these other components.
The components may alternatively just be a push, snap or twist-lock fit with each other, or adhered or heat-sealed together.
The or each inlet pipe or outlet pipe may be in the form of an aperture, such as a funnel, hole, opening, orifice, luer, slot or port for connection as a female member respectively to a mating end of a fluid tube and/or fluid supply tube (optionally or as necessary via means for forming a tube, pipe or hose, or nozzle, hole, opening, orifice, luer, slot or port for connection as a male member respectively to a mating end of
28 a fluid tube and/or fluid supply tube (optionally or as necessary via means for supply flow regulation) or a fluid offtake tube.
Where the components are integral they will usually be made of the same material (for which it will be understood that materials that are listed above are amongst those that are suitable).
Where, alternatively, they are a push, snap or twist-lock fit, the may be of the same material or of different materials. In either case, materials that are listed above are amongst those that are suitable for all the components.
The or each pipe will generally pass through, rather than under the backing layer. In such case, the backing layer may often have a rigid and/or resiliently inflexible or stiff area to resist any substantial play between the or each pipe and the or each mating tube, or deformation under pressure in any direction.
It may often be stiffened, reinforced or otherwise strengthened by a boss projecting distally (outwardly from the wound) around each relevant tube, pipe or hose, or nozzle, hole, opening, orifice, luer, slot or port for connection to a mating end of a fluid tube and/or fluid supply tube or fluid offtake tube.
Alternatively or additionally, where appropriate the backing layer may have a stiff flange or lip extending around the proximal face of the backing layer to stiffen, reinforce or otherwise strengthen the backing layer.
The wound dressing may not comprise any integer under the backing layer in the wound in use.
However, this may not provide a system to distribute irrigant over a sufficient functional surface area to irrigate the wound at a practical rate to be suitable for use, in particular in chronic wound aspiration and irrigation, with relatively high concentrations of materials that are deleterious to wound healing.
29 It may be advantageous to provide a system where wound irrigant may be distributed more evenly, or pass in a more convoluted path under the dressing over the wound bed.
Accordingly, one form of the dressing is provided with a 'tree' form of pipes, tubes or tubules that radiate from an inlet manifold to the wound bed to end in apertures and deliver the aspirating fluid directly to the wound bed via the apertures. Similarly, there is an outlet manifold from which tubules radiate and run to the wound bed to end in openings and collect the fluid directly from the wound bed.
The pipes, etc. may radiate regularly or irregularly through the wound in use, respectively from the inlet or outlet manifold, although regularly may be preferred. A more suitable layout for deeper wounds is one in which the pipes, etc. radiate hemispherically and concentrically, to the wound bed.
For shallower wounds, examples of suitable forms of such layout of the pipes, etc. include ones in which the pipes, etc. radiate in a flattened hemiellipsoid and concentrically, to the wound bed.
Other suitable forms of layout of the pipes, etc. include one which have pipes, tubes or tubules extending from the inlet pipe(s) and/or outlet pipe(s) at the point at which they pass through and/or under the wound-facing face of the backing layer to run over the wound bed. These may have a blind bore with perforations, apertures, holes, openings, orifices, slits or slots along the pipes, etc.
These pipes, etc. then effectively form an inlet pipe 'manifold that delivers the aspirating fluid directly to the wound bed or outlet pipe or collects the fluid directly from the wound respectively.
It does so via the holes, openings, orifices, slits or slots in the tubes, pipes, tubules, etc. over most of the wound bed under the backing layer.

It may be desirable that the tubes, pipes or tubules are resiliently flexible, e.g. elastomeric, and preferably soft, structures with good conformability in the wound and the interior of the wound dressing.
5 When the therapy is applied in this way, the layout of the tubes, pipes, tubules, etc. may depend on the depth and/or capacity of the wound.
Thus, for shallower wounds, examples of suitable forms of such layout of the tubes, pipes, tubules, etc. include ones that consist essentially of one or more of the tubes, etc in a spiral.
A more suitable layout for deeper wounds when the therapy is applied in this way may be one which comprises one or more of the tubes, etc in a helix or spiral helix.
Other suitable layouts for shallower wounds include one which have blind-bore, perforated inlet pipe or outlet pipe manifolds that aspirate fluid in the wound when the dressing is in use.
One or both of these may be such a form, the other may be, e.g. one or more straight blind-bore, perforated radial tubes, pipes or nozzles.
A preferred form of inlet pipe (or fess usual(y) outlet pipe manifold that delivers the aspirating fluid directly to the wound bed or collects the fluid directly from the wound respectively is one that comprise one or more conformable hollow bodies defined by a film, sheet or membrane, such as a bag, chamber, pouch or other structure, filled with the irrigant (or less usually) aspirate from the wound, passing through perforations, apertures, holes, openings, orifices, slits or slots in the film, sheet or membrane defining the hollow body or hollow bodies.
These may be of small cross-dimension, so that they may then effectively form microperforations, microapertures or pores in a permeable integer, for example the polymer film, sheet or membrane.

This type of manifold for irrigation (more usually) provides the highest uniformity in the flow distribution of irrigant over the wound at a practical rate to be suitable for use, in particular in chronic wound aspiration and irrigation, and hence to provide a system where materials that are beneficial in promoting wound healing, such as growth factors, cell matrix components, and other physiologically active components of the exudate from a wound, are distributed more evenly under the dressing over the wound bed.
This type of manifold for irrigation (more usually) is noted below with regard to wound fillers under the backing layer, since it is a resiliently flexible, e.g.
elastomeric, and soft, structure with good conformability to wound shape.
It is urged by its own resilience against the backing layer to apply gentle pressure on the wound bed, and is therefore also capable of acting as a wound filler. The film, sheet or membrane, often has a (generally uniform) thickness similar to that of films or sheets used in conventional wound dressing backing layers.
Another suitable layout is one in which an inlet pipe and/or outlet pipe manifold that delivers the aspirating fluid directly to the wound bed or collects the fluid directly from the wound respectively via inlet and/or outlet tubes, pipes or tubules, and the inlet manifold and/or outlet manifold is formed by slots. in layers permanently attached to each other in a stack, and the inlet and/or outlet tubes, pipes or tubules are formed by apertures through layers permanently attached to each other in a stack. (In Figure 10a there is shown an exploded isometric view of such a stack, which is non-limiting.) As also mentioned herein, the backing layer that is applied may be any that is appropriate to the present system of therapy and permits a positive or negative pressure of up to 50% atm., more usually up to 25% atm. to be applied to the wound.

It is thus often a microbe-impermeable film, sheet or membrane, which is substantially flat, depending on any pressure differential on it, and often with a (generally uniform) thickness similar to such films or sheets used in conventional wound dressings, i.e. up to 100 micron, preferably up to 50 micron, more preferably up to 25 micron, and of 10 micron minimum thickness.
The backing layer may often have a rigid and/or resiliently inflexible or stiff area to resist any substantial play between other components that are not mutually integral, and may be stiffened, reinforced or otherwise strengthened, e.g. by a projecting boss.
Such a form of dressing would not be very conformable to the wound bed, and may effectively form a chamber, hollow or cavity defined by a backing layer and the wound bed under the backing layer.
It may be desirable that the interior of the wound dressing conform to the wound bed, even for a wound in a highly exuding state. Accordingly, one form of the dressing is provided with a wound filler under the backing layer.
This is favourably a resiliently flexible, e.g. elastomeric, and preferably soft, structure with good conformability to wound shape.
It is urged by its own resilience against the backing layer to apply gentle pressure on the wound bed.
The wound filler may be integral with the other components of the dressing, in particular the backing layer.
Alternatively, it may be permanently attached to them/it, with an adhesive film, for example, or by heat-sealing, e.g. to a flange or lip extending from the proximal face, so a not to disrupt the relatively fluid-tight seal or closure over the wound that is needed.

Less usually, the wound filler is releasably attached to the backing layer, with an adhesive film, for example, or these components may be a push, snap or twist-lock fit with each other.
The wound filler and the backing layer may be separate structures, permanently unattached to each other.
The wound filler may be or comprise a solid integer, favourably a resiliently flexible, e.g. elastomeric, and preferably soft, structure with good conformability to wound shape.
Examples of suitable forms of such wound fillers are foams formed of a suitable material, e.g. a resilient thermoplastic.
Preferred materials for the present wound dressing include reticulated filtration polyurethane foams with small apertures or pores.
Alternatively or additionally, it may be in the form of, or comprise one or more conformable hollow bodies defined by a film, sheet or membrane, such as a bag, chamber, pouch or other structure, filled with a fluid or solid that urges it to the wound shape.
The film, sheet or membrane, often has a (generally uniform) thickness similar to that of films or sheets used in conventional wound dressing backing layers.
That is, up to 100 micron, preferably up to 50 micron, more preferably up to 25 micron, and of 10 micron minimum thickness, and is often resiliently flexible, e.g. elastomeric, and preferably soft.
Such a filler is often integral with the other components of the dressing, in particular the backing layer, or permanently attached to them/it, with an adhesive film, for example, or by heat-sealing, e.g. to a flange Examples of suitable fluids contained in the hollow body or bodies defined by a film, sheet or membrane include gases, such as air, nitrogen and argon, more usually air, at a small positive pressure above atmospheric;
and liquids, such as water, saline.
Examples also include gels, such as silicone gels, e.g. CaviCareTM gel, or preferably cellulosic gels, for example hydrophilic cross-linked cellulosic gels, such as Intrasite TM cross-linked materials.
Examples also include aerosol foams, where the gaseous phase of the aerosol system is air or an inert gas, such as nitrogen or argon, more usually air, at a small positive pressure above atmospheric; and solid particulates, such as plastics crumbs.
Of course, if the backing layer is a sufficiently conformable and/or e.g. an upwardly dished sheet, the backing layer may lie under the wound filler, rather than vice versa.
In this type of layout, in order for the wound filler to urge the wound dressing towards the wound bed, it will usually have to be firmly adhered or otherwise releasably attached to the skin around the wound. This is especially the case in those embodiments where the wound filler and the backing layer are separate structures, permanently unattached to each other.
In such a layout for deeper wounds when the therapy is applied in this way, the means for such attachment may also form and maintain a seal or closure over the wound.
Where the filler is over the backing layer, and the fluid inlet pipe(s) and outlet pipe(s) pass through the svvound-facing face of the backing layer, they may run through or around the wound filler over the backing layer.
, 35 One form of the dressing is provided with a wound filler under the backing layer that is or comprises a resiliently flexible, e.g. elastomeric, and preferably soft, hollow body defined by a film, sheet or membrane, such as a bag, chamber, pouch or other structure.

It has apertures, holes, openings, orifices, slits or slots, or tubes, pipes, tubules or nozzles. It communicates with at least one inlet or outlet pipe through at least one aperture, hole, opening, orifice, slit or slot.
10 The fluid contained in the hollow body may then be the aspirating fluid in the apparatus.
The hollow body or each of the hollow bodies then effectively forms an inlet pipe or outlet pipe manifold that delivers the aspirating fluid directly to the 15 wound bed or collects the fluid directly from the wound respectively via the holes, openings, orifices, slits or slots, or the tubes, pipes or hoses, etc.
in the film, sheet or membrane.
When the therapy is applied in this way, the type of the filler may also be 20 largely determined by the depth and/or capacity of the wound.
Thus, for shallower wounds, examples of suitable wound fillers as a component of a wound dressing include ones that consist essentially of one or more conformable hollow bodies defining an inlet pipe and/or outlet pipe 25 manifold that delivers the aspirating fluid directly to the wound bed or collects the fluid directly from the wound.
A more suitable wound filler for deeper wounds when the therapy is applied in this way may be one which comprises one or more conformable hollow
30 bodies defined by, for example a polymer film, sheet or membrane, that at least partly surround(s) a solid integer. This may provide a system with better rigidity for convenient handling.
The wound filler under the backing layer may effectively form an inlet pipe 35 or outlet pipe manifold, If not, in order for aspiration and/or irrigation of the wound bed to occur, it is appropriate for one or more bores, channels, conduits, passages, pipes, tubes, tubules and/or spaces, etc. to run from the point at which the fluid inlet pipe(s) and outlet pipe(s) pass through and/or under the wound-facing face of the backing layer through or around the wound filler under the backing layer.
Less usually, the wound filler is an open-cell foam with pores that may forni such bores, channels, conduits, passages and/or spaces through the wound filler under the backing layer.
Where the filler is or comprises one or more conformable hollow bodies defined by, for example a polymer film, sheet or membrane, it may be provided with means for admitting fluids to the wound bed under the wound dressing.
These may be in the form of pipes, tubes, tubules or nozzles running from the point at which the fluid inlet pipe(s) and outlet pipe(s) pass through and/or under the wound-facing face of the backing layer through or around the wound filler under the backing layer.
All of the suitable layouts for shallower wounds that comprise blind-bore, perforated inlet pipe or outlet pipe manifolds that aspirate fluid in the wound when the dressing is in use, that are described hereinbefore, may be used under a wound filler under the backing layer.
In brief, suitable layouts include ones where one or both manifolds are annular or toroidal (regular, e.g. elliptical or circular or irregular), optionally with blind-bore, perforated radial tubes, pipes or nozzles, branching from the annulus or torus; and/or in a meandering, tortuous, winding, zigzag, serpentine or boustrophedic (i.e. in the manner of a ploughed furrow) pattern, or defined by slots in and apertures through layers attached to each other in a stack.

The inlet and/or outlet tubes, the fluid tube and the fluid supply tube, etc.
may be of conventional type, e.g. of elliptical or circular cross-section, and may suitably have a uniform cylindrical bore, channel, conduit or passage throughout their length, and suitably the largest cross-dimension of the bore may be up to 10 mm for large torso wounds, and up to 2 mm for limb wounds.
The tube walls should suitably thick enough to withstand any positive or negative pressure on them. However, the prime purpose of such tubes is to convey fluid irrigant and exudate through the length of the apparatus flow path, rather than to act as pressure vessels.
The tube walls may suitably be at least 25 micron thick.
The bore or any perforations, apertures, holes, openings, orifices, slits or slots along the pipes, etc. or in the hollow body or each of the hollow bodies may be of small cross-dimension.
They may then effectively form a macroscopic and/or microscopic filter for particulates including cell debris and micro-organisms, whilst allowing proteins and nutrients to pass through.
Such tubes, pipes or hoses, etc. through and/or around the filler, whether the latter is a solid integer and/or one or more resiliently flexible or conformable hollow bodies, are described in further detail hereinbefore in connection with the inlet pipe(s) and outlet pipe(s).
The whole length of the apparatus for aspirating, irrigating and/or cleansing wounds should be microbe-impermeable once the wound dressing is over the wound in use.
It is desirable that the wound dressing and the interior of the apparatus for aspirating, irrigating and/or cleansing wounds of the present invention is sterile.

The fluid may be sterilised in the fluid reservoir and/or the rest of the system in which the fluid moves by ultraviolet, gamma or electron beam irradiation.
This way, in particular reduces or eliminates contact of internal surfaces and the fluid with any sterilising agent.
Examples of other methods of sterilisation of the fluid also include e.g. the use of ultrafiltration through microapertures or micropores, e.g. of 0.22 to 0.45 micron maximum cross-dimension, to be selectively impermeable to microbes; and fluid antiseptics, such as solutions of chemicals, such as chlorhexidine and povidone iodine; metal ion sources, such as silver salts, e.g. silver nitrate;
and hydrogen peroxide;
although the latter involve contact of internal surfaces and the fluid with the sterilising agent.
It may be desirable that the interior of the wound dressing, the rest of the system in which the fluid moves, and/or the wound bed, even for a wound in a highly exuding state, are kept sterile after the fluid is sterilised in the fluid reservoir, or that at least naturally occurring microbial growth is inhibited.
Thus, materials that are potentially or actually beneficial in this respect may be added to the irrigant initially, and as desired the amount in increased by continuing addition.
Examples of such materials include antibacterial agents (some of which are listed above), and antifungal agents.
Amongst those that are suitable are, for example triclosan, iodine, metronidazole, cetrimide, chlorhexidine acetate, sodium undecylenate, chlorhexidine and iodine.

Buffering agents, such as potassium dihydrogen phosphate/ disodium hydrogen phosphate. may be added to adjust the pH, as may local analgesics/anaesthetics, such as 1id-55ffirio1lignocaine hydro-chi-art-de, xylocaine (adrenoline, lidocaine) and/or anti-inflammatories, to reduce wound pain or inflammation or pain associated with the dressing.
In order to combat the deposition of materials in the flow path from the irrigant, a repellent coating may be used at any point or on any integer in the path in direct contact with the fluid, e.g. on the means for providing simultaneous aspiration and irrigation of the wound or any desired tube or pipe.
Examples of coating materials for surfaces over which the aspirating fluid passes include anticoagulants, such as heparin, and high surface tension materials, such as PTFE, and polyamides, which are useful for growth factors, enzymes and other proteins and derivatives.
The apparatus of the invention for aspirating, irrigating and/or cleansing wounds-is_provided_with_means_for admitting fluids _directly or indirectly to the wound under the wound dressing in the form of a fluid supply tube to a fluid reservoir.
The fluid reservoir may be of any conventional type, e.g. a tube, bag (such as a bag typically used for blood or blood products, e.g. plasma, or for infusion feeds, e.g. of nutrients), chamber, pouch or other structure, e.g. of polymer film, which can contain the irrigant fluid.
The reservoir may be made of a film, sheet or membrane, often with a (generally uniform) thickness similar to that of films or sheets used in conventional wound dressing backing layers, i.e. up to 100 micron, preferably up to 50 micron, more preferably up to 25 micron, and of 10 micron minimum thickness, and is often a resiliently flexible, e.g.
elastomeric, and preferably soft, hollow body.

In all embodiments of the apparatus the type and material of the tubes throughout the apparatus of the invention for aspirating, irrigating and/or cleansing wounds and the fluid reservoir will be largely cllermine-d-by their function.

To be suitable for use, in particular on chronic timescales, the material should be non-toxic and biocompatible, inert to any active components, as appropriate of the irrigant from the fluid reservoir and/or wound exudate in the apparatus flow path, and, in any use of a two-phase system aspiration 10 and irrigation unit, of the dialysate that moves into the aspirating fluid in the apparatus.
When in contact with irrigant fluid, it should . not allow any significant amounts of extractables to diffuse freely out of it in use of the apparatus.
ft should be sterilisable by ultraviolet, gamma or electron beam irradiation and/or with fluid antiseptics, such as solutions of chemicals, fluid- and microbe-impermeable once in use, and flexible.
Examples of suitable materials for the fluid reservoir include synthetic -p-olymeric-materialsEsuch-as-polyolefinsr_such. as_p_olyethyle_ne,_e.g. high-density polyethylene and polypropylene.
Suitable materials for the present purpose also include copolymers thereof, for example with vinyl acetate and mixtures thereof. Suitable materials for the present purpose further include medical grade poly(vinyl chloride).
Notwithstanding such polymeric materials, the fluid reservoir will often have a stiff area to resist any substantial play between it and components that are not mutually integral, such as the fluid supply tube towards the wound dressing, and may be stiffened, reinforced or otherwise strengthened, e.g.
by a projecting boss.
Materials deleterious to wound healing that are removed include oxidants, such as free radicals, e.g. peroxide and superoxide;

iron II and iron III;
all involved in oxidative stress on the wound bed;
proteases, such as serine proteases, e.g. elastase and thrombin; cysteine proteases; matrix metalloproteases, e.g. collagenase; and carboxyl (acid) proteases;
endotoxins, such as lipopolysaccharides;
autoinducer signalling molecules, such as homoserine lactone derivatives, e.g. oxo-alkyl derivatives;
inhibitors of angiogenesis such as thrombospondin-1 (TSP-1), plasminogen activator inhibitor, or angiostatin (plasminogen fragment);
pro-inflammatory cytokines such as tumour necrosis factor alpha (TNFa) and interleukin 1 beta OL-113), oxidants, such as free radicals, e.g. , e.g. peroxide and superoxide; and metal ions, e.g. iron II and iron ill, all involved in oxidative stress on the wound bed.
It is believed that aspirating wound fluid aids in removal from of the materials deleterious to wound healing from wound exudate and/or irrigant, whilst distributing materials that are beneficial in promoting wound healing in contact with the wound.
A steady state concentration equilibrium of materials beneficial in promoting wound healing may be set up between in the irrigant and/or wound exudate.
Aspirating wound fluid aids in the quicker attainment of this equilibrium Materials beneficial to wound healing that are distributed include cytokines, enzymes, growth factors, cell matrix components, biological signalling molecules and other physiologically active components of the exudate and/or materials in the irrigant that are potentially or actually beneficial in respect of wound healing, such as nutrients for wound cells to aid proliferation, gases, such as oxygen.

The conduits through which respectively the irrigant and/or wound exudate passes to and from the wound dressing and i) may have means for modular disconnection and withdrawal of the dressing, ii) providing an immediate fluid-tight seal or closure over the ends of the conduits and the cooperating tubes in the rest of the apparatus of the invention so exposed, to prevent continuing passage of irrigant and/or exudate.
The outlet from the means for aspirate flow regulation and/or tubes may be collected and monitored and used to diagnose the status of the wound and/or its exudate.
Any aspirate collection vessel may be of any conventional type, e.g. a tube, bag (such as a bag typically used as an ostomy bag), chamber, pouch or other structure, e.g. of polymer film, which can contain the irrigant fluid that has been bled off. In all embodiments of the apparatus, the type and material of the aspirate collection vessel will be largely determined by its function.
To be suitable for use, the material need only be fluid-impermeable once in use, and flexible.
Examples of suitable materials for the fluid reservoir include synthetic polymeric materials, such as polyolefins, such as poly (vinylidene chloride).
Suitable materials for the present purpose also include polyethylene, e.g.
high-density polyethylene, polypropylene, copolymers thereof, for example with vinyl acetate and mixtures thereof.
In a second aspect of the present invention there is provided a conformable wound dressing, characterised in that it comprises a backing layer with a wound-facing face which is capable of forming a relatively fluid-tight seal or closure over a wound and has at least one inlet pipe for connection to a fluid supply tube, which passes through and/or under the wound-facing face, and at least one outlet pipe for connection to a fluid offtake tube, which passes through and/or under the wound-facing face, the point at which the or each inlet pipe and the or each outlet pipe passes through and/or under the wound-facing face forming a relatively fluid-tight seal or closure over the wound.
The dressing is advantageously provided for use in a bacteria-proof pouch.
Examples of suitable forms of such wound dressings are as described by way of example hereinbefore.
In a third aspect of the present invention there is provided a method of treating wounds to promote wound healing using the apparatus for aspirating, irrigating and/or cleansing wounds of the present invention.
The present invention will now be described by way of example only with reference to the accompanying drawings in which:
Figure 1 is a schematic view of an apparatus for aspirating, irrigating and/or cleansing a wound according to the first aspect of the present invention that has a single device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, in combination with means for supply flow regulation, connected to a fluid supply tube, and means for aspirate flow regulation, connected to a fluid offtake tube.
Figure 2 is a schematic view of another apparatus for aspirating, irrigating and/or cleansing a wound according to the first aspect of the present invention that has a first device for moving fluid through the wound applied to the aspirate in the fluid offtake tube downstream of and away from the wound dressing, with means for aspirate flow regulation, connected to a fluid offtake tube;
and a second device for moving fluid through the wound applied to the irrigant in the fluid supply tube upstream of and towards the wound dressing.

Figures 3 to 7 are cross-sectional views of conformable wound dressings, of the second aspect of the present invention for aspirating and/or irrigating wounds.
In these, Figures 3a to 6a are cross-sectional plan views of the wound dressings, and Figures 3b to 6b are cross-sectional side views of the wound dressings.
Figures 8 to 10 are various views of inlet and outlet manifold layouts for the wound dressings of the second aspect of the present invention for respectively delivering fluid to, and collecting fluid from, the wound.
Figures 11A to D are variants of a two-pump system with essentially identical, and identically numbered, components as in Figure 2, except that there is a pump bypass loop, except in Figure 11C.
a filter downstream of the aspirate collection vessel, and a bleed regulator, such as a rotary valve, connected to the fluid offtake tube or to the wound space, for the regulation of the positive or negative pressure applied to the wound.
Figures 12A to C are variants of a two-pump system with essentially identical, and identically numbered, components as in Figures 11, except that they have various means for varying the regulation of the positive or negative pressure applied to the wound.
Figures 13 to 19 and 21 to 26 are cross-sectional views of conformable wound dressings, of the second aspect of the present invention for aspirating and/or irrigating wounds.
Figure 20 is a system for treating wounds having an apparatus where an irrigant is delivered continually to a wound bed and the resultant mixture is continuously aspirated from the wound.

44a Figure 27a is a plan view and Figure 27b a cross-sectional view of a further conformable wound dressings of the second aspect of the present invention for aspirating and/or irrigating wounds.

Figures 28A and B are variants of a two-pump system with essentially identical, and identically numbered, components as in Figures 11.
However, they have alternative means for handling the aspirate flow to the 5 aspirate collection vessel under negative or positive pressure to the wound in simultaneous aspiration and irrigation of the wound, including in Figure 27B a third device for moving fluid into a waste bag.
Figure 29 is a single-pump system essentially with the omission from the 10 apparatus of Figures 11 of the second device for moving irrigant fluid into the wound dressing.
Referring to Figure 1, the apparatus (1) for aspirating, irrigating and/or 15 cleansing wounds comprises a conformable wound dressing (2), having a backing layer (3) which is capable of forming a relatively fluid-tight seal or closure (4) over a wound (5) and one inlet pipe (6) for connection to a fluid supply tube (7), which passes 20 through the wound-facing face of the backing layer (5) at (8), and one outlet pipe (9) for connection to a fluid offtake tube (10), which passes through the wound-facing face at (11), the points (8), (11) at which the inlet pipe and the outlet pipe passes through and/or under the wound-facing face forming a relatively fluid-tight . 25 seal or closure over the wound; =
the inlet pipe being connected via means for supply flow regulation, here a valve (14), by the fluid supply tube (7) to a fluid reservoir (12), and the outlet pipe (9) being connected via means for aspirate flow regulation, here a valve (16) and a fluid offtake tube (10) to waste, e.g. to a collection 30 bag (not shown);
a device for moving fluid through the wound (5), here a diaphragm pump (18), e.g. preferably a small portable diaphragm pump, acting on the fluid aspiration tube (13) to apply a low negative pressure on the wound; and the valve (14) in the fluid supply tube (7), the valve (16) in the fluid offtake 35 tube (10), and the diaphragm pump (18), providing means for providing simultaneous aspiration and irrigation of the wound (5), such that fluid may be supplied to fill the flowpath from the fluid reservoir via the fluid supply tube (via the means for supply flow regulation) and moved by the device through the flow path.
The operation of the apparatus is as described hereinbefore.
Referring to Figure 2, the apparatus (21) is a variant two-pump system with essentially identical, and identically numbered, components as in Figure 1, except that there is no means for supply flow regulation in the fluid supply tube (7) from the fluid reservoir (12), and there is a first device for moving fluid through the wound (5), here a diaphragm pump (18A), e.g. preferably a small portable diaphragm pump, acting on the fluid aspiration tube (13) downstream of and away from the wound dressing to apply a low negative pressure on the wound; with means for negative pressure regulation, here a valve (16) connected to the vacuum tube (13) and a vacuum vessel (aspirate collection jar) (19); and a second device for moving fluid through the wound (5), here a peristaltic pump (18B), e.g. preferably a small portable diaphragm pump, applied to the irrigant in the fluid supply tube (7) upstream of and towards the wound dressing, the first device (18A) and second device (18B), and the valve (16) in the vacuum tube (13), and the diaphragm pump (18), providing means for providing simultaneous aspiration and irrigation of the wound (5), such that fluid may be supplied to fill the flowpath from the fluid reservoir via the fluid supply tube (via the means for supply flow regulation) and moved by the devices through the flow path.
The operation of the apparatus is as described hereiribefore Referring to Figures 3 to 6, each dressing is in the form of a conformable body defined by a microbe-impermeable film backing layer (42) with a uniform thickness of 25 micron.

It has a wound-facing face (43), which is capable of forming a relatively fluid-tight seal or closure over a wound.
The backing layer (42) extends in use on a wound over the skin around the wound.
On the proximal face of the backing layer (42) on the overlap, it bears an adhesive film, to attach it to the skin sufficiently to hold the wound dressing in place in a fluid-tight seal around the periphery of the wound-facing face (43) of the wound dressing.
There is one inlet pipe (46) for connection to a fluid supply tube (not shown), which passes through and/or under the wound-facing face (43), and one outlet pipe (47) for connection to a fluid offtake tube (not shown), which passes through and/or under the wound-facing face (43), Referring to Figures 3a and 3b, one form of the dressing is provided with a wound filler (48) under a circular backing layer (42).
This comprises a generally frustroconical, toroidal conformable hollow body, defined by a membrane (49) which is filled with a fluid, here air or nitrogen, that urges it to the wound shape.
The toroidal hollow body/filler (48) may be permanently attached to the backing layer with an adhesive film (not shown) or by Meat-sealing.
The inlet pipe (46) and outlet pipe (47) are mounted centrally in the backing layer (42) above the central tunnel (50) of the toroidal hollow body (48) and each passes through the backing layer (42).
Each extends in pipes (51) and (52) respectively through the tunnel (50) of the toroidal hollow body (48) and then radially in diametrically opposite directions under the body (48).
This form of the dressing is a more suitable layout for deeper wounds.

Referring to Figures 4a and 4b, a more suitable rurm for shallower wounds is shown.
This comprises a circular backing layer (42) and a circular upwardly dished first membrane (61) with apertures (62) that is permanently attached to the backing layer (42) by heat-sealing to form a circular pouch (63).
The pouch (63) communicates with the inlet pipe (46) through a hole (64), and thus effectively forms an inlet pipe manifold that delivers the aspirating fluid directly to the wound when the dressing is in use.
An annular second membrane (65) with openings (66) is permanently attached to the backing layer (42) by heat-sealing to form an annular chamber (67) with the layer (42).
The chamber (67) communicates with the outlet pipe (47) through an orifice (68), and thus effectively forms an outlet pipe manifold that collects the fluid directly from the wound when the dressing is in use.
Referring to Figures 5a and 5b, a variant of the dressing of Figures 4a and 4b that is a more suitable form for deeper wounds is shown.
This comprises a circular backing layer (42) and a filler (69), in the form of an inverted frustroconical, solid integer, here a resilient elastomeric foam, formed of a thermoplastic, or preferably a cross-linked plastics foam.
It may be permanently attached to the backing layer (42), with an adhesive film (not shown) or by heat-sealing.
A circular uvvvardly dished sheet (70) lies under and conforms to, bi.it is a separate structure, permanently unattached to, the backing layer (42) and the solid integer (69).
=

A circular upwardly dished first membrane (71) with apertures (72) is permanently attached to the sheet (70) by heat-sealing to form a circular pouch (73) with the sheet (70).
= 5 The pouch (73) communicates with the inlet pipe (46) through a hole (74), and thus effectively forms an inlet pipe manifold that delivers the aspirating fluid directly to the wound when the dressing is in use.
An annular second membrane (75) with openings (76) is permanently attached to the sheet (70) by heat-sealing to form an annular chamber (77) with the sheet (70).
The chamber (77) communicates with the outlet pipe (47) through an orifice (78), and thus effectively forms an outlet pipe manifold that collects the fluid directly from the wound when the dressing is in use.
Alternatively, where appropriate the dressing may be provided in a form in which the circular upwardly dished sheet (70) functions as the backing layer and the solid filler (69) sits on the sheet (70) as the backing layer, rather than under it. The filler (69) is held in place with an adhesive film or tape, instead of the backing layer (42).
Referring to Figures 6a and 6b, a dressing that is a more suitable form for deeper wounds is shown.
This comprises a circular backing layer (42) and a filler (79), in the form of an inverted generally hemispherical integer, permanently attached to the backing layer with an adhesive film (not shown) or by heat-sealing.
Here it is a resilient elastomeric foam or a hollow body filled with a fluid, here a gel that urges it to the wound shape.
The inlet pipe (46) and outlet pipe (47) are mounted peripherally in the backing layer (42).

A circular upwardly dished sheet (80) lies under and conforms to, but is a separate structure, permanently unattached to, the backing layer .(42) and the filler (79).
5 A circular upwardly dished bilamiriate membrane (81) has a closed channel (82) between its laminar components, with perforations (83) along its length on the outer surface (84) of the dish formed by the membrane (81) and an opening (85) at the outer end of its spiral helix, through which the 10 channel (82) communicates with the inlet pipe (46), and thus effectively forms an inlet pipe manifold that delivers the aspirating fluid directly to the wound when the dressing is in use.
The membrane (81) also has apertures (86) between and along the length 15 of the turns of the channel (82).
The inner surface (87) of the dish formed by the membrane (81) is permanently attached at its innermost points (88) with an adhesive film (not shown) or by heat-sealing to the sheet (80). This defines a mating closed 20 spirohelical conduit.
At the outermost end of its spiral helix, the conduit communicates through an opening (90) with the outlet pipe (47) and is thus effectively an outlet manifold to collect the fluid directly from the wound via the apertures 25 (86).
Referring to Figures 7a and 7b, one form of the dressing is provided with a circular backing layer (42).
A first (larger) inverted hemispherical membrane (92) is permanently attached centrally to the layer (42) by heat-sealing to form a hemispherical chamber (94) with the layer (42).

A second (smaller) concentric hemispherical membrane (93) within the first is permanently attached to the layer (42) by heat-sealing to form a hemispherical pouch (95).
The pouch (95) communicates with the inlet pipe (46) and is thus effectively an inlet manifold, from which pipes (97) radiate hemispherically and run to the wound bed to end in apertures (98). The pipes (97) deliver the aspirating fluid directly to the wound bed via the apertures (98).
The chamber (94) communicates with the outlet pipe (47) and is thus effectively an outlet manifold from which tubules (99) radiate hemispherically and run to the wound bed to end in openings (100). The tubules (99) collect the fluid directly from the wound via the openings (100).
Referring to Figures 8a to 8d, one form of the dressing is provided with a square backing layer (42) and first tube (101) extending from the inlet pipe (46), and second tube (102) extending from the outlet pipe (47) at the points at which they pass through the backing layer, to run over the wound bed.
These pipes (101), (102) have a blind bore with orifices (103), (104) along the pipes (101), (102).
These pipes (101), (102) respectively form an inlet pipe or outlet pipe manifold that delivers the aspirating fluid directly to the wound bed or collects the fluid directly from the wound respectively via the orifices.
In Figures 8a and 8d, one layout of each of the pipes (101), (102) as inlet pipe and outlet pipe manifolds is a spiral.
=
In Figure 8b, the layout is a variant of that of Figures 8a and 8b, with the layout of the inlet manifold (101) being a full or partial torus, and the outlet manifold (102) being a radial pipe.

Referring to Figure 8c, there is shown another suitable layout in which the inlet manifold (101) and the outlet manifold (102) run alongside each other over the wound bed in a boustrophedic pattern, i.e. in the manner of ploughed furrows.
Referring to Figures 9a to 9d, there are shown other suitable layouts for deeper wounds, which are the same as shown in Figures 8a to 8d. The square backing layer (42) however has a wound filler (110) under, and may be permanently attached to, the backing layer (42), with an adhesive film (not shown) or by heat-sealing, which is an inverted hemispherical solid integer, here a resilient elastomeric foam, formed of a thermoplastic, preferably a cross-linked plastics foam.
Under the latter is a circular upwardly dished sheet (111) which conforms to, but is a separate structure, permanently unattached to, the solid filler (110). Through the sheet (111) pass the inlet pipe (46) and the outlet pipe (47), to run over the wound bed. These pipes (101), (102) again have a blind bore with orifices (103), (104) along the pipes (101), (102).
Alternatively (as in Figures 5a and 5b), where appropriate the dressing may be provided in a form in which the circular upwardly dished sheet (111) functions as the backing layer and the solid filler (110) sits on the sheet (42) as the backing layer, rather than under it. The filler (110) is held in place with an adhesive film or tape, instead Of the backing layer (42).
In Figures 10a to 10c, inlet and outlet manifolds for the wound dressings for respectively delivering fluid to, and collecting fluid from, the wound, are formed by slots in and apertures through layers permanently attached to each other in a stack.

Thus, in Figure 10a there is shown an exploded isometric view of an inlet manifold and outlet manifold stack (120) of five square coterminous thermoplastic polymer layers, being first to fifth layers (121) to (125), each attached with an adhesive film (not shown) or by heat-sealing to the adjacent layer in the stack (120).
The topmost (first) layer (121) (which is the most distal in the dressing in use) is a blank square capping layer.
The next (second) layer (122), shown in Figure 10b out of the manifold stack (120), is a square layer, with an inlet manifold slot (126) through it.
The slot (126) runs to one edge (127) of the layer (122) for connection to a mating end of a fluid inlet tube ((not shown), and spreads into four adjacent branches (128) in a parallel array with spaces therebetween.
The next (third) layer (123) is another square layer, with inlet manifold apertures (129) through the layer (123) in an array such that the apertures (129) are in register with the inlet manifold slot (126) through the second layer (122) (shown in Figure 10b).
The next (fourth) layer (124), shown in Figure 10c out of the manifold stack (120), is another square layer, with inlet manifold apertures (130) through the layer (124) in an array such that the apertures (130) are in register with the apertures (129) through the third layer (123).
It also has an outlet manifold slot (131) through it.
The slot (131) runs to one edge (132) of the layer (124) on the opposite side of the manifold stack (120) from the edge (127) of the layer (122), for connection to a mating end of a fluid outlet tube (not shown).
= It spreads into three adjacent branches (133) in a parallel array in the spaces between the apertures (130) in the. layer (124) and in register with = the spaces between the apertures (129) in the layer (122).

The final (fifth) layer (125) is another square layer, with inlet manifold apertures (134) through the layer (125) in an array such that the apertures (134) are in register with the inlet manifold apertures (130) through the fourth layer (124) (in turn in register with the apertures (129) through the =
third layer (123). It also has outlet manifold apertures (135) in the layer (125) in an array such that the apertures (135) are in register with the outlet manifold slot (131) in the fourth layer (124).
It will be seen that, when the layers (121) to (125) are attached together to form the stack (120), the topmost (first) layer (121), the inlet manifold slot (126) through the second layer (122), and the third layer (123) cooperate to form an inlet manifold in the second layer (122), which is in use is connected to a mating end of a fluid inlet tube (not shown).
The inlet manifold slot (126) through the second layer (122), and the inlet manifold apertures (129), (130) and (134) through the layers (123), (124) and (125), all being mutually in register, cooperate to form inlet manifold conduits though the third to fifth layers (123), (124) and (125) between the inlet manifold in the second layer (122) and the proximal face (136) of the stack (120).
The third layer (121), the outlet manifold slot (131) through the fourth layer (124), and the fifth layer (125) cooperate to form an outlet manifold in the fourth layer (124), which is in use is connected to a mating end of a fluid outlet tube (not shown).
The outlet manifold slot (131) through the fourth layer (124), and the outlet manifold apertures (135) through the fifth layer (125), being mutually in register, cooperate to form outlet manifold conduits though the fifth layer (125) between the outlet manifold in the fourth layer (124) and the proximal .face (136) of the stack (120).
Referring to Figure 11A, the apparatus (21) is a variant two-pump system with essentially identical, and identically numbered, components as in Figure 2.

Thus, there is a means for supply flow regulation, here a valve (14) in the fluid supply tube (7) from the fluid reservoir (12), and a first device for moving fluid through the wound (5), here a fixed-speed 5 diaphragm pump (18A), e.g. preferably a small portable diaphragm pump, acting not on the fluid aspiration tube (13), but on an air aspiration tube (113) downstream of and away from an aspirate collection vessel (19) to apply a low negative pressure on the wound through the aspirate collection vessel (19); with 10 a second device for moving fluid through the wound (5), here a fixed-speed peristaltic pump (18B), e.g. preferably a small portable peristaltic pump, applied to the irrigant in the fluid supply tube (7) upstream of and towards the wound dressing, the first device (18A) and second device (18B), and the valve (14) in the 15 fluid supply tube (7), providing means for providing simultaneous aspiration and irrigation of the wound (5), such that fluid may be supplied to fill the flowpath from the fluid reservoir via the fluid supply tube (via the means for supply flow regulation) and moved by the devices through the flow path.
20 There is no means for aspirate flow regulation, e.g. a valve connected to the fluid offtake tube (10).
Since first device (18A) and second device (18B) are fixed-speed, the valve (14) in the fluid supply tube (7) provides the sole means for varying the 25 irrigant flow rate and the low negative pressure on the wound.
The following extra features are present:
The second device, the fixed-speed peristaltic pump (18B), is provided with means for avoiding over-pressure, in the form of a bypass loop with a non-30 return valve (115). The loop runs from the fluid supply tube (7) downstream of the pump (18B) to a point in the fluid supply tube (7) upstream of the pump (18B).

A pressure monitor (116) connected to the fluid offtake tube (10) has a feedback connection to a bleed regulator, here a motorised rotary valve (117) on a bleed tube (118) running to and centrally penetrating the top of the aspirate collection vessel (19). This provides means for holding the low negative pressure on the wound at a steady level.
A filter (119) downstream of the aspirate collection vessel (19) prevents passage of gas- (often air-) borne particulates, including liquids and micro-organisms, from the irrigant and/or exudate that passes into the aspirate collection vessel (19) into the first device (18A), whilst allowing the carrier gas to pass through the air aspiration tube (113) downstream of it to the first device (18A). The operation of the apparatus is as described hereinbefore Referring to Figure 11B, this shows an alternative layout of the essentially identical, and identically numbered, components in Figure 11A downstream of point A in Figure 11A. The bleed tube (118) runs to the air aspiration tube (113) downstream of the filter (119), rather than into the aspirate collection vessel (19). This provides means for holding the low negative pressure on the wound at a steady level. The operation of the apparatus is as described hereinbefore Referring to Figure 11C, this shows an alternative layout of the essentially identical, and identically numbered, components in Figure 11A upstream of point B in Figure 11A. The second device (18B) is a variable-speed pump, and the valve (14) in the fluid supply tube (7) is omitted. The second device (18B) is the sole means for varying the irrigant flow rate and the low negative pressure on the wound. The operation of the apparatus is as described hereinbefore Referring to Figure 11D, this shows an alternative layout of the essentially identical, and identically numbered, components in Figure IIA downstream of point B in Figure 11A.

The pressure monitor (116) is connected to a monitor offtake tube (120) and has a feedback connection to the bleed regulator, motorised rotary valve (117) on a bleed tube (118) running to the monitor offtake tube (120).
This provides means for holding the low negative pressure on the wound at a steady level. The operation of the apparatus is as described hereinbefore Referring to Figure 12A, this shows another alternative layout of the essentially identical, and identically numbered, components in Figure 11A
downstream of point B in Figure 11A.
The pressure monitor (116) is connected to a monitor offtake tube (120) and has a feedback connection to a means for aspirate flow regulation, here a motorised valve (16) in the air aspiration tube (113) downstream of the filter (119).
This provides means for aspirate flow regulation and for holding the low negative pressure on the wound at a steady level. The operation of the apparatus is as described hereinbefore Referring to Figure 12B, this shows another alternative layout of the essentially identical, and identically numbered, components in Figure 12A
downstream of point B in Figure 11A. The pressure monitor (116) is connected to a monitor offtake tube (120) and has a feedback connection to a means for aspirate flow regulation, here a motorised valve (16), in the fluid offtake tube (10) upstream of the aspirate collection vessel (19).
This provides means for aspirate flow regulation and for holding the low negative pressure on the wound at a steady level. The operation of the apparatus is as described hereinbefore Referring to Figure 12C, this shows another alternative layout of the essentially identical, and identically numbered, components in Figure 12A
downstream of point B in Figure 11A.

The pressure monitor (116) is connected to a monitor offtake tube (120) and has a feedback connection to a variable-speed first device (18A), here a variable-speed pump, downstream of the filter (119), and the valve (16) in the fluid offtake tube (10) is omitted.
This provides means for aspirate flow regulation and for holding the low negative pressure on the wound at a steady level. The operation of the apparatus is as described hereinbefore.
Referring to Figures 13 to 15, these forms of the dressing are provided with a wound filler (348) under a circular backing layer (342).
This comprises respectively a generally downwardly domed or toroidal, or oblately spheroidal conformable hollow body, defined by a membrane (349) which is filled with a fluid, here air or nitrogen, that urges it to the wound shape.
The filler (348) is permanently attached to the backing layer via a boss (351), which is e.g. heat-sealed to the backing layer (342).
An inflation inlet pipe (350), inlet pipe (346) and outlet pipe (347) are mounted centrally in the boss (351) in the backing layer (342) above the hollow body (348). The inflation inlet pipe (350) communicates with the interior of the hollow body (348), to permit inflation of the body (348). The inlet pipe (346) extends in a pipe (352) effectively through the hollow body (348). The outlet pipe (347) extends radially immediately under the backing layer (342).
In Figure 13, the pipe (352) communicates with an inlet manifold (353), formed by a membrane (361) with apertures (362) that is permanently attached to the filler (348) by heat-sealing.
It is filled with foam (363) formed of a suitable material, e.g. a resilient thermoplastic. Preferred materials include reticulated filtration polyurethane foams with small apertures or pores.

In Figure 14, the outlet pipe (347) communicates with a layer of foam (364) formed of a suitable material, e.g. a resilient thermoplastic. Again, preferred materials include reticulated filtration polyurethane foams with small apertures or pores.
In all of Figures 13, 14 and 15, in use, the pipe (346) ends in one or more openings that deliver the irrigant fluid directly from the wound bed over an extended area.
Similarly, the outlet pipe (347) effectively collects the fluid radially from the wound periphery when the dressing is in use.
Referring to Figure 16, the dressing is also provided with a wound filler (348) under a circular backing layer (342).
This also comprises a generally toroidal conformable hollow body, defined by a membrane (349) which is filled with a fluid, here air or nitrogen, that urges it to the wound shape.
The toroidal hollow bodyffiller (346) may be permanently attached to the backing layer (342) via a first boss (351) and a layer of gauze (364) formed of a suitable material, e.g. a resilient thermoplastic. Again, preferred materials include reticulated filtration polyurethane foams with small apertures or pores.
The first boss (351) and gauze layer (364) are respectively heat-sealed to the backing layer (342) and the boss (351).
An inflation inlet pipe (350), inlet pipe (346) and outlet pipe (347) are mounted centrally in the first boss (351) in the backing layer (342) above the toroidal hollow body (348).
The inflation inlet pipe (350), inlet pipe (346) and outlet pipe (347) respectively each extend in a pipe (353), (354) and (355) through a central tunnel (356) in the. hollow body (348) to a second boss (357) attached to the toroidal hollow body (348).

The pipe (353) communicates with the interior of the hollow body (348), to permit inflation of the body (348).
The pipe (353) extends radially through the second boss (357) to 5 communicate with an inlet manifold (352), formed by a membrane (361).
This is permanently attached to the filler (348) by heat-sealing in the form of a reticulated honeycomb with openings (362) that deliver the irrigant fluid directly to the wound bed over an extended area.
The pipe (355) collects the fluid flowing radially from the wound centre when the dressing is in use.
This form of the dressing is a more suitable layout for deeper wounds In Figure 17, the dressing is similar to that of Figure 16, except that the toroidal conformable hollow body, defined by a membrane (349), is filled with a fluid, here a solid particulates, such as plastics crumbs or beads, rather than a gas, such as air or an inert gas, such as nitrogen or argon.
The inflation inlet pipe (350) and pipe (353) are omitted from the central tunnel (356).
Examples of contents for the body also include gels, such as silicone gels or preferably cellulosic gels, for example hydrophilic cross-linked cellulosic gels, such as lntrasite TM cross-linked materials. Examples also include aerosol foams, and set aerosol foams, e.g. CaviCare TM foam.
Referring to Figures 18 and 19, another form for deeper wounds is shown.
This comprises a circular backing layer (342) and a lobed chamber (363) in the form of a deeply indented disc much like a multiple Maltese cross or a stylised rose.

This is defined by an upper impervious membrane (361) and a lower porous film with apertures (362) that deliver the irrigant fluid directly from the wound bed over an extended area.
A number of configurations of the chamber (363) are shown, all of which are able to conform well to the wound bed by the arms closing in and possibly overlapping in insertion into the wound.
In a particular design of the chamber (363), shown lowermost, on of the arms extended and provided with an inlet port at the end of the extended arm. This provides the opportunity for coupling and decoupling the irrigant supply remote from the dressing and the wound in use.
An inlet pipe (346) and outlet pipe (347) are mounted centrally in a boss (351) in the backing layer (342) above the chamber (363). The inlet pipe (346) is permanently attached to, and communicate with the interior of, the chamber (363), which thus effectively forms an inlet manifold. The space above the chamber (363) is filled with a loose gauze/filter/foam packing (348).
In Figure 18, the outlet pipe (347) collects the fluid from the interior of the dressing from just under the wound-facing face (343) of the backing layer (342).
A variant of the dressing of Figure 18 is shown in Figure 19. The outlet pipe (347) is mounted to open at the lowest point of the space above the chamber (363) into a piece of foam (384).

In Figure 21, the dressing is similar to that of Figure 14, with the addition of an inlet manifold (353), formed by a membrane (361) with apertures (362), over the lower surface of the generally downwardly domed annular wound hollow filler.
In Figure 22, the generally downwardly domed annular wound hollow filler is omitted.
Referring to Figure 23, another form for deeper wounds is shown. An inlet pipe (346) and outlet pipe (347) are mounted centrally in a boss (351) in the backing layer (342) above a sealed-off foam filler (348).
The inlet pipe (346) is permanently attached to and passes through the filler (348) to the wound bed. The outlet pipe (347) is attached to and communicates with the interior of, a chamber (383) defined by a porous foam attached to the upper periphery of the filler (348). The chamber (383) thus effectively forms an outlet manifold.
In Figure 24, the foam filler (348) is only partially sealed-off. The inlet pipe (346) is permanently attached to and passes through the filler (348) to the wound bed. The outlet pipe (347) is attached to and communicates with the interior of the foam of the filler (348). Fluid passes into an annular gap (389) near the upper periphery of the filler (348) into the foam, which thus effectively forms an outlet manifold.
Figures 25 and 26 show dressings in which the inlet pipe (346) and outlet pipe (347) pass through the backing layer (342).
=
In Figure 25, they communicate with the interior of a porous bag filler (348) defined by a porous film (369) and filled with elastically resilient plastics bead or crumb.

In Figure 26, they communicate with the wound space just below a foam filler (348). The foam (348) may CaviCare TM foam, injected and formed in situ around the pipes (346) and (347).
Referring to Figure 27, another form for deeper wounds is shown. This comprises a circular, or rnore usually square or rectangular backing layer (342) and a chamber (363) in the form of a deeply indented disc much like a multiple Maltese cross or a stylised rose.
This is defined by an upper impervious membrane (361) and a lower pourous film with apertures (362) that deliver the irrigant fluid directly to the wound bed over an extended area, and thus effectively forms an inlet manifold. Three configurations of the chamber (363) are shown in Figure 27b, all of which are able to conform well to the wound bed by the arms closing in and possibly overlapping in insertion into the wound.
The space above the chamber (363) is filled with a wound filler (348) under the backing layer (342). This comprises an oblately spheroidal conformable hollow body, defined by a membrane (349) that is filled with a fluid, here air or nitrogen, that urges it to the wound shape.
A moulded hat-shaped boss (351) is mounted centrally on the upper impervious membrane (361) of the chamber (363). lt has three internal channels, conduits or passages through it (not shown), each with entry and exit apertures. The filler (348) is attached to the membrane (361) of the chamber (363) by adhesive, heat welding or a mechanical fixator, such as a cooperating pin and socket.
An inflation inlet pipe (350), inlet pipe (346) and outlet pipe (347) pass under the edge of the proximal face of the backing layer (342) of the dressing.
It extend radially immediately under the filler (348) and over the membrane (361) of the chamber (363) to each mate with an entry aperture in the boss (351).

An exit to the internal channel, conduit or passage through it that receives the inflation inlet pipe (350) communicates with the interior of the hollow filler (348), to permit inflation.
An exit to the internal channel, conduit or passage that receives the inlet pipe (346) communicates with the interior of the chamber (363) to deliver the irrigant fluid via the chamber (363) to the wound bed over an extended area.
Similarly, an exit to the internal channel, conduit or passage that receives the outlet pipe (347) communicates with the space above the chamber (363) and under the wound filler (348), and collects flow of irrigant and/or wound exudate radially from the wound periphery.
Referring to Figure 28A, this shows another alternative layout of the essentially identical, and identically numbered, components in Figure 12C
downstream of point B in Figure 12A, and alternative means for handling the aspirate flow to the aspirate collection vessel under negative or positive pressure to the wound. The pressure monitor (116) is connected to a =
monitor offtake tube (120) and has a feedback connection to a variable-speed first device (18A), here a variable-speed pump, upstream of the aspirate collection vessel (19), and the filter (119) and the air aspiration tube (113) are omitted. This provides means for aspirate flow regulation and for holding the low negative pressure on the wound at a steady level.
The operation of the apparatus is as described hereinbefore.
Referring to Figure 28B, this shows another alternative layout of the essentially identical, and identically numbered, components in Figure 12C
downstream of point B in Figure 11A, and alternative means for handling the aspirate flow to the aspirate collection vessel under negative or positive pressure to the wound. The pressure monitor (116) is omitted, as is the feedback connection to a variable-speed first device (18A), here a variable-speed pump, downstream of the aspirate collection vessel (19) and the filter (119).

A third device (18C), here a fixed-speed pump, provides means for moving fluid from the aspirate collection vessel (19) into a waste bag (12C). The operation of the apparatus is as described hereinbefore.

Referring to Figure 29, this shows an alternative layout of the essentially identical, and identically numbered, components in Figure 11A upstream of point A in Figure 1IA.
10 It is a single-pump system essentially with the omission from the apparatus of Figure I IA of the second device for moving irrigant fluid into the wound dressing. The operation of the apparatus is as described hereinbefore.
15 The use of the apparatus of the present invention will now be described by way of example only in the following Example:
Example 1 - Removal of wound proteins and derivatives with a two-pump apparatus.
In this example, a gelatine sheet laid in a cavity wound model represents wound proteins and derivatives to be removed by the two-pump apparatus.
The dressing is essentially identical with that in Figure 18, i.e. it comprises a circular backing layer and a lobed chamber in the form of a deeply indented disc much like a multiple Maltese cross or a stylised rose, defined by an upper impervious membrane and a lower porous film with apertures that deliver the irrigant fluid directly from the wound bed over an extended area.
A two-pump system was set up essentially as in Figure 2, with an irrigant dispensing bottle ¨ 1000mISchott Duran, connected to a peristaltic pump (Masterflex) for irrigant delivery, and associated power supply and supply tube, a diaphragm vacuum pump (Schwarz) for aspiration, and associated power supply and offtake tube, connected to a vacuum vessel (aspirate collection jar) ¨ Nalgene 150m1 polystyrene each pump being connected to a dressing consisting of the following elements:
i) a wound contacting element, comprising a lobed bag with low porosity 'leaky' membrane wound contact layer on the lower surface, impermeable film on the top, and a foam spacer between the two layers to allow free flow of irrigant solution.
ii) a space filling element, comprising a reticulated, open-cell foam (black reticulated foam, Foam Techniques) 30mm thick, 60mm diameter iii) an occlusive adhesive coated polyurethane backing layer top film (Smith & Nephew Medical) with acrylic pressure sensitive adhesive iv) two tubes passing under the occlusive top film, and sealed to prevent leakage of gas or liquid:
a. one tube centrally penetrating the top film of the wound-contacting element to deliver irrigant into the chamber formed by this film and the porous element;
b. the other tube of approximately equal length to remove aspirate with the opening positioned just above the top film of the wound contacting element.
Preparation of gelatine sheet:
A 20% aqueous solution of gelatine was prepared by weighing gelatine into a glass jar and making it up to the required weight with deionised water.
The jar was placed in an oven (Heraeus), at set temperature 85 C. After 60 minutes the jar was removed from the oven and shaken, to encourage mixing. Petri dishes were partially filled with 10g quantities of the gelatine solution and placed in a fridge (LEC, set temperature: 4 C) to set for at least 1 hour. Final thickness of the gelatine slab was ¨5mm. Petri dishes containing the gelatine slabs were removed from the fridge at least 2 hours before use.
Preparation of test equipment and materials Irrigant solution (deionised water) and the Perspex wound model were pre-conditioned in an oven (Gallenkamp) at set temperature 37 C, for at least 4 hours before use.
For each test, a freshly prepared gelatine slab was removed from a Petri dish and weighed.

The Perspex wound model was then removed from the oven and the gelatine slab placed at the bottom of the cavity. Application of the dressing to the wound model was as follows:
- the wound contacting element was carefully placed over the gelatine slab - the foam filler was placed on top of this with the irrigant and aspirate tubes running centrally to the top of the cavity (the foam filler was slit to the centre to facilitate this).
- the side entry port, pre-threaded onto the tubes, was adhesively bonded to the upper surface of the wound model block using an acrylic pressure sensitive adhesive - the top adhesive coated film was applied over all of the elements and pressed down to give a seal on all sides, and especially around the tube entry/exit point Application of the dressing to the wound model was the same for all tests performed. All tubing used was the same for each experiment (e.g.
material, diameter, length).
Simultaneous Irrigation & Aspiration A schematic diagram of the system used in the experiment is shown below.
For the experiment most of the apparatus (not including the pumps, power supply, and connecting tubing to and from the pumps) was placed in an oven (Gallenkamp, set temperature: 37 C), on the same shelf.
Before starting the irrigation pump a vacuum was drawn on the system to check that the dressing and tube connections were substantially airtight (the pumping system was controlled to give a pressure at the vacuum vessel of approximately -75mmHg before opening the system up to include the dressing).
Once system integrity had been confirmed, the irrigation pump was started (nominal flow rate: 50m1/hr), i.e. both pumps running together. Timing of the experiment was started when the advancing water front within the irrigant tube was observed to have reached the top of the dressing.
After 60 minutes, the irrigation pump was stopped, shortly followed by the vacuum (aspiration) pump.

Aspirate liquid collected in the vacuum jar was decanted into a glass jar.
The vacuum jar was rinsed with ¨100m1 of deionised water and this added to the same glass jar.
The aspirate solution was placed in an oven (Heraeus, set temperature:
130 C) and dried to constant weight.
Sequential Irrigation & Aspiration The experimental set up was as for the simultaneous irrigation/aspiration experiment.
Before starting the experiment a vacuum was pulled on the system to check that the dressing and tube connections were substantially airtight. The pumping system was controlled to give a pressure at the vacuum vessel of approximately -75mmHg before opening the system up to include the dressing. Once system integrity had been confirmed, the irrigation pump was started (nominal rate: 186m1/hr) and run until the advancing water front in the irrigant tube was observed to have reached the top of the dressing.
The pump was temporarily stopped at this point whilst the vacuum line was sealed (using a tube clamp) and the vacuum pump stopped.
Timing of the experiment was from the point the irrigation pump was restarted. The pump was run until 50m1 of irrigant had entered the wound model (just over 16 minutes at the rate of 186m1/hr). At this point the irrigant pump was stopped.
It was observed that during the filling phase of sequential filling and flushing, air trapped in the model wound cavity caused the top film of the dressing to inflate substantially, to a point approaching failure.
After a further ¨44 minutes (60 minute from the start of the experirnAnt) thP
vacuum pump was started and the tube clamp on the aspirate line removed. The wound model was aspirated for 5 minutes. Towards the end of this period a small leak was introduced into the top film of the dressing to maximise the amount of fluid drawn from the wound model (it was observed that as the pressure differential between the wound model cavity and the vacuum jar reduced to zero, the flow of aspirate also tended to slow.

Introducing a small leak re-established the pressure differential and the flow of aspirate out of the cavity).
Results Simultaneous Irrigation & Aspiration Reference Aspirate Recovery of Concentration of gelatine in number recovered (g) _ gelatine (%) aspirated fluid (%w/w) 1 48.81 79.33 3.27 2 45.64 72.30 3.18 3 48.84 68.05 2.76 Mean 47.76 73.22 3.07 Sequential Irrigation & Aspiration Cycle Reference Aspirate Recovery of Concentration of gelatine in number _ recovered (g) gelatine (%) aspirated fluid (%w/w) 1 32.08 19.59 1.23 2 34.09 18.35 1.07 3 33.90 10.77 0.64 Mean 33.36 16.24 0.98 Conclusions Simultaneously irrigating and aspirating the wound model removed more of the gelatine placed at the base of the wound model cavity than sequentially filling and emptying the cavity, even though the amount of liquid entering the wound and the duration of the experiment were the same in both cases.
Simultaneously irrigating and aspirating also removed more fluid from the model wound.

Example 2. The combination of simultaneous fluid flow (irrigation) and aspiration (under reduced pressure) on wound bed fibroblasts compared with the exposure of wound bed fibroblasts to repeated fill-empty cycles of fluid flow and aspiration.
5 An apparatus of the present invention was constructed essentially as in Figure 20, which is an apparatus where an irrigant is delivered continually to the wound bed and the resultant wound exudate/fluid mixture is at the same time continually aspirated from the wound. Alternative systems are known where the wound is subjected to repeated iteration of a cycle of fluid 10 delivery followed by a period of aspiration under reduced pressure.
The apparatus comprised a surrogate wound chamber (Minucells perfusion chamber) in which normal diploid human fibroblasts were cultured on 13 mm diameter (Thermanox polymer) cover slips retained in a two part 15 support (Minucells Minusheets). Tissues present in the healing wound that must survive and proliferate were represented by the cells within the chamber. Nutrient medium (DMEM with 10% FCS with 1% Buffer All) to simulate an irrigant fluid/wound exudate mixture, was pumped from a reservoir into the lower aspect of the chamber where it bathed the 20 fibroblasts and was removed from the upper aspect of the chamber and returned to a second reservoir. The wound chamber was maintained at less than atmospheric pressure by means of a vacuum pump in line with the circuit.
25 The pumps for the circuit were peristaltic pumps acting on silicone (or equivalent) elastic tubing. The circuit was exposed to a vacuum of no more than 10% atmospheric pressure, 950 mbar and atmospheric pressure varied up to a maximum value of 1044 mbar.. The internal diameter of the tubing was 1.0 mm. A total volume for the circuit including the chamber 30 and the reservoir of between 50 and 220 ml was used. The flow rates used were at a number of values between 0.1 ml min-1 and 2.0 ml-1 min-1.
An experiment was conducted that simulated conditions that are not uncommon for healing wounds whereby a fluid was delivered to the wound 35 bed and the application of a vacuum was used to remove the mixture of fluid and exudate to a waste reservoir.

An air bleed fluid control valve was additionally positioned in the circuit so that on opening the air bleed occurred for a time and closed the fluid flow, the simulated irrigant fluid/wound exudate mixture was evacuated from the chamber and the fibroblasts were maintained under a negative pressure relative to the atmosphere. This represents an empty / fill system.
Results and Conclusions The following results were obtained for a circuit comprising a wound chamber as above containing a total volume of nutrient media (154 ml) pumped at a flow rate of 0.2 ml min-1 and where vacuum was set at 950 mbar and where atmospheric pressure varied up to a maximum value of 1044 mbar. The wound chamber and media were held at 37 C for 25 hours. In one set of wound chambers continuous flow was maintained. In a second set of chambers 6 cycles of empty/ fill were performed with each fill or empty phase lasting 1 hour.
In controls where empty/fill system with 6 x cycles of 1 hour empty/ 1 hour fill over a total of 25 hours, the survival and growth of the fibroblasts is inhibited.
However, when the nutrient medium flow in the first circuit is delivered continually to the Minucells chamber and the resultant nutrient medium is at the same time continually aspirated from the Minucells chamber under vacuum was set at 950 mbar and where atmospheric pressure varied up to a maximum value of 1044 mbar, the fibroblasts survive and proliferate to a greater extent during a 25 hour period than the control empty/fill circuits Conditions Mean relative level of cell activity* after 25 hours.
Baseline cell activity prior to introduction to wound chamber 100%
Fill empty 6 cycles 93%
Continuous flow 143%

*Cell activity measured with a VVST (Tetrazolium based mitochondrial dehdrogenase activity assay). Data normalised to fibroblasts seeded onto coverslips with normal nutrient media baseline activity The combination of continuous fluid flow at 0.2 ml min-1 and waste fluid removal under vacuum of no more than 10% atmospheric pressure, 950 mbar and atmospheric pressure varied up to a maximum value of 1044 mbar, enhances the cell response necessary for wound healing more than the fill empty fill pattern under vacuum.

Claims (21)

CLAIMS:
1. An apparatus for aspirating and irrigating a wound, comprising:
a conformable wound filler configured to be placed in the wound;
a wound cover configured to form a seal over the wound;
a fluid supply tube configured to supply fluid to the wound;
at least one fluid reservoir configured to be connected to the fluid supply tube;
an outlet tube configured to supply negative pressure to the wound;
a negative pressure source configured to be connected to the outlet tube, the negative pressure source configured to apply negative pressure to the wound by cycling between a first negative pressure level and a second negative pressure level;
a control device configured to:
control the fluid supply and the negative pressure source such that fluid is supplied to the wound while fluid is simultaneously aspirated from the wound;
maintain a desired balance of fluid removed from the wound and fluid supplied to the wound; and control the fluid supply such that fluid from the at least one fluid reservoir is supplied to the wound in a plurality of fluid supply cycles, each fluid supply cycle supplying a volume of fluid with a time period between fluid supply cycles.
2. The apparatus of claim 1, wherein the at least one fluid reservoir contains an anti-bacterial fluid.
3. The apparatus of claim 1 or 2, further comprising a biodegradable scaffold configured to be positioned under the wound cover and configured to be placed in contact with the wound.
4. The apparatus of claim 1, wherein the at least one fluid reservoir contains fluid that is capable of supplying thermal energy to the wound.
5. The apparatus of any one of claims 1 to 4, further,comprising an inflatable module configured to provide mechanical stress to the wound, the inflatable module configured to be positioned under the wound cover.
6. The apparatus of any one of claims 1 to 5, wherein the inflatable module is configured to be inflated via fluid expansion.
7. The apparatus of claim 1, wherein the at least one fluid reservoir contains a physiologically active component.
8. The apparatus of any one of claims 1 to 7, further comprising an irrigant pump configured to supply fluid to the wound.
9. The apparatus of any one of claims 1 to 8, wherein the fluid supply is configured to pulse the volume of fluid into the wound.
10. The apparatus of claim 9, wherein the fluid supply is configured to pulse the volume of fluid at least once per minute.
11. The apparatus of any one of claims 1 to 10, further comprising a module that imposes a linear flow on the irrigant fluid.
12. The apparatus of any one of claims 1 to 11, wherein the fluid supply tube is configured to apply shear stress to the wound.
13. The apparatus of any one of claims 1 to 8, wherein the control device is further configured to cyclically vary a velocity of fluid supplied to the wound.
14. The apparatus of any one of claims 1 to 10, further comprising a manifold configured to allow passage of fluid supplied to the wound and fluid removed from the wound in a linear stream.
15. The apparatus of any one of claims 1 to 8, wherein the control device is further configured to maintain a desired fluid flow velocity at the wound.
16. The apparatus of any one of claims 1 to 15, wherein the negative pressure source is configured to: vary an amplitude of the negative pressure at the wound and simultaneously vary an amplitude of a flow velocity of the fluid supplied to the wound.
17. The apparatus of claim 1, further comprising an inlet manifold that is configured to expand and apply positive pressure to the wound.
18. The apparatus of claim 1, further comprising a flattened manifold layer positioned between the wound filler and the wound cover, the manifold layer comprising at least one aperture for passage of negative pressure.
19. The apparatus of claim 1, further comprising a synthetic scaffold positionable under the wound cover and configured to be placed in contact with the wound.
20. The apparatus of any one of claims 1 to 19, wherein the at least one fluid reservoir is demountable.
21. The apparatus of any one of claims 1 to 20, wherein the at least one fluid reservoir is connected to the fluid supply tube via an interface.
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Families Citing this family (159)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB0224986D0 (en) 2002-10-28 2002-12-04 Smith & Nephew Apparatus
US8758313B2 (en) * 2003-10-28 2014-06-24 Smith & Nephew Plc Apparatus and method for wound cleansing with actives
US11298453B2 (en) 2003-10-28 2022-04-12 Smith & Nephew Plc Apparatus and method for wound cleansing with actives
GB0409443D0 (en) * 2004-04-28 2004-06-02 Smith & Nephew Apparatus
GB0518804D0 (en) * 2005-09-15 2005-10-26 Smith & Nephew Exudialysis tissue cleanser
GB0325130D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with scaffold
GB0518826D0 (en) * 2005-09-15 2005-10-26 Smith & Nephew Apparatus with actives from tissue - exudialysis
GB0325120D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with actives
GB0325129D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus in situ
GB0518825D0 (en) * 2005-09-15 2005-10-26 Smith & Nephew Apparatus with actives from tissue - sai
GB0325126D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with heat
US7708724B2 (en) 2004-04-05 2010-05-04 Blue Sky Medical Group Incorporated Reduced pressure wound cupping treatment system
US7776028B2 (en) 2004-04-05 2010-08-17 Bluesky Medical Group Incorporated Adjustable overlay reduced pressure wound treatment system
US8062272B2 (en) 2004-05-21 2011-11-22 Bluesky Medical Group Incorporated Flexible reduced pressure treatment appliance
US7909805B2 (en) 2004-04-05 2011-03-22 Bluesky Medical Group Incorporated Flexible reduced pressure treatment appliance
US10058642B2 (en) 2004-04-05 2018-08-28 Bluesky Medical Group Incorporated Reduced pressure treatment system
US10413644B2 (en) 2004-04-27 2019-09-17 Smith & Nephew Plc Wound treatment apparatus and method
US7753894B2 (en) 2004-04-27 2010-07-13 Smith & Nephew Plc Wound cleansing apparatus with stress
GB0508528D0 (en) * 2005-04-27 2005-06-01 Smith & Nephew SAI with macrostress
US8529548B2 (en) 2004-04-27 2013-09-10 Smith & Nephew Plc Wound treatment apparatus and method
GB0409444D0 (en) * 2004-04-28 2004-06-02 Smith & Nephew Apparatus
GB0508531D0 (en) * 2005-04-27 2005-06-01 Smith & Nephew Sai with ultrasound
GB0409446D0 (en) 2004-04-28 2004-06-02 Smith & Nephew Apparatus
GB0424046D0 (en) 2004-10-29 2004-12-01 Smith & Nephew Apparatus
GB0508529D0 (en) * 2005-04-27 2005-06-01 Smith & Nephew Sai with microstress
CN101257875A (en) 2005-09-06 2008-09-03 泰科保健集团有限合伙公司 Self contained wound dressing with micropump
US8048089B2 (en) 2005-12-30 2011-11-01 Edge Systems Corporation Apparatus and methods for treating the skin
US10172644B2 (en) 2006-03-29 2019-01-08 Edge Systems Llc Devices, systems and methods for treating the skin
US9566088B2 (en) 2006-03-29 2017-02-14 Edge Systems Llc Devices, systems and methods for treating the skin
US7779625B2 (en) * 2006-05-11 2010-08-24 Kalypto Medical, Inc. Device and method for wound therapy
US9820888B2 (en) 2006-09-26 2017-11-21 Smith & Nephew, Inc. Wound dressing
CA2872297C (en) 2006-09-28 2016-10-11 Smith & Nephew, Inc. Portable wound therapy system
CA2687406A1 (en) * 2007-05-07 2008-11-13 Carmeli Adahan Suction system
US9408954B2 (en) 2007-07-02 2016-08-09 Smith & Nephew Plc Systems and methods for controlling operation of negative pressure wound therapy apparatus
GB0712763D0 (en) 2007-07-02 2007-08-08 Smith & Nephew Apparatus
GB0715259D0 (en) 2007-08-06 2007-09-12 Smith & Nephew Canister status determination
WO2009067711A2 (en) 2007-11-21 2009-05-28 T.J. Smith & Nephew, Limited Suction device and dressing
GB0722820D0 (en) * 2007-11-21 2008-01-02 Smith & Nephew Vacuum assisted wound dressing
MX2010005553A (en) 2007-11-21 2010-06-01 Smith & Nephew Wound dressing.
EP3360519B1 (en) 2007-11-21 2020-11-18 Smith & Nephew plc Wound dressing
GB0723872D0 (en) 2007-12-06 2008-01-16 Smith & Nephew Apparatus for topical negative pressure therapy
US11253399B2 (en) 2007-12-06 2022-02-22 Smith & Nephew Plc Wound filling apparatuses and methods
US20130096518A1 (en) 2007-12-06 2013-04-18 Smith & Nephew Plc Wound filling apparatuses and methods
GB0723852D0 (en) * 2007-12-06 2008-01-16 Smith & Nephew Wound fillers
GB0723855D0 (en) 2007-12-06 2008-01-16 Smith & Nephew Apparatus and method for wound volume measurement
GB0724564D0 (en) * 2007-12-18 2008-01-30 Smith & Nephew Portable wound therapy apparatus and method
US8292847B2 (en) * 2008-01-02 2012-10-23 Raptor Ridge, Llc Systems and methods for vacuum-assisted regeneration of damaged tissue
KR101836310B1 (en) 2008-01-04 2018-03-08 엣지 시스템즈 엘엘씨 Appratus and method for treating the skin
ES2382595T3 (en) * 2008-01-08 2012-06-11 Bluesky Medical Group Inc. Wound treatment through variable and sustained negative pressure and method to control it
WO2009097451A1 (en) 2008-01-29 2009-08-06 Edge Systems Corporation Apparatus and method for treating the skin
WO2009108250A2 (en) 2008-02-27 2009-09-03 Aplion Medical, Llc Auto-replenishing, wound-dressing apparatus and method
US9033942B2 (en) * 2008-03-07 2015-05-19 Smith & Nephew, Inc. Wound dressing port and associated wound dressing
WO2009114624A2 (en) 2008-03-12 2009-09-17 Bluesky Medical Group Inc. Negative pressure dressing and method of using same
GB0808376D0 (en) 2008-05-08 2008-06-18 Bristol Myers Squibb Co Wound dressing
CA2923904C (en) * 2008-05-27 2018-10-23 Kalypto Medical, Inc. Negative pressure wound therapy device
AU2009251802B2 (en) * 2008-05-27 2013-05-30 Smith & Nephew, Inc. Control unit with pump module for a negative pressure wound therapy device
GB0817796D0 (en) 2008-09-29 2008-11-05 Convatec Inc wound dressing
US8114126B2 (en) * 2008-10-29 2012-02-14 Kci Licensing, Inc. Modular, reduced-pressure, wound-closure systems and methods
MX2011006808A (en) * 2008-12-24 2011-07-12 Kci Licensing Inc Membranes, systems, and methods for applying reduced pressure to a subcutaneous tissue site.
GB0902368D0 (en) 2009-02-13 2009-04-01 Smith & Nephew Wound packing
US8663198B2 (en) 2009-04-17 2014-03-04 Kalypto Medical, Inc. Negative pressure wound therapy device
US20100324516A1 (en) 2009-06-18 2010-12-23 Tyco Healthcare Group Lp Apparatus for Vacuum Bridging and/or Exudate Collection
MX2009007258A (en) * 2009-07-03 2011-01-24 Monterrey Inst Tecnologico Y De Estudios Superiores De Suction compress.
WO2011006009A1 (en) 2009-07-08 2011-01-13 Edge Systems Corporation Devices, systems and methods for treating the skin using time-release substances
ES2731200T3 (en) 2009-12-22 2019-11-14 Smith & Nephew Inc Apparatus for negative pressure wound therapy
JP5818372B2 (en) * 2010-01-22 2015-11-18 ケーシーアイ ライセンシング インク Foaming fluid irrigation device, system and method for negative pressure wound therapy
US8791315B2 (en) 2010-02-26 2014-07-29 Smith & Nephew, Inc. Systems and methods for using negative pressure wound therapy to manage open abdominal wounds
US9061095B2 (en) 2010-04-27 2015-06-23 Smith & Nephew Plc Wound dressing and method of use
USRE48117E1 (en) 2010-05-07 2020-07-28 Smith & Nephew, Inc. Apparatuses and methods for negative pressure wound therapy
GB201015656D0 (en) 2010-09-20 2010-10-27 Smith & Nephew Pressure control apparatus
CA2812265A1 (en) * 2010-09-22 2012-03-29 Venture Md Catheter
AU2011316599B2 (en) 2010-10-12 2018-09-20 Smith & Nephew, Inc. Medical device
GB201020236D0 (en) 2010-11-30 2011-01-12 Convatec Technologies Inc A composition for detecting biofilms on viable tissues
CA2819549C (en) 2010-12-08 2019-09-10 Convatec Technologies Inc. Wound exudate system accessory
CN103347561B (en) 2010-12-08 2016-09-07 康沃特克科技公司 For assessing the integrated system of wound exudate
CA2821681C (en) 2010-12-22 2023-05-16 Smith & Nephew, Inc. Apparatuses and methods for negative pressure wound therapy
USD714433S1 (en) 2010-12-22 2014-09-30 Smith & Nephew, Inc. Suction adapter
US20120253302A1 (en) * 2011-04-04 2012-10-04 Tyco Healthcare Group Lp Negative Pressure Wound Therapy Dressing
US9302034B2 (en) * 2011-04-04 2016-04-05 Smith & Nephew, Inc. Negative pressure wound therapy dressing
WO2012161723A1 (en) 2011-05-24 2012-11-29 Kalypto Medical, Inc. Device with controller and pump modules for providing negative pressure for wound therapy
US9058634B2 (en) 2011-05-24 2015-06-16 Kalypto Medical, Inc. Method for providing a negative pressure wound therapy pump device
US9067003B2 (en) 2011-05-26 2015-06-30 Kalypto Medical, Inc. Method for providing negative pressure to a negative pressure wound therapy bandage
CN105963074B (en) 2011-07-14 2020-01-17 史密夫及内修公开有限公司 Wound dressing and method of treatment
BR112014001884A2 (en) 2011-07-26 2019-10-15 Smith & Nephew systems and methods for controlling the operation of a reduced pressure therapy system
GB201115182D0 (en) 2011-09-02 2011-10-19 Trio Healthcare Ltd Skin contact material
DE102011112795A1 (en) 2011-09-09 2013-03-14 Paul Hartmann Ag Device for simulating a wound on the open abdomen
EP3053609B1 (en) * 2011-09-13 2019-03-06 KCI Licensing, Inc. Reduced-pressure canisters having hydrophobic pores
JP6258853B2 (en) * 2011-09-14 2018-01-10 スリーエム イノベイティブ プロパティズ カンパニー Positive pressure medical dressing with valve and kit including the same
ES2402456B1 (en) * 2011-10-19 2014-06-06 Jesús PORTAS FREIXES EQUIPMENT AND PROCEDURE FOR CLEANING WOUNDS
US9084845B2 (en) 2011-11-02 2015-07-21 Smith & Nephew Plc Reduced pressure therapy apparatuses and methods of using same
CN104010665B (en) 2011-11-02 2016-10-19 史密夫及内修公开有限公司 Pressure reduction therapy equipment and using method thereof
GB2497406A (en) 2011-11-29 2013-06-12 Webtec Converting Llc Dressing with a perforated binder layer
GB201120693D0 (en) 2011-12-01 2012-01-11 Convatec Technologies Inc Wound dressing for use in vacuum therapy
JP6426472B2 (en) * 2012-02-02 2018-11-21 ケーシーアイ ライセンシング インコーポレイテッド Intravaginal inserts of foam structure for directional granulation
AU2013234034B2 (en) 2012-03-12 2017-03-30 Smith & Nephew Plc Reduced pressure apparatus and methods
US9615884B2 (en) * 2012-03-14 2017-04-11 Armour Technologies, Inc. Sterile site apparatus, system, and method of using the same
US9427505B2 (en) 2012-05-15 2016-08-30 Smith & Nephew Plc Negative pressure wound therapy apparatus
EP3650055A1 (en) 2012-05-23 2020-05-13 Smith & Nephew plc Apparatuses and methods for negative pressure wound therapy
EP3406231B1 (en) * 2012-08-01 2022-04-13 Smith & Nephew plc Wound dressing and method of treatment
RU2015106112A (en) 2012-08-01 2016-09-20 СМИТ ЭНД НЕФЬЮ ПиЭлСи Wound dressing
GB201216928D0 (en) * 2012-09-21 2012-11-07 I2R Medical Ltd Portable medical device system
US9968488B2 (en) 2012-11-12 2018-05-15 Kci Usa, Inc. Externally-applied patient interface system and method
AU2013366038A1 (en) 2012-12-20 2015-07-16 Convatec Technologies Inc. Processing of chemically modified cellulosic fibres
GB2510398B (en) * 2013-02-01 2017-10-25 Salts Healthcare Ltd Ostomy appliance
CN105492035B (en) 2013-03-14 2019-06-14 史密夫和内修有限公司 System and method for application decompression treatment
US9737649B2 (en) 2013-03-14 2017-08-22 Smith & Nephew, Inc. Systems and methods for applying reduced pressure therapy
JP6715598B2 (en) 2013-03-15 2020-07-01 スミス アンド ネフュー ピーエルシーSmith & Nephew Public Limited Company Wound dressing and treatment method
US10492956B2 (en) * 2013-03-15 2019-12-03 Kci Licensing, Inc. Topical vacuum-press surgical incisional dressings, surgical adjuncts, hybrids and composites
EP3437575B1 (en) 2013-03-15 2021-04-21 Edge Systems LLC Devices and systems for treating the skin
US10238812B2 (en) 2013-03-15 2019-03-26 Edge Systems Llc Skin treatment systems and methods using needles
US10010658B2 (en) * 2013-05-10 2018-07-03 Smith & Nephew Plc Fluidic connector for irrigation and aspiration of wounds
WO2015023515A1 (en) 2013-08-13 2015-02-19 Smith & Nephew, Inc. Systems and methods for applying reduced pressure therapy
US11638640B2 (en) 2014-06-11 2023-05-02 Bard Shannon Limited In vivo tissue engineering devices, methods and regenerative and cellular medicine employing scaffolds made of absorbable material
US11883275B2 (en) 2014-06-11 2024-01-30 Bard Shannon Limited In vivo tissue engineering devices, methods and regenerative and cellular medicine employing scaffolds made of absorbable material
EP3174569B1 (en) 2014-07-31 2020-01-15 Smith & Nephew, Inc Systems and methods for applying reduced pressure therapy
AU2015370582B2 (en) 2014-12-22 2020-07-02 Smith & Nephew Plc Negative pressure wound therapy apparatus and methods
EP3795204B1 (en) 2014-12-23 2023-10-25 HydraFacial LLC Device for treating the skin using a rollerball
US10179229B2 (en) 2014-12-23 2019-01-15 Edge Systems Llc Devices and methods for treating the skin using a porous member
AU2015374632B2 (en) 2014-12-30 2020-09-10 Smith & Nephew, Inc. Systems and methods for applying reduced pressure therapy
US10076594B2 (en) 2015-05-18 2018-09-18 Smith & Nephew Plc Fluidic connector for negative pressure wound therapy
WO2017007939A1 (en) 2015-07-08 2017-01-12 Edge Systems Llc Devices, systems and methods for promoting hair growth
WO2017212345A2 (en) 2016-03-30 2017-12-14 Synovo Gmbh Detecting microbial infection in wounds
CA3019558A1 (en) 2016-03-30 2017-10-05 Convatec Technologies Inc. Detecting microbial infections in wounds
EP3454917B1 (en) 2016-05-13 2022-04-06 Smith & Nephew, Inc Automatic wound coupling detection in negative pressure wound therapy systems
KR20190028725A (en) 2016-07-08 2019-03-19 컨바텍 테크놀러지스 인크 Fluid Flow Detection
MX2019000239A (en) 2016-07-08 2019-09-06 Convatec Technologies Inc Flexible negative pressure system.
TW201805036A (en) 2016-07-08 2018-02-16 美商康瓦鐵克科技股份有限公司 Fluid collection apparatus
CN109621107A (en) * 2016-07-26 2019-04-16 冯颖 A kind of surgical postoperative nursing rehabilitation device
US10398811B1 (en) * 2016-07-28 2019-09-03 Board Of Regents Of The University Of Nebraska Medical irrigation system
JP7032384B2 (en) 2016-08-31 2022-03-08 スミス アンド ネフュー ピーエルシー Systems and methods for controlling the operation of decompression therapy systems to detect leaks
TWI629072B (en) * 2017-01-13 2018-07-11 廈門聖慈醫療器材有限公司 Suction disc
EP3592400A4 (en) * 2017-03-09 2020-11-25 Secretary, Department Of Biotechnology A wound dressing for combined negative pressure and fluid delivery system
CN110753532B (en) 2017-06-30 2022-04-12 T.J.史密夫及内修有限公司 Negative pressure wound therapy device
IT201700120992A1 (en) * 2017-10-25 2019-04-25 S2Medical Ab APPARATUS FOR NEGATIVE PRESSURE THERAPY FOR WOUNDS.
GB201718014D0 (en) 2017-11-01 2017-12-13 Smith & Nephew Dressing for negative pressure wound therapy with filter
US11844683B2 (en) 2018-03-12 2023-12-19 Bard Shannon Limited In vivo tissue engineering devices, methods and regenerative and cellular medicine employing scaffolds made of absorbable material
GB201811449D0 (en) 2018-07-12 2018-08-29 Smith & Nephew Apparatuses and methods for negative pressure wound therapy
GB201818824D0 (en) 2018-11-19 2019-01-02 Smith & Nephew Absorbent yarn
GB201818811D0 (en) 2018-11-19 2019-01-02 Smith & Nephew Method of immobilising a protein on a substrate
GB201818829D0 (en) 2018-11-19 2019-01-02 Smith & Nephew Absorbent component
CN109529146B (en) * 2018-11-22 2021-04-30 李盛善 Anti-hematocele flushing device for neurosurgery operation
GB201900407D0 (en) 2019-01-11 2019-02-27 Smith & Nephew Method of manufacturing a component for a wound dressing
CN110124143B (en) * 2019-05-24 2021-03-23 北京大学第三医院(北京大学第三临床医学院) Automatic wound flushing device
GB201912076D0 (en) 2019-08-22 2019-10-09 Smith & Nephew Absorbent component
GB201912071D0 (en) 2019-08-22 2019-10-09 Smith & Nephew Wound dressing
US11331221B2 (en) 2019-12-27 2022-05-17 Convatec Limited Negative pressure wound dressing
US11771819B2 (en) 2019-12-27 2023-10-03 Convatec Limited Low profile filter devices suitable for use in negative pressure wound therapy systems
EP4106695A4 (en) 2020-02-18 2024-03-20 Shifamed Holdings Llc Adjustable flow glaucoma shunts having non-linearly arranged flow control elements, and associated systems and methods
US11896756B2 (en) 2020-03-03 2024-02-13 Deroyal Industries, Inc. Negative pressure wound therapy instillation system
US11766355B2 (en) 2020-03-19 2023-09-26 Shifamed Holdings, Llc Intraocular shunts with low-profile actuation elements and associated systems and methods
BR122023022155A2 (en) * 2020-03-23 2024-02-20 Bard Shannon Limited IMPLANTABLE PROSTHESIS COMPRISING A BODY OF BIOCOMPATIBLE MATERIAL
CN111408057A (en) * 2020-04-03 2020-07-14 付爱军 Sterilizer for gynecological tumor
WO2022159723A1 (en) 2021-01-22 2022-07-28 Shifamed Holdings, Llc Adjustable shunting systems with plate assemblies, and associated systems and methods
WO2022241485A1 (en) * 2021-05-11 2022-11-17 Sofianos Chrysis Wound irrigation and/or aspiration device
AU2022315221A1 (en) * 2021-07-21 2024-02-08 Shifamed Holdings, Llc Implantable shunts with multi-layered fluid resistors, and associated systems and methods
WO2023034468A1 (en) * 2021-09-02 2023-03-09 Becton, Dickinson And Company Device for skin disinfection and adhesive deactivation
USD1016615S1 (en) 2021-09-10 2024-03-05 Hydrafacial Llc Container for a skin treatment device
CN113907989A (en) * 2021-11-15 2022-01-11 朱慧雅 Cleaning device for surgical nursing
DE102022118867A1 (en) 2022-07-27 2024-02-01 Thomas Klose Device and composition for treating a wound, cartridge for the device, method for producing the composition

Family Cites Families (497)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB114754A (en) 1918-04-18
US1066934A (en) 1912-08-26 1913-07-08 Mary E Manney Surgical appliance.
US2280915A (en) 1941-04-03 1942-04-28 John H Johnson Device for irrigating and treating wounds
DE847475C (en) 1944-08-22 1952-08-25 Heinrich C Ulrich Device for draining wounds
GB641061A (en) 1947-09-06 1950-08-02 James Donald Maclaurin Improvements in method of treating wounds
NL189176B (en) 1956-07-13 1900-01-01 Hisamitsu Pharmaceutical Co PLASTER BASED ON A SYNTHETIC RUBBER.
FR1163907A (en) 1956-10-25 1958-10-02 Skin care devices
US3171410A (en) 1962-08-29 1965-03-02 Jr Herbert J Towle Pneumatic wound dressing
US3288140A (en) 1963-10-04 1966-11-29 John J Mccarthy Means for treating surface wounds
US3307545A (en) 1964-09-02 1967-03-07 Johnson & Johnson Non-adherent dressing
US3367332A (en) 1965-08-27 1968-02-06 Gen Electric Product and process for establishing a sterile area of skin
GB1224009A (en) 1968-07-25 1971-03-03 Beiersdorf Ag Wound dressings
US3568675A (en) 1968-08-30 1971-03-09 Clyde B Harvey Fistula and penetrating wound dressing
US3786801A (en) * 1969-02-24 1974-01-22 Diagnostic Inc Method and apparatus for aiding in the detection of breast cancer
US3633567A (en) 1969-08-11 1972-01-11 Survival Technology Pneumatically actuated pressure dressing
US3624821A (en) * 1969-09-17 1971-11-30 Stanford A Henderson Suction pump
US3808178A (en) 1972-06-16 1974-04-30 Polycon Laboratories Oxygen-permeable contact lens composition,methods and article of manufacture
US3874387A (en) 1972-07-05 1975-04-01 Pasquale P Barbieri Valved hemostatic pressure cap
US3993080A (en) 1974-03-01 1976-11-23 Loseff Herbert S Suction tube and retrograde flushing for wounds, body cavities and the like
US3922957A (en) 1974-04-08 1975-12-02 Beckman Instruments Inc Microflow metering pump
US4117551A (en) 1974-05-30 1978-09-26 William R. Brooks Purgeable dispensing gun for polyurethane foam and the like
ZA762197B (en) 1975-04-15 1977-04-27 Int Paper Co Fluid evacuator
US4058123A (en) * 1975-10-01 1977-11-15 International Paper Company Combined irrigator and evacuator for closed wounds
GB1549756A (en) * 1977-03-10 1979-08-08 Everett W Wound irrigating device
US4184510A (en) 1977-03-15 1980-01-22 Fibra-Sonics, Inc. Valued device for controlling vacuum in surgery
US4180074A (en) * 1977-03-15 1979-12-25 Fibra-Sonics, Inc. Device and method for applying precise irrigation, aspiration, medication, ultrasonic power and dwell time to biotissue for surgery and treatment
US4178938A (en) * 1977-06-24 1979-12-18 Au Anthony S Pressure control systems
US4224945A (en) 1978-08-30 1980-09-30 Jonathan Cohen Inflatable expansible surgical pressure dressing
GB2047543B (en) 1978-12-06 1983-04-20 Svedman Paul Device for treating tissues for example skin
US5328614A (en) 1979-05-21 1994-07-12 Matsumura Kenneth N Methods and apparati for removing protein-bound molecules from body fluids
US4252119A (en) 1979-06-13 1981-02-24 The Kendall Company Pack for moist patient therapy
WO1981000002A1 (en) 1979-06-25 1981-01-08 Suntech Use of perfluorocarbon as burn treatment
DE3065372D1 (en) 1979-09-07 1983-11-24 Kingsdown Medical Consultants Wound dressing
US4316466A (en) 1980-06-27 1982-02-23 Biomedics, Inc. Body fluid drainage device
US4529402A (en) 1980-07-08 1985-07-16 Snyder Laboratories, Inc. Closed wound suction evacuator with rotary valve
GB2085305B (en) 1980-10-22 1985-01-03 Johnson & Johnson Absorbent products
US4465485A (en) 1981-03-06 1984-08-14 Becton, Dickinson And Company Suction canister with unitary shut-off valve and filter features
US4360021A (en) 1981-05-06 1982-11-23 Colgate-Palmolive Company Absorbent article
US4466431A (en) 1981-05-09 1984-08-21 Smith And Nephew Associated Companies Limited Dressings, manufacture and use
BR8107560A (en) 1981-11-19 1983-07-05 Luiz Romariz Duarte ULTRASONIC STIMULATION OF BONE FRACTURE CONSOLIDATION
US4499896A (en) 1982-03-30 1985-02-19 Minnesota Mining And Manufacturing Co. Reservoir wound dressing
IT211654Z2 (en) 1985-07-17 1989-04-07 Abbate Mariarosa VARIABLE DEPRESSION TREATMENT APPARATUS FOR LOCATION, AMPLITUDE AND FREQUENCY WITH ELECTRONIC COMMAND AND CONTROL.
AU562370B2 (en) 1982-10-02 1987-06-11 Smith & Nephew Associated Companies Plc Moisture vapour permeable adhesive surgical dressing
SE445298B (en) 1982-11-17 1986-06-16 Gunnar Pontus Em Swanbeck DEVICE FOR CLEANING AND TREATMENT OF SARS AND INFECTED SKIN PARTIES
AT379688B (en) 1982-11-22 1986-02-10 List Hans SENSOR ELEMENT FOR DETERMINING THE O2 CONTENT OF A SAMPLE
US4538920A (en) 1983-03-03 1985-09-03 Minnesota Mining And Manufacturing Company Static mixing device
DE3464326D1 (en) 1983-04-06 1987-07-30 Smith & Nephew Ass Dressing
SU1251912A1 (en) 1983-04-27 1986-08-23 Горьковский государственный медицинский институт им.С.М.Кирова Method of treatment of unformed fistula
DE3321151C2 (en) 1983-06-11 1986-09-18 Walter Küsnacht Beck Device for aspirating secretions
DE3323973A1 (en) 1983-07-02 1985-01-03 Boehringer Mannheim Gmbh, 6800 Mannheim ERYTHROCYTE RETENTION SUBSTRATES
US4778446A (en) 1983-07-14 1988-10-18 Squibb & Sons Inc Wound irrigation and/or drainage device
GB8334484D0 (en) 1983-12-24 1984-02-01 Smith & Nephew Ass Surgical dressing
DK149601C (en) 1984-01-23 1987-02-02 Coloplast As PRESSURELY BANDAGE
US4573965A (en) 1984-02-13 1986-03-04 Superior Plastic Products Corp. Device for draining wounds
US4568327A (en) 1984-02-27 1986-02-04 Universite De Sherbrooke Method and apparatus for the removal of gases physically dissolved by dialysis in the blood
US4837285A (en) 1984-03-27 1989-06-06 Medimatrix Collagen matrix beads for soft tissue repair
US4561435A (en) 1984-04-04 1985-12-31 Chesebrough-Ponds, Inc. Wound dressing
GB8419745D0 (en) 1984-08-02 1984-09-05 Smith & Nephew Ass Wound dressing
US4872450A (en) 1984-08-17 1989-10-10 Austad Eric D Wound dressing and method of forming same
GB8422492D0 (en) 1984-09-06 1984-10-10 Smith & Nephew Ass Adhesive dressing
US4740202A (en) 1984-10-12 1988-04-26 Haemonetics Corporation Suction collection device
US4884563A (en) 1985-03-01 1989-12-05 Ferris Mfg. Corp. Non-stretching wound dressing and method for making same
GB8509978D0 (en) 1985-04-18 1985-05-30 Juhasz L Wound dressings
US4650462A (en) 1985-07-29 1987-03-17 Minnesota Mining And Manufacturing Company Irrigation system
US4710165A (en) 1985-09-16 1987-12-01 Mcneil Charles B Wearable, variable rate suction/collection device
DE3539533A1 (en) 1985-11-07 1987-05-14 Liedtke Pharmed Gmbh Plastic plaster
US4875473A (en) 1986-04-03 1989-10-24 Bioderm, Inc. Multi-layer wound dressing having oxygen permeable and oxygen impermeable layers
JPS62279885A (en) 1986-05-27 1987-12-04 Naigai Kagaku Seihin Kk Treatment of waste water containing hydrogen peroxide
US4813931A (en) 1986-08-28 1989-03-21 Tre Med, Inc. Pediatric suction system and method with filter
GB2195255B (en) 1986-09-30 1991-05-01 Vacutec Uk Limited Apparatus for vacuum treatment of an epidermal surface
DE3751254D1 (en) 1986-10-31 1995-05-24 Nippon Zeon Co Wound dressing.
US4759354A (en) 1986-11-26 1988-07-26 The Kendall Company Wound dressing
US5322695A (en) 1987-01-09 1994-06-21 Hercon Laboratories Corporation Moisture-vapor-permeable dressing
US4767026A (en) 1987-01-16 1988-08-30 Keller Wilhelm A Dispensing and mixing apparatus
ATE168016T1 (en) 1987-01-20 1998-07-15 Medinorm Ag CONNECTION DEVICE FOR A SUCTION BOTTLE FOR SUCTIONING WOUND FLUID
US4867150A (en) 1987-01-20 1989-09-19 The B. F. Goodrich Company Perforated elastomeric soft film and wound dressing made therewith
US4753536A (en) 1987-03-09 1988-06-28 Spehar Edward R Dispensing mixer for the storage and mixing of separate materials
US4787888A (en) 1987-06-01 1988-11-29 University Of Connecticut Disposable piezoelectric polymer bandage for percutaneous delivery of drugs and method for such percutaneous delivery (a)
JPH0741061B2 (en) 1987-07-09 1995-05-10 華郎 前田 Medical dressing
US5593395A (en) 1987-08-07 1997-01-14 Martz; Joel D. Vapor permeable dressing
US4930997A (en) 1987-08-19 1990-06-05 Bennett Alan N Portable medical suction device
US4798603A (en) 1987-10-16 1989-01-17 Kimberly-Clark Corporation Absorbent article having a hydrophobic transport layer
US4771919A (en) 1987-10-28 1988-09-20 Illinois Tool Works Inc. Dispensing device for multiple components
US5176663A (en) 1987-12-02 1993-01-05 Pal Svedman Dressing having pad with compressibility limiting elements
US4921488A (en) 1988-01-15 1990-05-01 Maitz Carlos A Aspirator device for body fluids
DE3802010A1 (en) 1988-01-25 1989-08-10 Gunter Siegel DEVICE FOR TREATING BODY PARTS OF A HUMAN
US5064653A (en) 1988-03-29 1991-11-12 Ferris Mfg. Co. Hydrophilic foam compositions
US4882213A (en) 1988-04-29 1989-11-21 Weyerhaeuser Company Absorbent article with tear line guide
US4950483A (en) 1988-06-30 1990-08-21 Collagen Corporation Collagen wound healing matrices and process for their production
DE3827561C1 (en) 1988-08-13 1989-12-28 Lts Lohmann Therapie-Systeme Gmbh & Co Kg, 5450 Neuwied, De
US5527293A (en) 1989-04-03 1996-06-18 Kinetic Concepts, Inc. Fastening system and method
US5100396A (en) 1989-04-03 1992-03-31 Zamierowski David S Fluidic connection system and method
US5261893A (en) 1989-04-03 1993-11-16 Zamierowski David S Fastening system and method
US4969880A (en) 1989-04-03 1990-11-13 Zamierowski David S Wound dressing and treatment method
US5030202A (en) * 1989-05-12 1991-07-09 Equibov Ltd. Lavage system
SE462516B (en) 1989-07-11 1990-07-09 Paal Svedman WOOL TAPE FOR DEEP SAAR
US5358494A (en) 1989-07-11 1994-10-25 Svedman Paul Irrigation dressing
US4979944A (en) 1989-08-21 1990-12-25 The Pullman Company Surgical vacuum evacuation device
DE3931018A1 (en) 1989-09-16 1991-05-16 Lohmann Therapie Syst Lts APPLICATION AID FOR FLAT SUBSTRATE SECTIONS
US5249709A (en) 1989-10-16 1993-10-05 Plas-Pak Industries, Inc. Cartridge system for dispensing predetermined ratios of semi-liquid materials
FR2653438B1 (en) 1989-10-23 1993-06-11 Dow Corning Sa EXPANDABLE SILICONE COMPOSITION AND USE THEREOF.
US5264218A (en) 1989-10-25 1993-11-23 C. R. Bard, Inc. Modifiable, semi-permeable, wound dressing
DE3935818A1 (en) 1989-10-27 1991-05-02 Wolfgang Dr Neher Washing appts. for infected wound - consists of cap fitted with nozzle for spraying cleansing solution
US5009635A (en) 1989-11-06 1991-04-23 Respironics Inc. Pump apparatus
US5152757A (en) 1989-12-14 1992-10-06 Brigham And Women's Hospital System for diagnosis and treatment of wounds
US6680113B1 (en) 1989-12-29 2004-01-20 3M Innovative Properties Company Multi-layered dressing
US5112323A (en) 1990-02-08 1992-05-12 Snyder Laboratories, Inc. Wound evacuator
EP0443262B1 (en) 1990-02-22 1995-09-27 Minnesota Mining And Manufacturing Company Static mixing assembly
US5055198A (en) 1990-03-07 1991-10-08 Shettigar U Ramakrishna Autologous blood recovery membrane system and method
US5336209A (en) 1990-04-06 1994-08-09 Porzilli Louis B Multi-function wound protection bandage and medicant delivery system with simultaneous variable oxygenation
DE4012232A1 (en) * 1990-04-14 1991-10-17 Franz Josef Gross Dressing for deep wounds - has main sheet applied to skin with centre hole over wound, fed and drainage tubes with perforated ends at wound, and overall cover film
CA2092201A1 (en) 1990-08-20 1992-02-21 Joaquin Mayoral Medical drug formulation and delivery system
EP0485657A1 (en) 1990-11-15 1992-05-20 Catalina Biomedical Corporation Modifiable, semi permeable wound dressing
EP1142581A3 (en) 1990-11-27 2002-09-11 American National Red Cross Tissue sealant and growth factor containing compositions that promote accelerated wound healing
GB9026065D0 (en) 1990-11-30 1991-01-16 Chemence Ltd Composition
DE4102684A1 (en) 1991-01-30 1992-08-06 Ionto Comed Gmbh Device for removing unwanted skin or tissue - includes element for disposal of unwanted material pref. in form of pipe and container system
AU1531292A (en) 1991-02-08 1992-09-07 Robert Bingham Liquid-impermeable tissue
US5419768A (en) 1991-03-07 1995-05-30 Aeros Instruments, Inc. Electrical medical vacuum regulator
US5662924A (en) 1991-03-21 1997-09-02 Smith & Nephew Plc Wound dressing
US5218973A (en) 1991-03-22 1993-06-15 Staodyn, Inc. Disposable wound treatment electrode
US5080661A (en) 1991-04-18 1992-01-14 Hollister Incorporated Fixation pin entry site dressing and method
US5149331A (en) 1991-05-03 1992-09-22 Ariel Ferdman Method and device for wound closure
DK122791D0 (en) 1991-06-24 1991-06-24 Coloplast As wound dressing
IT225480Y1 (en) 1991-07-05 1996-11-18 Zhermack S R L MODULAR EQUIPMENT ESPECIALLY FOR THE DOSAGE OF MULTI-COMPONENT F LUID AND / OR PASTOUS PRODUCTS
JPH07500035A (en) 1991-10-09 1995-01-05 レクテック コーポレイション Water-based gel wound dressings and packaging
AU2605592A (en) 1991-10-15 1993-04-22 Atrix Laboratories, Inc. Polymeric compositions useful as controlled release implants
EP0609236B1 (en) 1991-10-23 2002-05-02 L.L.C. Patent Holdings Wound dressing system
JPH07503943A (en) 1991-10-29 1995-04-27 クローバー コンソリデイテッド,リミテッド Cross-linked polysaccharides, polycations and lipids useful for encapsulation and drug release
US5616385A (en) 1991-11-05 1997-04-01 Minnesota Mining And Manufacturing Company Multi-cycle refastenable tape closure systems
US5636643A (en) 1991-11-14 1997-06-10 Wake Forest University Wound treatment employing reduced pressure
US5645081A (en) 1991-11-14 1997-07-08 Wake Forest University Method of treating tissue damage and apparatus for same
US7198046B1 (en) 1991-11-14 2007-04-03 Wake Forest University Health Sciences Wound treatment employing reduced pressure
US5480644A (en) 1992-02-28 1996-01-02 Jsf Consultants Ltd. Use of injectable biomaterials for the repair and augmentation of the anal sphincters
JPH08501203A (en) 1992-06-03 1996-02-13 ケイス・ウエスタン・リザーブ・ユニバーシティー Bandage for continuous application of bioactive substances
US5954680A (en) 1992-06-19 1999-09-21 Augustine Medical, Inc. Near hyperthermic heater wound covering
US6406448B1 (en) 1992-06-19 2002-06-18 Augustine Medical, Inc. Normothermic heater covering for tissue treatment
US5986163A (en) 1992-06-19 1999-11-16 Augustine Medical, Inc. Normothermic heater wound covering
US6465708B1 (en) 1992-06-19 2002-10-15 Augustine Medical, Inc. Covering
US5964723A (en) 1992-06-19 1999-10-12 Augustine Medical, Inc. Normothermic tissue heating wound covering
US5266326A (en) 1992-06-30 1993-11-30 Pfizer Hospital Products Group, Inc. In situ modification of alginate
US5678564A (en) 1992-08-07 1997-10-21 Bristol Myers Squibb Liquid removal system
ATE177613T1 (en) 1992-09-26 1999-04-15 Chemo Sero Therapeut Res Inst TISSUE ADHESIVE APPLICATOR
DE59309903D1 (en) * 1992-11-06 2000-01-20 Grieshaber & Co Ag Ophthalmic aspiration and irrigation system
GB2272645B8 (en) 1992-11-23 2010-02-10 Johnson & Johnson Medical Wound dressing
US5333760A (en) 1992-12-28 1994-08-02 Coltene/Whaledent, Inc. Dispensing and mixing apparatus
DK169711B1 (en) 1993-01-15 1995-01-23 Coloplast As A dressing
CA2114290C (en) 1993-01-27 2006-01-10 Nagabushanam Totakura Post-surgical anti-adhesion device
ATE271882T1 (en) 1993-03-12 2004-08-15 American Nat Red Cross SUPPLEMENTED SEALANTS FOR FABRIC, METHODS FOR THEIR PRODUCTION AND THEIR USE
US5681579A (en) 1993-03-22 1997-10-28 E.R. Squibb & Sons, Inc. Polymeric support wound dressing
JP3579052B2 (en) 1993-03-23 2004-10-20 フォーカル,インコーポレイテッド Apparatus for local application of polymeric material to living tissue
US5960795A (en) 1993-07-16 1999-10-05 Tecnol Medical Products, Inc. Wound covering device
CA2127173A1 (en) 1993-07-20 1995-01-21 Frank S. Castellana Medical dressing with semi-peripheral delivery system and methods therefor
ATE179319T1 (en) 1993-07-21 1999-05-15 Smith & Nephew SURGICAL DRESSING
WO1995003838A1 (en) 1993-07-28 1995-02-09 Pfizer Inc. Psoriasis treatment
US5466229A (en) 1993-08-06 1995-11-14 Davstar, Inc. Fluid collection system
US5616387A (en) 1993-08-31 1997-04-01 Minnesota Mining And Manufacturing Company Perforated roll of elastic wrap
JPH09502111A (en) 1993-08-31 1997-03-04 ミネソタ マイニング アンド マニュファクチャリング カンパニー Roll of perforated non-woven surgical tape
JP3334719B2 (en) 1993-09-16 2002-10-15 倭 窪田 Wound dressing material and wound dressing composition
US5419772A (en) 1993-09-29 1995-05-30 Teitz; Bernard R. Surgical irrigation apparatus for cleaning and sterilizing wounds and surgical areas during surgery
CA2132657C (en) 1993-10-05 2005-12-06 Marjory A. Kadash Trimmable wound dressing
US5713881A (en) 1993-10-22 1998-02-03 Rezai; Ebrahim Non-continuous absorbent composites comprising a porous macrostructure of absorbent gelling particles and a substrate
US5380280A (en) 1993-11-12 1995-01-10 Peterson; Erik W. Aspiration system having pressure-controlled and flow-controlled modes
DE4342457C2 (en) 1993-12-13 1997-04-17 Wim Dr Med Fleischmann Device for stimulating tissue regeneration in large and deep tissue defects
US5549584A (en) 1994-02-14 1996-08-27 The Kendall Company Apparatus for removing fluid from a wound
CA2187355C (en) 1994-04-08 2009-10-13 Richard L. Dunn An adjunctive polymer system for use with medical device
US5489304A (en) 1994-04-19 1996-02-06 Brigham & Women's Hospital Method of skin regeneration using a collagen-glycosaminoglycan matrix and cultured epithelial autograft
GB9408545D0 (en) 1994-04-29 1994-06-22 Zyma Sa Compositions
DE4416963C1 (en) 1994-05-13 1995-07-13 Boehringer Ingelheim Kg Enantiomerically pure di:aryl-prolinol derivs. prodn.
US5460490A (en) 1994-05-19 1995-10-24 Linvatec Corporation Multi-purpose irrigation/aspiration pump system
WO1996000760A1 (en) 1994-06-28 1996-01-11 Tri-Point Medical Corporation pH-MODIFIED BIOCOMPATIBLE MONOMER AND POLYMER COMPOSITIONS
JP3679143B2 (en) 1994-06-30 2005-08-03 株式会社ニデック Perfusion suction device
US5583114A (en) 1994-07-27 1996-12-10 Minnesota Mining And Manufacturing Company Adhesive sealant composition
ES2223977T3 (en) 1994-08-22 2005-03-01 Kci Licensing, Inc. CONTAINER.
DE4433450A1 (en) 1994-09-20 1996-03-21 Wim Dr Med Fleischmann Device for sealing a wound area
US5733253A (en) 1994-10-13 1998-03-31 Transfusion Technologies Corporation Fluid separation system
US5810755A (en) 1994-10-17 1998-09-22 Leveen; Harry H. Medicated wound dressing
US6110197A (en) 1994-11-21 2000-08-29 Augustine Medical, Inc. Flexible non-contact wound treatment device with a single joint
US5817145A (en) 1994-11-21 1998-10-06 Augustine Medical, Inc. Wound treatment device
EP0717970A1 (en) * 1994-12-20 1996-06-26 GRIESHABER &amp; CO. AG SCHAFFHAUSEN Opthalmic aspiration and irrigation device and its operation procedure
AR000655A1 (en) 1995-01-10 1997-07-10 Procter & Gamble A polymeric foam material that is capable of absorbing blood and blood-based fluids a catamenian cloth comprising an absorbent member made with the foam material an absorbent article comprising said foam material and a process for the preparation of said foam material l foam
US5609271A (en) 1995-01-25 1997-03-11 Wilhelm A. Keller Mixer and multiple component dispensing device assembly and method for the aligned connection of the mixer to the multiple component dispensing device
FR2730161B1 (en) 1995-02-07 1997-08-29 Molinier Ind Sa EASY TEAR ADHESIVE ELASTIC TAPE
US5918772A (en) 1995-03-13 1999-07-06 Wilhelm A. Keller Bayonet fastening device for the attachment of an accessory to a multiple component cartridge or dispensing device
SE510829C2 (en) 1995-03-30 1999-06-28 Moelnlycke Health Care Ab The operating sheet with self-adhesive edge
US5578317A (en) 1995-03-31 1996-11-26 Mulder; Gerit D. Wound filler and method of manufacture
EP0869804A4 (en) 1995-06-07 2001-08-16 American Nat Red Cross Supplemented and unsupplemented tissue sealants, methods of their production and use
US5792090A (en) 1995-06-15 1998-08-11 Ladin; Daniel Oxygen generating wound dressing
US5785679A (en) 1995-07-19 1998-07-28 Endotex Interventional Systems, Inc. Methods and apparatus for treating aneurysms and arterio-venous fistulas
US8282596B2 (en) 1999-12-10 2012-10-09 Medela Holding Ag Breastpump with letdown feature
US5814094A (en) 1996-03-28 1998-09-29 Becker; Robert O. Iontopheretic system for stimulation of tissue healing and regeneration
US6861570B1 (en) 1997-09-22 2005-03-01 A. Bart Flick Multilayer conductive appliance having wound healing and analgesic properties
US6087549A (en) 1997-09-22 2000-07-11 Argentum International Multilayer laminate wound dressing
GB9519571D0 (en) 1995-09-26 1995-11-29 Smith & Nephew Absorbent article
US5660823A (en) 1995-10-11 1997-08-26 Isp Investments Inc. Fast drying, film forming iodine release solution
US5776193A (en) 1995-10-16 1998-07-07 Orquest, Inc. Bone grafting matrix
GB9523253D0 (en) 1995-11-14 1996-01-17 Mediscus Prod Ltd Portable wound treatment apparatus
US6458889B1 (en) 1995-12-18 2002-10-01 Cohesion Technologies, Inc. Compositions and systems for forming crosslinked biomaterials and associated methods of preparation and use
EP0876165B1 (en) 1995-12-18 2006-06-21 Angiotech BioMaterials Corp. Crosslinked polymer compositions and methods for their use
US5830176A (en) * 1995-12-26 1998-11-03 Mackool; Richard J. Maintenance of pressure within a surgical site during a surgical procedure
US5985990A (en) 1995-12-29 1999-11-16 3M Innovative Properties Company Use of pendant free-radically polymerizable moieties with polar polymers to prepare hydrophilic pressure sensitive adhesive compositions
US6328712B1 (en) 1996-02-28 2001-12-11 Smisson-Cartledge Biomedical Corporation Rapid infusion system
US5667773A (en) 1996-03-12 1997-09-16 Adolor Corporation Film-forming compositions of antihyperalgesic opiates and method of treating hyperalgesic conditions therewith
AU2251297A (en) 1996-03-15 1997-10-01 Minnesota Mining And Manufacturing Company Photopolymerization reactions induced by chemiluminescence
CA2254898A1 (en) 1996-05-14 1997-11-20 C.R. Bard, Inc. Methods and products for sealing a fluid leak in a tissue
ES2164342T3 (en) 1996-05-22 2002-02-16 Coloplast As A TANK THAT INCLUDES A MAIN PART AND A HANDLING PART.
US6201164B1 (en) 1996-07-11 2001-03-13 Coloplast A/S Hydrocolloid wound gel
US20040171998A1 (en) 2000-07-21 2004-09-02 Marasco Patrick V. Isolated wound-treatment arrangement
ATE263629T1 (en) 1996-07-23 2004-04-15 Battelle Memorial Institute DEVICE FOR DISPENSING AND METHOD FOR SHAPING A MATERIAL
US6252129B1 (en) 1996-07-23 2001-06-26 Electrosols, Ltd. Dispensing device and method for forming material
AU4065297A (en) 1996-08-13 1998-03-06 Eugene Bell Collagen-based blood coagulating foams, method and devices for their delivery
US5976117A (en) 1996-09-25 1999-11-02 3M Innovative Properties Company Wound dressing
CA2317413A1 (en) 1997-01-10 1998-07-16 Medlogic Global Corporation Cyanoacrylate compositions comprising an antimicrobial agent
WO1998030093A1 (en) 1997-01-10 1998-07-16 Medlogic Global Corporation Methods for draping surgical incision sites
US5904659A (en) 1997-02-14 1999-05-18 Exogen, Inc. Ultrasonic treatment for wounds
US6018092A (en) 1997-03-04 2000-01-25 3M Innovative Properties Company Medical adhesive bandage, delivery system and method
US5958420A (en) 1997-03-13 1999-09-28 Nortrade Medical, Inc. Treatment of burns, cuts, and abrasions of the skin
US5941859A (en) 1997-03-17 1999-08-24 Lerman; Benjamin S. Wound irrigation shield with fluid scavenging
US5893862A (en) 1997-04-10 1999-04-13 Pratt; Arthur William Surgical apparatus
GB2324732B (en) 1997-05-02 2001-09-26 Johnson & Johnson Medical Absorbent wound dressings
US20020039594A1 (en) 1997-05-13 2002-04-04 Evan C. Unger Solid porous matrices and methods of making and using the same
DE19722075C1 (en) 1997-05-27 1998-10-01 Wilhelm Dr Med Fleischmann Medication supply to open wounds
EP0880953B1 (en) 1997-05-27 2003-10-01 Fleischmann, Wilhelm, Dr. med. Device for the application of active agents to a wound surface
US7759538B2 (en) 1997-05-27 2010-07-20 Wilhelm Fleischmann Process and device for application of active substances to a wound surface
NL1006457C2 (en) 1997-07-03 1999-01-05 Polymedics N V Drainage system to be used with an open wound, element used for applying a drainage pipe or hose and method for applying the drainage system.
US7214202B1 (en) 1997-07-28 2007-05-08 Kci Licensing, Inc. Therapeutic apparatus for treating ulcers
GB2328443B (en) 1997-08-21 2001-09-05 Reckitt & Colmann Prod Ltd In situ formation of pharmaceutically acceptable polymeric material
GB9719520D0 (en) 1997-09-12 1997-11-19 Kci Medical Ltd Surgical drape and suction heads for wound treatment
US7629384B2 (en) 1997-09-17 2009-12-08 Strategic Science & Technologies, Llc Topical delivery of L-arginine to cause beneficial effects
US6168788B1 (en) 1997-09-26 2001-01-02 Leon Wortham Fibrin glue without fibrinogen and biosealant compositions and methods
US5855208A (en) 1997-10-08 1999-01-05 Medlogic Global Corporation Methods for draping surgical incision sites using a biocompatible prepolymer
EP1021180B1 (en) 1997-10-09 2002-12-18 Flowers Park Limited Mixed cyanoacrylate ester compositions
US6458095B1 (en) 1997-10-22 2002-10-01 3M Innovative Properties Company Dispenser for an adhesive tissue sealant having a housing with multiple cavities
US5962010A (en) 1997-11-03 1999-10-05 Medlogic Global Corporation Methods and compositions for treating dermatoses
FR2770843B1 (en) 1997-11-13 2000-01-14 Lavipharm Lab ASSOCIATION OF PLANT POLAR LIPID-LIPIDS, PROCESS FOR THE PREPARATION THEREOF AND ITS APPLICATIONS
WO1999030629A1 (en) 1997-12-17 1999-06-24 Hemodynamics, Inc. Sealing media for surgery and wound closure
US6071267A (en) * 1998-02-06 2000-06-06 Kinetic Concepts, Inc. Medical patient fluid management interface system and method
DE19812195C2 (en) 1998-03-19 2000-03-30 Uwe Storch Process for producing a tissue-forming implant and its use
US6159160A (en) 1998-03-26 2000-12-12 Ethicon, Inc. System and method for controlled infusion and pressure monitoring
DK1066119T3 (en) 1998-03-26 2005-04-04 Exogen Inc Panels made of flexible transducer elements
DE19813663A1 (en) 1998-03-27 1999-10-07 Beiersdorf Ag Wound dressings for removing disruptive factors from wound fluid
US7211060B1 (en) 1998-05-06 2007-05-01 Exogen, Inc. Ultrasound bandages
WO1999059670A1 (en) 1998-05-21 1999-11-25 Baxter International Inc. Sealant applicator and method employing impulse clearing
EP1085913A1 (en) 1998-06-08 2001-03-28 Ferris Corporation Analgesic and antinociceptive methods
US6103275A (en) 1998-06-10 2000-08-15 Nitric Oxide Solutions Systems and methods for topical treatment with nitric oxide
AUPP421498A0 (en) 1998-06-18 1998-07-09 Macquarie Research Limited Method of tissue repair
US6458109B1 (en) * 1998-08-07 2002-10-01 Hill-Rom Services, Inc. Wound treatment apparatus
ATE502670T1 (en) 1998-08-14 2011-04-15 Incept Llc APPARATUS FOR IN-SITU FORMATION OF HYDROGELS
US6152943A (en) 1998-08-14 2000-11-28 Incept Llc Methods and apparatus for intraluminal deposition of hydrogels
ES2299262T3 (en) 1998-08-18 2008-05-16 Baxter International Inc. ITEM FOR APPLICATION OF OBTURATION AND APPLICATION PROCEDURE.
US6168800B1 (en) 1998-08-20 2001-01-02 Medwrap Corporation Antimcrobial multi-layer island dressing
AU768283B2 (en) 1998-08-20 2003-12-04 3M Innovative Properties Company Spray on bandage and drug delivery system
WO2000012018A1 (en) 1998-08-26 2000-03-09 Advanced Closure Systems, Inc. Compositions, systems, and methods for creating in situ, chemically cross-linked, mechanical barriers or covering structures
DE19844355A1 (en) 1998-09-28 2000-04-06 Rainer E Sachse Adhesive wound dressing of flexible, membrane like material penetrable by air comprises integrated device which drains wound secretions or produces reduced pressure, or can be connected to an external suction system
US6673982B1 (en) * 1998-10-02 2004-01-06 Kimberly-Clark Worldwide, Inc. Absorbent article with center fill performance
GB9822341D0 (en) 1998-10-13 1998-12-09 Kci Medical Ltd Negative pressure therapy using wall suction
US6899889B1 (en) 1998-11-06 2005-05-31 Neomend, Inc. Biocompatible material composition adaptable to diverse therapeutic indications
US7083634B2 (en) 1998-11-12 2006-08-01 Poly Med Inc Stabilized polyester/cyanoacrylate tissue adhesive formulation
US6143982A (en) * 1998-11-25 2000-11-07 Arlington Industries, Inc. Easy-insertion c-shaped connector
KR100804434B1 (en) 1998-12-23 2008-02-20 체에스엘 베링 게엠베하 Fibrin-based glue granulate and corresponding production method
DE29902666U1 (en) 1999-02-15 2000-06-29 Muehlbauer Ernst Kg Device for dispensing mixed multicomponent materials, in particular for dental purposes
US6254567B1 (en) 1999-02-26 2001-07-03 Nxstage Medical, Inc. Flow-through peritoneal dialysis systems and methods with on-line dialysis solution regeneration
FR2790391B1 (en) 1999-03-02 2002-11-15 Flamel Tech Sa MEANS FOR THE PREVENTION OF POST-SURGICAL ADHESION, BASED ON CROSS-LINKED COLLAGENIC PEPTIDES
US20070021697A1 (en) 2004-07-26 2007-01-25 Kci Licensing, Inc. System and method for use of agent in combination with subatmospheric tissue treatment
RU2247548C2 (en) 1999-04-02 2005-03-10 Кей Си Ай ЛАЙСЕНСИНГ, Инк. Vacuum system for closing wounds by applying means introduced for healing the wound
DK1164986T3 (en) 1999-04-02 2007-01-08 Kci Licensing Inc Vacuum-assisted closure system with heating and cooling measures
US20070014837A1 (en) 1999-04-02 2007-01-18 Kci Licensing, Inc. System and method for use of agent in combination with subatmospheric pressure tissue treatment
US6856821B2 (en) 2000-05-26 2005-02-15 Kci Licensing, Inc. System for combined transcutaneous blood gas monitoring and vacuum assisted wound closure
EP1169071B1 (en) 1999-04-09 2012-02-29 KCI Licensing, Inc. Wound therapy device
US6695823B1 (en) 1999-04-09 2004-02-24 Kci Licensing, Inc. Wound therapy device
US6312725B1 (en) 1999-04-16 2001-11-06 Cohesion Technologies, Inc. Rapid gelling biocompatible polymer composition
EP1048276A1 (en) 1999-04-28 2000-11-02 The Procter & Gamble Company Method for applying a foamable movement obstruction agent to an absorbent member
US6203563B1 (en) 1999-05-26 2001-03-20 Ernesto Ramos Fernandez Healing device applied to persistent wounds, fistulas, pancreatitis, varicose ulcers, and other medical or veterinary pathologies of a patient
US20020019617A1 (en) 1999-06-10 2002-02-14 Charles Edward Bolian Leakage protection means in a material for distributing fluid
ES2242631T3 (en) 1999-07-21 2005-11-16 Imedex Biomateriaux FOAM OF AN ADHESIVE PROTEIN FOR SURGICAL AND / OR THERAPEUTIC USES.
EP1083005A3 (en) 1999-08-11 2004-12-15 Tah Industries, Inc. A static mixer nozzle and attachment accessory configuration
US6179804B1 (en) 1999-08-18 2001-01-30 Oxypatch, Llc Treatment apparatus for wounds
DK1218437T3 (en) 1999-08-27 2009-10-19 Angiodevice Internat Gmbh Preparations forming interpenetrating polymer networks for use as high-strength medical sealants
US6261283B1 (en) 1999-08-31 2001-07-17 Alcon Universal Ltd. Liquid venting surgical system and cassette
US20030005094A1 (en) 1999-09-30 2003-01-02 Ruixi Yuan Two-mode operational scheme for managing service availability of a network gateway
JP3905291B2 (en) 1999-10-06 2007-04-18 株式会社ニデック Ophthalmic perfusion suction device
US6394314B1 (en) 1999-10-12 2002-05-28 Discus Dental Impressions, Inc. Double-barreled syringe with detachable locking mixing tip
GB9926538D0 (en) 1999-11-09 2000-01-12 Kci Medical Ltd Multi-lumen connector
US7087807B2 (en) 1999-11-10 2006-08-08 Arizant Technologies, Llc Tissue treatment device for an extremity
EP1267762A4 (en) 1999-11-15 2005-05-25 Texas A & M Univ Sys Wound sealant formed in situ
GB9927952D0 (en) 1999-11-26 2000-01-26 Caldwell Kenneth A ventilation apparatus
US6764462B2 (en) 2000-11-29 2004-07-20 Hill-Rom Services Inc. Wound treatment apparatus
US6824533B2 (en) 2000-11-29 2004-11-30 Hill-Rom Services, Inc. Wound treatment apparatus
US6264976B1 (en) 1999-11-29 2001-07-24 3M Innovative Properties Company Absorbent pad dressing frame delivery system
HUP0500055A2 (en) 1999-11-29 2005-07-28 Hill-Rom Services, Inc. Wound treatment apparatus
WO2001041779A2 (en) 1999-12-08 2001-06-14 1149336 Ontario Inc. Combined use of glp-2 receptor agonist and chemotherapeutic agent in treatment
GB2357286B (en) 1999-12-14 2003-11-05 Johnson & Johnson Medical Ltd Shaped wound dressings
US6345776B1 (en) 1999-12-23 2002-02-12 Fomo Products Inc. Two-component dispensing gun
US6528697B1 (en) 2000-01-03 2003-03-04 Augustine Medical, Inc. Modular bandage
KR100721752B1 (en) 2000-01-24 2007-05-25 쿠라레 메디카루 가부시키가이샤 Water-swellable polymer gel and process for preparing the same
US6758214B2 (en) 2000-01-28 2004-07-06 Cyterra Corporation Simple nitric oxide generator for ambulatory and/or bedside inhaled no treatment
US6794554B2 (en) 2000-02-01 2004-09-21 Ferris Pharmaceuticals, Inc. Wound packing material
US6977323B1 (en) 2000-02-17 2005-12-20 3M Innovative Properties Company Foam-on-film medical articles
JP2003523409A (en) 2000-02-25 2003-08-05 デイビッド シエラ Foam-forming wound dressing
AU2001245650A1 (en) 2000-03-10 2001-09-24 Ana-Gen Technologies, Inc. Mutation detection using denaturing gradients
US6626827B1 (en) 2000-09-01 2003-09-30 C. R. Bard, Inc. Fluid management assembly for use in endoscopic procedures
US7137968B1 (en) 2000-03-13 2006-11-21 Nucryst Pharmaceuticals Corp. Transcutaneous medical device dressings and method of use
EP1138336B1 (en) 2000-03-31 2003-12-10 Polyganics B.V. Biomedical polyurethane-amide, its preparation and use
JP2001314479A (en) 2000-05-08 2001-11-13 Terumo Corp Wound washing and activation device and system using the same
GB0011202D0 (en) 2000-05-09 2000-06-28 Kci Licensing Inc Abdominal wound dressing
EP1294325B1 (en) 2000-05-22 2008-09-10 Arthur C. Coffey Combination sis and vacuum bandage
US6496727B1 (en) 2000-05-31 2002-12-17 Becton, Dickinson And Company Medicament-loaded transdermal reservoir and method for its formation
US6520982B1 (en) 2000-06-08 2003-02-18 Kci Licensing, Inc. Localized liquid therapy and thermotherapy device
GB0015682D0 (en) 2000-06-28 2000-08-16 Bristol Myers Squibb Co Sprayable wound care composition
US6379702B1 (en) 2000-07-05 2002-04-30 Hydromer, Inc. Gels formed by the interaction of polyvinylpyrrolidone with chitosan derivatives
EP1607078A3 (en) 2000-07-18 2006-03-22 Coloplast A/S A dressing
AU2001283512A1 (en) 2000-07-27 2002-02-13 Flowers Park Limited Methods for treating burns on mammalian skin to reduce the risk of infection andto minimize fluid loss
IL137689A0 (en) 2000-08-03 2001-10-31 L R Res & Dev Ltd System for enhanced chemical debridement
US7144729B2 (en) 2000-09-01 2006-12-05 Dfb Pharmaceuticals, Inc. Methods and compositions for tissue regeneration
GB0022084D0 (en) 2000-09-08 2000-10-25 Univ Aberdeen Treatment of multiply antibiotic-resistant organisms
US20020122771A1 (en) 2000-09-23 2002-09-05 Troy Holland Spray hydrogel wound dressings
GB2367245B (en) 2000-09-29 2004-11-17 Johnson & Johnson Medical Ltd Adaptable dressings
US6660306B2 (en) 2000-10-12 2003-12-09 Mickey L. Peshoff Wound healing compound
AU9576501A (en) 2000-10-23 2002-05-06 Tissuemed Ltd Self-adhesive hydratable matrix for topical therapeutic use
US6682757B1 (en) 2000-11-16 2004-01-27 Euro-Celtique, S.A. Titratable dosage transdermal delivery system
ATE520379T1 (en) 2000-11-20 2011-09-15 Coloplast As WOUND DRESSING
US6855135B2 (en) 2000-11-29 2005-02-15 Hill-Rom Services, Inc. Vacuum therapy and cleansing dressing for wounds
US6685681B2 (en) 2000-11-29 2004-02-03 Hill-Rom Services, Inc. Vacuum therapy and cleansing dressing for wounds
US6558137B2 (en) 2000-12-01 2003-05-06 Tecumseh Products Company Reciprocating piston compressor having improved noise attenuation
GB2369799B (en) 2000-12-07 2004-07-07 Johnson & Johnson Medical Ltd Layered polyurethane materials
US7041868B2 (en) 2000-12-29 2006-05-09 Kimberly-Clark Worldwide, Inc. Bioabsorbable wound dressing
US6398761B1 (en) 2001-01-19 2002-06-04 Ultradent Products, Inc. Double syringe barrels with ported delivery ends
US7175336B2 (en) 2001-01-26 2007-02-13 Depuy Acromed, Inc. Graft delivery system
CA2438047A1 (en) 2001-02-14 2002-08-22 Hildegard M. Kramer Biocompatible fleece for hemostasis and tissue engineering
US7070584B2 (en) 2001-02-20 2006-07-04 Kci Licensing, Inc. Biocompatible wound dressing
US7763769B2 (en) 2001-02-16 2010-07-27 Kci Licensing, Inc. Biocompatible wound dressing
US20030211137A1 (en) 2001-02-21 2003-11-13 David Sierra Foam-forming wound dressing
US6706940B2 (en) 2001-02-22 2004-03-16 George Medical, L.L.C. Transparent film dressing and a method for applying and making the same
US6623444B2 (en) 2001-03-21 2003-09-23 Advanced Medical Applications, Inc. Ultrasonic catheter drug delivery method and device
WO2002083046A1 (en) 2001-04-16 2002-10-24 Pamela Howard Wound dressing system
US7645269B2 (en) 2001-04-30 2010-01-12 Kci Licensing, Inc. Gradient wound treatment system and method
US7108683B2 (en) 2001-04-30 2006-09-19 Kci Licensing, Inc Wound therapy and tissue management system and method with fluid differentiation
WO2002092783A2 (en) 2001-05-15 2002-11-21 Children's Medical Center Corporation Methods and apparatus for application of micro-mechanical forces to tissues
CN1226974C (en) 2001-05-16 2005-11-16 苏珊娜·伊丽莎白·查默斯 Wound dressings and wound treatment compositions
WO2002094256A1 (en) 2001-05-23 2002-11-28 Debatosh Datta Lysine and/or analogues and/or polymers thereof for promoting wound healing and angiogenesis
US6866994B2 (en) 2001-05-30 2005-03-15 Neomatrix, Llc Noninvasive intraductal fluid diagnostic screen
US7371403B2 (en) 2002-06-14 2008-05-13 Providence Health System-Oregon Wound dressing and method for controlling severe, life-threatening bleeding
GB0115054D0 (en) 2001-06-20 2001-08-15 Recuperatio Ltd Fluid transfer device
EP1405912B8 (en) 2001-07-06 2012-10-24 The Chemo-Sero-Therapeutic Research Institute Genetically modified ecarin and process for producing the same
DK1406567T3 (en) 2001-07-12 2010-05-31 Kci Medical Resources Controlling the rate of vacuum change
US20030021775A1 (en) * 2001-07-27 2003-01-30 Ramot University Authority For Applied Research & Industrial Development Ltd. Device for and method of controlled enzymatic removal and retrieval of tissue
US7364565B2 (en) 2001-07-27 2008-04-29 Ramot At Tel Aviv University Ltd. Controlled enzymatic removal and retrieval of cells
US20030032900A1 (en) 2001-08-08 2003-02-13 Engii (2001) Ltd. System and method for facial treatment
US6906036B2 (en) 2001-08-16 2005-06-14 Kimberly-Clark Worldwide, Inc. Anti-aging and wound healing compounds
US7004915B2 (en) 2001-08-24 2006-02-28 Kci Licensing, Inc. Negative pressure assisted tissue treatment system
US6547467B2 (en) 2001-08-29 2003-04-15 Closure Medical Corporation Microapplicators, delivery systems and methods for adhesives and sealants
GB2380135B (en) 2001-09-27 2005-01-12 Johnson & Johnson Medical Ltd Therapeutic wound dressing
SE524111C2 (en) 2001-09-28 2004-06-29 Jan Otto Solem A method and device for organ recovery
CA2462877A1 (en) 2001-10-11 2003-04-17 Hill-Rom Services, Inc. Waste container for negative pressure therapy
EP1306123A1 (en) 2001-10-24 2003-05-02 Karlheinz Reiber Applicator
US6787682B2 (en) 2001-11-05 2004-09-07 Hollister Incorporated Absorbent foam wound dressing
WO2003041686A2 (en) 2001-11-14 2003-05-22 Medlogic Global Limited Improved therapy for topical diseases
US7645253B2 (en) 2001-11-16 2010-01-12 National Quality Care, Inc. Wearable ultrafiltration device
US6648862B2 (en) 2001-11-20 2003-11-18 Spheric Products, Ltd. Personally portable vacuum desiccator
JP2003154003A (en) 2001-11-22 2003-05-27 Univ Waseda Medical washing system
ATE320781T1 (en) 2001-11-23 2006-04-15 Coloplast As WOUND DRESSING
US20030134332A1 (en) 2001-11-28 2003-07-17 Boykin Joseph V. Diagnosis of endothelial dysfunction by nitric oxide bioactivity index
AU2002359829A1 (en) 2001-12-26 2003-07-24 Hill-Rom Services, Inc. Vacuum bandage packing
WO2003057070A2 (en) 2001-12-26 2003-07-17 Hill-Rom Services Inc. Vented vacuum bandage and method
AU2003219916A1 (en) 2002-02-22 2003-09-09 University Of Washington Bioengineered tissue substitutes
AU2002360757A1 (en) 2002-02-28 2003-09-16 Hill-Rom Services, Inc. External catheter access to vacuum bandage
WO2003074100A1 (en) 2002-03-04 2003-09-12 New X-National Technology K.K. Closed cell culture system
US6732887B2 (en) 2002-03-26 2004-05-11 Ultradent Products, Inc. Two-part composition syringe delivery system
JP4073231B2 (en) 2002-03-28 2008-04-09 久光製薬株式会社 Sheet patch
EP3424472A1 (en) 2002-04-10 2019-01-09 KCI Medical Resources Access openings in vacuum bandage
DE20207356U1 (en) 2002-05-08 2003-06-12 Riesinger Birgit Absorbent body for connection to skin and mucous membrane surfaces
US20030212357A1 (en) 2002-05-10 2003-11-13 Pace Edgar Alan Method and apparatus for treating wounds with oxygen and reduced pressure
AU2003231886A1 (en) 2002-05-13 2003-11-11 Salviac Limited Retrieval catheter for an embolic filter
EP2650028B1 (en) 2002-05-31 2017-08-09 KCI Medical Resources Wound treatment apparatus
US20030225347A1 (en) 2002-06-03 2003-12-04 Argenta Louis C. Directed tissue growth employing reduced pressure
US20090130186A1 (en) 2002-06-14 2009-05-21 Hemcon Medical Technologies, Inc. Wound dressing assemblies, systems, and methods formed from hydrophilic polymer sponge structures such as chitosan and incorporating silver nanoparticles
GB2389794A (en) 2002-06-19 2003-12-24 Johnson & Johnson Medical Ltd Wound dressing with variable shape
US20040001878A1 (en) 2002-06-26 2004-01-01 Deroyal Industries, Inc. Infused wound care dressings
US7591781B2 (en) 2002-07-15 2009-09-22 Olympus Corporation Endoscope system with insertion direction changing guides
DE10233051A1 (en) 2002-07-19 2004-02-05 Coltène/Whaledent GmbH + Co. KG Dispensing system for fluid substances
WO2005017000A1 (en) 2003-07-31 2005-02-24 Cambridge Polymer Group Systems and methods for controlling and forming polymer gels
EP3915529A1 (en) 2002-08-06 2021-12-01 BAXTER INTERNATIONAL INC. (a Delaware corporation) Biocompatible phase invertible proteinaceous compositions and methods for making and using the same
US20040033466A1 (en) 2002-08-15 2004-02-19 Kerr Corporation Single dose dental restorative material delivery system and method
CA2495385A1 (en) 2002-08-21 2004-03-04 Hill-Rom Services, Inc. Wound packing for preventing wound closure
US8062331B2 (en) 2002-08-21 2011-11-22 Kci Licensing, Inc. Internal and external medical closure screen systems and methods
US7413570B2 (en) 2002-08-21 2008-08-19 Kci Licensing, Inc. Medical closure screen installation systems and methods
US7381211B2 (en) 2002-08-21 2008-06-03 Kci Licensing, Inc. Medical closure screen device and method
US7410495B2 (en) 2002-08-21 2008-08-12 Kci Licensing, Inc. Medical closure clip system and method
US7351250B2 (en) 2002-08-21 2008-04-01 Kci Licensing, Inc. Circumferential medical closure device and method
US7413571B2 (en) 2002-08-21 2008-08-19 Kci Licensing, Inc. Flexible medical closure screen and method
US7846141B2 (en) 2002-09-03 2010-12-07 Bluesky Medical Group Incorporated Reduced pressure treatment system
US7048856B2 (en) 2002-09-11 2006-05-23 Regents Of The University Of Michigan Ultrafiltration membrane, device, bioartificial organ, and methods
US6979324B2 (en) 2002-09-13 2005-12-27 Neogen Technologies, Inc. Closed wound drainage system
US7815616B2 (en) 2002-09-16 2010-10-19 Boehringer Technologies, L.P. Device for treating a wound
US7625362B2 (en) 2003-09-16 2009-12-01 Boehringer Technologies, L.P. Apparatus and method for suction-assisted wound healing
GB2393120A (en) 2002-09-18 2004-03-24 Johnson & Johnson Medical Ltd Compositions for wound treatment
US7862831B2 (en) 2002-10-09 2011-01-04 Synthasome, Inc. Method and material for enhanced tissue-biomaterial integration
US7094212B2 (en) 2002-10-11 2006-08-22 Ossur Hf Rigid dressing
GB2394418B (en) 2002-10-25 2007-01-31 Johnson & Johnson Medical Ltd Fluid wound dressing
GB0224986D0 (en) 2002-10-28 2002-12-04 Smith & Nephew Apparatus
US7854737B2 (en) 2002-12-20 2010-12-21 Depuy Products, Inc. Instrument and associated method of trailing for modular hip stems
US20040127845A1 (en) 2002-12-27 2004-07-01 Playtex Products, Inc. Breast pump system
US7976519B2 (en) 2002-12-31 2011-07-12 Kci Licensing, Inc. Externally-applied patient interface system and method
AU2003294367B2 (en) 2002-12-31 2009-11-12 Bsn Medical Gmbh Wound dressing
US6951553B2 (en) 2002-12-31 2005-10-04 Kci Licensing, Inc Tissue closure treatment system and method with externally-applied patient interface
EP1440737A1 (en) 2003-01-24 2004-07-28 Mixpac Systems AG Dispensing applicator for at least two components
US6838589B2 (en) 2003-02-19 2005-01-04 3M Innovative Properties Company Conformable wound dressing
DE10312899A1 (en) 2003-03-22 2004-10-07 Knf Neuberger Gmbh diaphragm pump
TW200427889A (en) 2003-03-31 2004-12-16 Teijin Ltd Non-woven fabric and process for producing the same
US20070141101A1 (en) 2003-04-10 2007-06-21 The Trustees Of Boston University Method for stimulating angiogenesis and wound healing
GB0312552D0 (en) 2003-06-02 2003-07-09 Nel Technologies Ltd Functional therapeutic corporeal and wound dressing heaters
AU2004258980B2 (en) 2003-07-22 2010-09-09 Solventum Intellectual Properties Company Negative pressure wound treatment dressing
US7129210B2 (en) 2003-07-23 2006-10-31 Covalent Medical, Inc. Tissue adhesive sealant
JP4611980B2 (en) 2003-08-08 2011-01-12 ザ シーバーグ カンパニー インコーポレイテッド Friction reduction device
US7785584B2 (en) 2003-08-13 2010-08-31 Healthpoint, Ltd. Ointment wound spray
US7361184B2 (en) 2003-09-08 2008-04-22 Joshi Ashok V Device and method for wound therapy
US20050065484A1 (en) 2003-09-10 2005-03-24 Watson Richard L. Wound healing apparatus with bioabsorbable material and suction tubes
GB0325129D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus in situ
GB0518826D0 (en) 2005-09-15 2005-10-26 Smith & Nephew Apparatus with actives from tissue - exudialysis
GB0325120D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with actives
GB0325130D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with scaffold
GB0518825D0 (en) 2005-09-15 2005-10-26 Smith & Nephew Apparatus with actives from tissue - sai
US11298453B2 (en) 2003-10-28 2022-04-12 Smith & Nephew Plc Apparatus and method for wound cleansing with actives
GB0518804D0 (en) 2005-09-15 2005-10-26 Smith & Nephew Exudialysis tissue cleanser
GB0409443D0 (en) 2004-04-28 2004-06-02 Smith & Nephew Apparatus
GB0325126D0 (en) 2003-10-28 2003-12-03 Smith & Nephew Apparatus with heat
US8758313B2 (en) 2003-10-28 2014-06-24 Smith & Nephew Plc Apparatus and method for wound cleansing with actives
US7182758B2 (en) 2003-11-17 2007-02-27 Mccraw John B Apparatus and method for drainage
DK1718257T3 (en) 2004-02-13 2010-10-18 Convatec Technologies Inc Multilayer wound dressing
EP1718318B1 (en) 2004-02-13 2014-08-13 Smith & Nephew Orthopaedics AG Wound healing composition
GB0403969D0 (en) 2004-02-24 2004-03-31 Huntleigh Technology Plc Tissue treatment device
US8100887B2 (en) 2004-03-09 2012-01-24 Bluesky Medical Group Incorporated Enclosure-based reduced pressure treatment system
US7754937B2 (en) 2004-03-18 2010-07-13 Boehringer Technologies, L.P. Wound packing material for use with suction
US8062272B2 (en) 2004-05-21 2011-11-22 Bluesky Medical Group Incorporated Flexible reduced pressure treatment appliance
US7790945B1 (en) 2004-04-05 2010-09-07 Kci Licensing, Inc. Wound dressing with absorption and suction capabilities
GB0409292D0 (en) 2004-04-27 2004-06-02 Smith & Nephew Apparatus with ultrasound
GB0409293D0 (en) 2004-04-27 2004-06-02 Smith & Nephew Apparatus with flow stress
GB0424046D0 (en) 2004-10-29 2004-12-01 Smith & Nephew Apparatus
GB0508531D0 (en) 2005-04-27 2005-06-01 Smith & Nephew Sai with ultrasound
GB0508528D0 (en) 2005-04-27 2005-06-01 Smith & Nephew SAI with macrostress
US10413644B2 (en) 2004-04-27 2019-09-17 Smith & Nephew Plc Wound treatment apparatus and method
US8529548B2 (en) 2004-04-27 2013-09-10 Smith & Nephew Plc Wound treatment apparatus and method
GB0409444D0 (en) 2004-04-28 2004-06-02 Smith & Nephew Apparatus
US7753894B2 (en) 2004-04-27 2010-07-13 Smith & Nephew Plc Wound cleansing apparatus with stress
GB0409291D0 (en) 2004-04-27 2004-06-02 Smith & Nephew Apparatus with stress
GB0508529D0 (en) 2005-04-27 2005-06-01 Smith & Nephew Sai with microstress
GB0409446D0 (en) 2004-04-28 2004-06-02 Smith & Nephew Apparatus
KR100681022B1 (en) 2004-06-16 2007-02-09 엘지전자 주식회사 Organic Electro Luminescence Display Device And Fabricating Method Thereof
MX2007001018A (en) 2004-07-26 2007-08-07 Kci Licensing Inc Method for coating substrate with antimicrobial agent and product formed thereby.
EP1625885A1 (en) 2004-08-11 2006-02-15 Vlaamse Instelling Voor Technologisch Onderzoek (Vito) Integrated permeate channel membrane
ES2328266T3 (en) 2004-09-20 2009-11-11 Medela Holding Ag MEMBRANE PUMP WITH VENTILATION VALVE.
US8449267B2 (en) 2004-09-29 2013-05-28 Shurflo, Llc Pump assembly and fluid metering unit
US20110313373A1 (en) 2004-11-02 2011-12-22 Birgit Riesinger Device for the treatment of wounds using a vacuum
US7485112B2 (en) 2004-11-08 2009-02-03 Boehringer Technologies, L.P. Tube attachment device for wound treatment
US20090076452A1 (en) 2004-11-19 2009-03-19 Emmebi S.R.L. Disposable device for washing wounds and surgical sites
GB2423019A (en) 2005-02-09 2006-08-16 Ind Ltd Ak Wound dressing and wound treatment system including the wound dressing
WO2006099137A1 (en) 2005-03-10 2006-09-21 Uab Research Foundation Endothelial predecessor cell seeded wound healing scaffold
DE102005014420A1 (en) 2005-03-24 2006-09-28 Inmeditec Medizintechnik Gmbh Vacuum therapy device
US20060241689A1 (en) 2005-04-20 2006-10-26 Leiboff Arnold R Viscera retainers, surgical drains and methods for using same
WO2006130594A2 (en) 2005-05-31 2006-12-07 Medtreo, Llc Bandages with break lines
GB0524027D0 (en) 2005-11-25 2006-01-04 Smith & Nephew Fibrous dressing
US8586818B2 (en) 2005-12-15 2013-11-19 Aalnex, Inc. Wound shield
US8235939B2 (en) 2006-02-06 2012-08-07 Kci Licensing, Inc. System and method for purging a reduced pressure apparatus during the administration of reduced pressure treatment
US8338402B2 (en) 2006-05-12 2012-12-25 Smith & Nephew Plc Scaffold
US20070292489A1 (en) 2006-06-14 2007-12-20 Mansour Bassiri Method for treatment of wound treatment using aganocides
ATE533453T1 (en) 2006-06-30 2011-12-15 Nitto Denko Corp MEDICAL TAPE OR ADHESIVE FILM
US20080069855A1 (en) 2006-08-21 2008-03-20 Bonutti Peter M Method of inhibiting the formation of adhesions and scar tissue and reducing blood loss
KR101523109B1 (en) 2006-09-26 2015-05-26 티 제이 스미스 앤드 네퓨 리미티드 Lattice dressing
DE102006047041A1 (en) 2006-10-02 2008-04-10 Birgit Riesinger Areal absorbent body
JP4880760B2 (en) 2006-11-30 2012-02-22 メデラ ホールディング アーゲー Wound treatment device
WO2008104609A1 (en) 2007-03-01 2008-09-04 Coloplast A/S Pressure-distributing elements for use with negative pressure therapy
GB0707758D0 (en) 2007-04-21 2007-05-30 Smith & Nephew A foam material for medical use and method for producing same
US7790946B2 (en) 2007-07-06 2010-09-07 Tyco Healthcare Group Lp Subatmospheric pressure wound therapy dressing
EP2173293A1 (en) 2007-07-16 2010-04-14 Hemcon Medical Technologies, Inc. Absorbable tissue dressing assemblies, systems, and methods formed from hydrophilic polymer sponge structures such as chistosan
WO2009021523A1 (en) 2007-08-14 2009-02-19 Coloplast A/S Pressure-distributing element of closed cell foam
US20090099519A1 (en) 2007-09-07 2009-04-16 Albert Einstein Healthcare Network Advanced abdominal dressing for the treatment of the postoperative hypothermic patients with an open abdomen
WO2009059444A2 (en) * 2007-11-08 2009-05-14 Medela Holding Ag Test unit for wound drainage coverings
US8545467B2 (en) 2007-12-07 2013-10-01 Medela Holding Ag Wound cover connecting device
EP3409304B1 (en) 2008-03-05 2022-07-27 3M Innovative Properties Company Dressing for applying reduced pressure to and collecting and storing fluid from a tissue site
WO2010016791A1 (en) 2008-08-05 2010-02-11 Mölnlycke Health Care Ab Component for securing attachment of a medical device to skin
CN102137688B (en) 2008-09-18 2014-01-22 凯希特许有限公司 Therapy delivery systems and methods
CN102143726B (en) 2008-09-18 2015-03-18 凯希特许有限公司 Multi-layer dressings, systems, and methods for applying reduced pressure at a tissue site
US8114126B2 (en) 2008-10-29 2012-02-14 Kci Licensing, Inc. Modular, reduced-pressure, wound-closure systems and methods
US20100137775A1 (en) 2008-11-25 2010-06-03 Spiracur Inc. Device for delivery of reduced pressure to body surfaces
DE102008062472A1 (en) 2008-12-16 2010-06-17 Paul Hartmann Aktiengesellschaft Wound dressing for negative pressure therapy
DE102009039336B4 (en) 2009-08-29 2023-07-13 Paul Hartmann Ag Vacuum therapy device with pressure sensor
WO2011090991A2 (en) 2010-01-20 2011-07-28 Kci Licensing, Inc. Foam wound inserts with regions of higher and lower densities, wound dressings, and methods
CN102711857B (en) 2010-01-20 2015-09-23 凯希特许有限公司 Instil and the wound connection gasket of negative pressure wound therapy for fluid, and system
DE102010012521A1 (en) 2010-03-17 2011-09-22 Aesculap Ag Medical kit for use in vacuum sealing therapy
US8604265B2 (en) * 2010-04-16 2013-12-10 Kci Licensing, Inc. Dressings and methods for treating a tissue site on a patient
USD692565S1 (en) 2010-06-03 2013-10-29 Smith & Nephew, Inc. Organ protection layer
CN202069996U (en) 2011-02-21 2011-12-14 朱新生 Cushion special for wound-surface flushing-negative-pressure closure drainage
JP2012200425A (en) 2011-03-25 2012-10-22 Terumo Corp Catheter assembly
US9050208B2 (en) 2011-05-27 2015-06-09 Kci Licensing, Inc. Systems and methods for delivering fluid to a wound therapy dressing
US9393354B2 (en) * 2011-11-01 2016-07-19 J&M Shuler Medical, Inc. Mechanical wound therapy for sub-atmospheric wound care system
US9456937B2 (en) * 2011-12-01 2016-10-04 Ann Marie Ellis Hand-held female urine collector
US10010658B2 (en) 2013-05-10 2018-07-03 Smith & Nephew Plc Fluidic connector for irrigation and aspiration of wounds
EP3235526B1 (en) 2013-12-18 2019-09-18 KCI Licensing, Inc. Autonomous fluid instillation system with tissue site pressure monitoring

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US20180250450A1 (en) 2018-09-06
US20150265754A1 (en) 2015-09-24
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EP3056241A1 (en) 2016-08-17
CA2563994C (en) 2015-07-28
US10758425B2 (en) 2020-09-01
CA2881742C (en) 2019-10-22
EP1742683B1 (en) 2016-02-03
US10039868B2 (en) 2018-08-07
CA2563994A1 (en) 2005-11-03
US20090012483A1 (en) 2009-01-08
US10758424B2 (en) 2020-09-01
EP1742683A1 (en) 2007-01-17
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US20180169309A1 (en) 2018-06-21
AU2005235353B2 (en) 2011-03-03
US20120004628A1 (en) 2012-01-05
US8105295B2 (en) 2012-01-31
JP4990759B2 (en) 2012-08-01
AU2005235353A1 (en) 2005-11-03
WO2005102415A1 (en) 2005-11-03
US9044569B2 (en) 2015-06-02
JP2007534406A (en) 2007-11-29
GB0409446D0 (en) 2004-06-02

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