WO1992011483A1 - Variable orifice devices - Google Patents

Variable orifice devices Download PDF

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Publication number
WO1992011483A1
WO1992011483A1 PCT/US1991/009509 US9109509W WO9211483A1 WO 1992011483 A1 WO1992011483 A1 WO 1992011483A1 US 9109509 W US9109509 W US 9109509W WO 9211483 A1 WO9211483 A1 WO 9211483A1
Authority
WO
WIPO (PCT)
Prior art keywords
slit
piece
variable orifice
bent
orifice device
Prior art date
Application number
PCT/US1991/009509
Other languages
French (fr)
Inventor
Robert A. Naugle
Philip Edward Stoneham
John Ridler Tinney
Original Assignee
Eastman Kodak Company
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Eastman Kodak Company filed Critical Eastman Kodak Company
Priority to JP4503197A priority Critical patent/JPH06503635A/en
Priority to DE69111469T priority patent/DE69111469T2/en
Priority to EP92903151A priority patent/EP0563262B1/en
Publication of WO1992011483A1 publication Critical patent/WO1992011483A1/en

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K15/00Check valves
    • F16K15/14Check valves with flexible valve members
    • F16K15/144Check valves with flexible valve members the closure elements being fixed along all or a part of their periphery
    • F16K15/147Check valves with flexible valve members the closure elements being fixed along all or a part of their periphery the closure elements having specially formed slits or being of an elongated easily collapsible form
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49405Valve or choke making
    • Y10T29/49412Valve or choke making with assembly, disassembly or composite article making
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49405Valve or choke making
    • Y10T29/49412Valve or choke making with assembly, disassembly or composite article making
    • Y10T29/49416Valve or choke making with assembly, disassembly or composite article making with material shaping or cutting
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49826Assembling or joining
    • Y10T29/49863Assembling or joining with prestressing of part
    • Y10T29/49867Assembling or joining with prestressing of part of skin on frame member
    • Y10T29/49869Assembling or joining with prestressing of part of skin on frame member by flexing

Definitions

  • variable orifice devices for controlling the flow of fluent material and which are opened to allow flow by a change in pressure differential across the device.
  • the objects are achieved in accordance with the present invention by providing an element formed of resilient material having opposed surfaces and a finite- thickness between those surfaces.
  • the element has a slit extending through its thickness between those surfaces. One end of the slit is at one of the surfaces and the other end of the slit is at the other of the surfaces.
  • the thickness of the element is such that when said element is deformed by bending out of an unstressed condition, said one surface is subjected to tensile stresses and said other surface is subjected to compressive stresses whereby said one end of the slit opens and the other end of the slit is forced closed.
  • the device also includes means for mounting the element in a bent, stressed condition whereby the said other end of the slit is forced closed.
  • the element is formed from a piece of cylindrical tube of resilient material, such as, silicone rubber.
  • a slit is made in the tube piece parallel to the axis of the tube piece.
  • the tube piece is then cut along its length parallel to the axis diametrically opposite the slit.
  • the cut piece of material is developed and laid out flat.
  • a disc is cut out of the material with the circular shape of the disc centered on the middle of the length of the slit.
  • the disc-shaped piece of material, having the slit is then mounted in the mounting means.
  • the mounting means includes a first annular member having an annular shoulder.
  • the disc-shaped piece of resilient material which has the slit, is placed in the annular member against the annular shoulder and a second annular member, which is a push fit in the first, is pushed into the first annular member so as to trap the disc-shaped element and retain it in stressed condition-
  • Fig. 1 is a plan view of a variable orifice device in accordance with the present invention
  • Fig. 2 is a cross-sectional view taken on the line II-II in Fig. 1;
  • Fig. 3 is a perspective view of a piece of silicone rubber tube, it being the starting material for a component of the variable orifice device illustrated in Figs. 1 and 2;
  • Fig. 4 is a cross-section on the line IV-IV in Fig. 3;
  • Fig.5 is a view similar to that of Fig. 4 but after a further manufacturing operation has been conducted;
  • Fig. 6 is a cross-sectional view of a housing containing a variable orifice device as illustrated in Figs. 1 and 2;
  • Fig. 7 is a side elevational view of the housing illustrated in Fig. 6; - * -Z - 8 is a plot of pressure drop against flow rates for two variable orifice devices in accordance with the present invention and for two fixed diameter open hole orifices for comparison; and Fig. 9 is a scrap cross-sectional view, similar to that of Fig. 2, but lacking the mounting means .
  • Figs 1 and 2 there is illustrated a variable orifice device 20 in accordance with the present invention.
  • the device 20 includes a first rigid frame member in the form of an annular member 22 which has an external cylindrical surface 24, an internal cylindrical surface 26 and an annular shoulder 28 facing over the surface 26. Seated on the shoulder 28 is a disc 30 of silicone rubber material.
  • the disc 30 has a diameter such that its periphery contacts the internal cylindrical surface 26 of the first annular member 22.
  • the disc 30 has a slit 32 and will be described in greater detail.
  • the disc 30 is secured in the first annular member 22 by a second rigid frame member in the form of an annular member 34 which has such an external diameter that it is a push fit into the first annular member 22 and is retained therein by the interference fit between the two annular members.
  • the second annular member 34 is pushed into the first annular member 22 so far that the peripheral annular margin of the disc 30 is compressed slightly so that there is no path for leak of fluent material, to be controlled by the variable orifice device, between the first and second annular me bers and the disc 30.
  • the disc 30 is formed from a tube formed of silicone rubber.
  • Fig. 3 illustrates a piece 36 of silicon rubber tube.
  • a suitable tube is that made for use in peristaltic pumps and in the present embodiment it was marketed by Masterflex with stock numbers ranging from #N-06411-13 through #N-06411-24, depending on diameter and wall thickness.
  • the tube has a 0.434 inch outside diameter and a wall thickness of 0.058 inch and has an inner surface 40 and an outer surface 42.
  • the slit 32 is made in the piece 36.
  • the slit is parallel to the axis 38 of the tube piece 36 and is 0.125 inch long..
  • the slit extends between the inner surface 40 and the outer surface 42.
  • the tube piece 36 is cut throughout its length along a line 44 (see Fig. 4) parallel to the axis 38 and diametrically opposite the slit 32.
  • the cut along line 44 creates two edges 46 and 48 and allows the tube piece 36 to be developed out of its cylindrical form shown in Figs. 3 and 4, through the partially developed form shown in Fig. 5, into a planar condition. It will be recognized that as the tube piece 36 is being developed from the cylindrical form towards the planar condition, the surface 40 is being stressed in tension, progressively, and the surface 42 is being stressed in compression, progressively.
  • the creation of such stresses has the effect of opening the slit 36 at the surface 40 and of forcing the bounding walls of the slit together adjacent the surface 42, as can be seen in Fig. 5.
  • the next manufacturing stage is to make a circular cut in the silicon rubber material so as to form the disc 30.
  • the circular shape of the cut is centered on the middle of the length of the slit 32 and has a diameter equal to that of the internal cylindrical surface 26 of the first annular member 22.
  • the disc 30 is inserted in planar form into the first annular member 22 and then the second annular member 34 is pushed into the first annular member 22 to trap the disc 30.
  • the interference fit between the two annular members retains the assemble of the two annular members and the disc, together.
  • variable orifice device In use, the variable orifice device is mounted so that the open end of the slit 32 faces the fluent material which is to be passed by the device. In this way, when the pressure is increased in the fluent material to cause passage of the material through the device, the increased pressure differential on the two surfaces of the disc 30 tends to cause the disc to move back towards its unstressed condition and in this way the forces keeping the slit closed at the surface 42 are overcome and the device is caused to pass fluent material.
  • the variable orifice device is mounted so that the direction of flow through the slit is from the surface which is in tension to the surface which is in compression.
  • a variable orifice device as described above provides a more nearly uniform pressure drop over a very wide range of flow rates than does a fixed diameter open hole orifice.
  • Fig. 8 is a plot of pressure drop in PSIG against flow in cc/min for: a fixed orifice having a diameter of 0.010 inch diameter (plot A); a fixed orifice having a diameter of 0.004 inch diameter (plot B); a first variable orifice device in accordance with the present invention, as described above (plot C); and a second variable orifice device in accordance with the present invention, as described above (plot T).
  • the devices in accordance with the present invention provide a backpressure which is more nearly uniform throughout a wide range of flow rates.
  • devices in accordance with the present invention may provide a wide range of flow rates with only a small variation in pressure to cause flow.
  • the first variable orifice, from which the plot C is derived had a shorter slit than the device of plot D and it is the shorter slit which caused the higher cracking and operating pressure. Both the devices of plots C and D had other dimensions as described above.
  • Pig- ⁇ illustrates a well known plumbing fitting 50, formed of brass, which has been internally modified to form a housing for the variable orifice device described above.
  • the plumbing fitting 50 is a coupling for coupling two pipes one of which is to be connected to one component 52 of the coupling by a compression connection. In this usage of the coupling 50 the compression rings are discarded.
  • the coupling has a stub pipe 54, which is an integral part of the other component 56 of the coupling, which is intended to be connected by a union to the other pipe.
  • the one component 52 of the fitting 50 includes a cup nut 58 threadedly engaged with the other component 56.
  • the cup nut 58 has a frusto-conical surface 60 facing, but spaced from, an annular end surface 62 of the other component 56.
  • the device 20 is positioned where the compression rings would have been if the fitting were being used for its designed purpose, as may be seen in Fig. 6.
  • the device 20 is positioned and the cup nut 58 is tightened up on the other component 56 thereby securing it in place and creating a seal preventing fluent material flowing through the fitting 50 other than through the slit 32.
  • the stub pipe 54 is connected to a supply pipe.
  • the fitting 50 constitutes a housing for the device 20.
  • the device may be used in the above-described housing as the end of a feed pipe for adding additives to a mixing vat. It has been found that the valve is very effective at preventing backflow from the vat into the additive feed pipe and that the volume of additive added may be very accurately controlled, ' there being no dripping or other drainage out of the feed pipe after the measured volume has been ejected through the valve. It has been found that the cracking pressure, that is, the threshold pressure necessary to cause the valve to open and allow flow of fluent material through it, and, hence, also the operating pressure, may be selected by selection of the wall thickness of the tube piece 36, the selection of the diameter of the tube piece 36 and the length of the slit 32. Each of thickening the tube wall, reducing the diameter of the tube and shortening the length of the slit, will increase the cracking pressure and the operating pressure.
  • the flow rate of a valve as described may be increased by forming the slit with an oblique incision instead of one perpendicular to the surfaces. Such an incision is illustrated at 64 in Fig. 9.
  • the starting material for the valve element formed of resilient material was a piece of tube and the valve element was stressed in planar form in use
  • the starting material may be a planar sheet of resilient material, such as silicone rubber, and it may be deformed into cylindrical shape in use.
  • the starting material could be spherical with it being stressed into larger or smaller radius in use.
  • the slit is formed in the starting material before it is bent into its stressed condition, the slit could be formed when the material is in the stressed or a partially stressed condition.
  • the disc 30 is in planar shape, in use, in other embodiments it may be in cylindrical shape of greater or less diameter than that of the tube from which it was formed.
  • the element formed of resilient material which performs the actual flow control, in use, is in the form of a disc, when stressed, it is to be understood that a circular peripheral form in either the stressed or unstressed condition is not an essential feature of the invention.
  • the periphery could be rectangular.

Abstract

A variable orifice device (20) for passing fluent material under pressure includes a piece (30) of resilient material bent out of its normal shape so that one surface is in tensile stressed condition and the other surface is in compressive stressed condition. A slit (32) extends between the two surfaces (40, 42). Because of the difference in the stressed conditions of the two surfaces (40, 42), one end of the slit (32) is open and the other end, at the compressively stressed surface, is in forced closed condition. The piece (30) of resilient material is mounted in its bent, stressed condition in a frame which holds the material in the bent condition. The piece (30) of resilient material may be cut from silicone rubber tubing (36) such as is used for peristaltic pumps. The frame may be two annular members (34), one of which is a push fit in the other, with the other having an annular shoulder (28) against which a disc (30) of the resilient material is trapped and sealed by the one annular member.

Description

VARIABLE ORIFICE DEVICES
BACKGROUND OF THE INVENTION 1. Field of the Invention
This invention relates to variable orifice devices for controlling the flow of fluent material and which are opened to allow flow by a change in pressure differential across the device. SUMMARY OF THE INVENTION It is an object of the invention to provide a variable orifice device which is simple and economic in construction so that it is discardable, which inhibits leakage in the reverse direction, and which allows a wide range of flow rates with little variation in back pressure. The objects are achieved in accordance with the present invention by providing an element formed of resilient material having opposed surfaces and a finite- thickness between those surfaces. The element has a slit extending through its thickness between those surfaces. One end of the slit is at one of the surfaces and the other end of the slit is at the other of the surfaces. The thickness of the element is such that when said element is deformed by bending out of an unstressed condition, said one surface is subjected to tensile stresses and said other surface is subjected to compressive stresses whereby said one end of the slit opens and the other end of the slit is forced closed. The device also includes means for mounting the element in a bent, stressed condition whereby the said other end of the slit is forced closed.
In one embodiment of the invention the element is formed from a piece of cylindrical tube of resilient material, such as, silicone rubber. A slit is made in the tube piece parallel to the axis of the tube piece. The tube piece is then cut along its length parallel to the axis diametrically opposite the slit. The cut piece of material is developed and laid out flat. A disc is cut out of the material with the circular shape of the disc centered on the middle of the length of the slit. The disc-shaped piece of material, having the slit, is then mounted in the mounting means.
In one embodiment, the mounting means includes a first annular member having an annular shoulder. The disc-shaped piece of resilient material, which has the slit, is placed in the annular member against the annular shoulder and a second annular member, which is a push fit in the first, is pushed into the first annular member so as to trap the disc-shaped element and retain it in stressed condition-
BRIEF DESCRIPTION OF THE DRAWINGS Embodiments of the present invention will now be described, by way of example, with reference to the accompanying drawings, in which:
Fig. 1 is a plan view of a variable orifice device in accordance with the present invention;
Fig. 2 is a cross-sectional view taken on the line II-II in Fig. 1;
Fig. 3 is a perspective view of a piece of silicone rubber tube, it being the starting material for a component of the variable orifice device illustrated in Figs. 1 and 2; Fig. 4 is a cross-section on the line IV-IV in Fig. 3;
Fig.5 is a view similar to that of Fig. 4 but after a further manufacturing operation has been conducted; Fig. 6 is a cross-sectional view of a housing containing a variable orifice device as illustrated in Figs. 1 and 2;
Fig. 7 is a side elevational view of the housing illustrated in Fig. 6; -*-Z - 8 is a plot of pressure drop against flow rates for two variable orifice devices in accordance with the present invention and for two fixed diameter open hole orifices for comparison; and Fig. 9 is a scrap cross-sectional view, similar to that of Fig. 2, but lacking the mounting means .
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT In Figs 1 and 2 there is illustrated a variable orifice device 20 in accordance with the present invention. The device 20 includes a first rigid frame member in the form of an annular member 22 which has an external cylindrical surface 24, an internal cylindrical surface 26 and an annular shoulder 28 facing over the surface 26. Seated on the shoulder 28 is a disc 30 of silicone rubber material. The disc 30 has a diameter such that its periphery contacts the internal cylindrical surface 26 of the first annular member 22. The disc 30 has a slit 32 and will be described in greater detail. The disc 30 is secured in the first annular member 22 by a second rigid frame member in the form of an annular member 34 which has such an external diameter that it is a push fit into the first annular member 22 and is retained therein by the interference fit between the two annular members. The second annular member 34 is pushed into the first annular member 22 so far that the peripheral annular margin of the disc 30 is compressed slightly so that there is no path for leak of fluent material, to be controlled by the variable orifice device, between the first and second annular me bers and the disc 30.
The disc 30 is formed from a tube formed of silicone rubber. Fig. 3 illustrates a piece 36 of silicon rubber tube. .A suitable tube is that made for use in peristaltic pumps and in the present embodiment it was marketed by Masterflex with stock numbers ranging from #N-06411-13 through #N-06411-24, depending on diameter and wall thickness. In the present embodiment the tube has a 0.434 inch outside diameter and a wall thickness of 0.058 inch and has an inner surface 40 and an outer surface 42. To form the disc 30 from the tube piece 36 the slit 32 is made in the piece 36. The slit is parallel to the axis 38 of the tube piece 36 and is 0.125 inch long.. The slit extends between the inner surface 40 and the outer surface 42.
After the slit 32 has been made in the tube piece 36, the tube piece is cut throughout its length along a line 44 (see Fig. 4) parallel to the axis 38 and diametrically opposite the slit 32. The cut along line 44 creates two edges 46 and 48 and allows the tube piece 36 to be developed out of its cylindrical form shown in Figs. 3 and 4, through the partially developed form shown in Fig. 5, into a planar condition. It will be recognized that as the tube piece 36 is being developed from the cylindrical form towards the planar condition, the surface 40 is being stressed in tension, progressively, and the surface 42 is being stressed in compression, progressively. The creation of such stresses has the effect of opening the slit 36 at the surface 40 and of forcing the bounding walls of the slit together adjacent the surface 42, as can be seen in Fig. 5. The next manufacturing stage is to make a circular cut in the silicon rubber material so as to form the disc 30. The circular shape of the cut is centered on the middle of the length of the slit 32 and has a diameter equal to that of the internal cylindrical surface 26 of the first annular member 22. To assemble the variable orifice device, the disc 30 is inserted in planar form into the first annular member 22 and then the second annular member 34 is pushed into the first annular member 22 to trap the disc 30. The interference fit between the two annular members retains the assemble of the two annular members and the disc, together.
In use, the variable orifice device is mounted so that the open end of the slit 32 faces the fluent material which is to be passed by the device. In this way, when the pressure is increased in the fluent material to cause passage of the material through the device, the increased pressure differential on the two surfaces of the disc 30 tends to cause the disc to move back towards its unstressed condition and in this way the forces keeping the slit closed at the surface 42 are overcome and the device is caused to pass fluent material. In all embodiments of the present invention, the variable orifice device is mounted so that the direction of flow through the slit is from the surface which is in tension to the surface which is in compression.
It has been found that a variable orifice device as described above provides a more nearly uniform pressure drop over a very wide range of flow rates than does a fixed diameter open hole orifice. Reference is made to Fig. 8 which is a plot of pressure drop in PSIG against flow in cc/min for: a fixed orifice having a diameter of 0.010 inch diameter (plot A); a fixed orifice having a diameter of 0.004 inch diameter (plot B); a first variable orifice device in accordance with the present invention, as described above (plot C); and a second variable orifice device in accordance with the present invention, as described above (plot T). It will be observed that the devices in accordance with the present invention provide a backpressure which is more nearly uniform throughout a wide range of flow rates. Expressed another way, devices in accordance with the present invention may provide a wide range of flow rates with only a small variation in pressure to cause flow. The first variable orifice, from which the plot C is derived, had a shorter slit than the device of plot D and it is the shorter slit which caused the higher cracking and operating pressure. Both the devices of plots C and D had other dimensions as described above. Pig- ~ illustrates a well known plumbing fitting 50, formed of brass, which has been internally modified to form a housing for the variable orifice device described above. The plumbing fitting 50 is a coupling for coupling two pipes one of which is to be connected to one component 52 of the coupling by a compression connection. In this usage of the coupling 50 the compression rings are discarded. The coupling has a stub pipe 54, which is an integral part of the other component 56 of the coupling, which is intended to be connected by a union to the other pipe.
The one component 52 of the fitting 50 includes a cup nut 58 threadedly engaged with the other component 56. The cup nut 58 has a frusto-conical surface 60 facing, but spaced from, an annular end surface 62 of the other component 56. In the present -use of the fitting 50 the device 20 is positioned where the compression rings would have been if the fitting were being used for its designed purpose, as may be seen in Fig. 6. The device 20 is positioned and the cup nut 58 is tightened up on the other component 56 thereby securing it in place and creating a seal preventing fluent material flowing through the fitting 50 other than through the slit 32. In use the stub pipe 54 is connected to a supply pipe. The fitting 50 constitutes a housing for the device 20. The device may be used in the above-described housing as the end of a feed pipe for adding additives to a mixing vat. It has been found that the valve is very effective at preventing backflow from the vat into the additive feed pipe and that the volume of additive added may be very accurately controlled,' there being no dripping or other drainage out of the feed pipe after the measured volume has been ejected through the valve. It has been found that the cracking pressure, that is, the threshold pressure necessary to cause the valve to open and allow flow of fluent material through it, and, hence, also the operating pressure, may be selected by selection of the wall thickness of the tube piece 36, the selection of the diameter of the tube piece 36 and the length of the slit 32. Each of thickening the tube wall, reducing the diameter of the tube and shortening the length of the slit, will increase the cracking pressure and the operating pressure.
It has been found that the flow rate of a valve as described may be increased by forming the slit with an oblique incision instead of one perpendicular to the surfaces. Such an incision is illustrated at 64 in Fig. 9.
While the invention has been described above in an embodiment in which the starting material for the valve element formed of resilient material was a piece of tube and the valve element was stressed in planar form in use, it is to be understood that both the starting material and the form of it in use may be different to those forms described above. For example, the starting material may be a planar sheet of resilient material, such as silicone rubber, and it may be deformed into cylindrical shape in use. Also, the starting material could be spherical with it being stressed into larger or smaller radius in use. Furthermore, while it in the embodiment of the invention particularly described above the slit is formed in the starting material before it is bent into its stressed condition, the slit could be formed when the material is in the stressed or a partially stressed condition.
Also, it should be understood that while in the embodiment specifically described above and illustrated in the drawings, the disc 30 is in planar shape, in use, in other embodiments it may be in cylindrical shape of greater or less diameter than that of the tube from which it was formed.
While in the embodiment specifically described above the element formed of resilient material, which performs the actual flow control, in use, is in the form of a disc, when stressed, it is to be understood that a circular peripheral form in either the stressed or unstressed condition is not an essential feature of the invention. For example the periphery could be rectangular.
The invention has been described in detail with particular reference to a presently preferred embodiment, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention.

Claims

What we claim is :
1. A variable orifice device for passing fluent material under pressure, in one direction, and for preventing flow in the opposite direction, said device including: an element formed of resilient material having opposed surfaces and a finite thickness between said surfaces; said element having a slit extending through its thickness between said surfaces, with one end of said slit being at one of said surfaces and the other end of said slit being at the other of said surfaces; the thickness of said element being such that when said element is bent out of an unstressed condition said one surface is subjected to tensile stresses and said other surface is subjected to compressive stresses whereby said end of the slit opens. and said other end of the slit is forced closed; and means for mounting said element in a bent, stressed condition whereby said other end of the slit is forced closed.
2. A variable orifice device as claimed in claim 1, wherein: said means for mounting said element in a bent, stressed condition includes a first rigid frame member having a continuous shoulder on which sits said element around its entire periphery, and a second rigid frame member adapted to be an interference fit within the first frame member and to trap the periphery of the element against the shoulder of the first frame member throughout its periphery.
3. A variable orifice device as claimed in claim 1 or 2, wherein: said element conforms to a cylinder when in a non-bent, unstressed condition.
4. A variable orifice device as claimed in claim 3, wherein said element is formed of silicone rubber.
5. A variable orifice device as claimed in claim 4, wherein said element has a natural thickness of 0.058 inch and said slit is 0.125 inch long.
6. A variable orifice device as claimed in claim 1 or 2, wherein the slit is perpendicular to the surfaces of the element between which it extends.
7. A variable orifice device as claims in claim 1 to 2, wherein the slit is oblique to the surfaces between which it extends.
8. A variable orifice device as claimed in claim 1, including: housing means for supporting the mounting means and for containing fluid to be passed through the slit when a threshold pressure differential on the two surfaces of the element is exceeded, the slit being open towards the inside of the housing.
9. A method of manufacturing a variable orifice device including: providing a piece of resilient material; forming a slit in the piece of material; stressing the piece of material by bending it; and mounting the stressed bent piece of material whereby the piece of material is held in its bent, stressed condition.
10. A method as claimed in claim 9, wherein: the step of forming the slit is performed while the piece of material is in an unstressed condition.
11. A method as claimed in claim 9, wherein: wherein the step of mounting the piece of stressed, bent material is performed by providing first and second frame members and mounting the piece of material between the frame members.
PCT/US1991/009509 1990-12-19 1991-12-13 Variable orifice devices WO1992011483A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
JP4503197A JPH06503635A (en) 1990-12-19 1991-12-13 variable orifice device
DE69111469T DE69111469T2 (en) 1990-12-19 1991-12-13 DIFFERENT OPENING DEVICES.
EP92903151A EP0563262B1 (en) 1990-12-19 1991-12-13 Variable orifice devices

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US07/629,788 US5141029A (en) 1990-12-19 1990-12-19 Variable orifice device
US629,788 1990-12-19

Publications (1)

Publication Number Publication Date
WO1992011483A1 true WO1992011483A1 (en) 1992-07-09

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Application Number Title Priority Date Filing Date
PCT/US1991/009509 WO1992011483A1 (en) 1990-12-19 1991-12-13 Variable orifice devices

Country Status (5)

Country Link
US (2) US5141029A (en)
EP (1) EP0563262B1 (en)
JP (1) JPH06503635A (en)
DE (1) DE69111469T2 (en)
WO (1) WO1992011483A1 (en)

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JP3287916B2 (en) * 1993-07-20 2002-06-04 ヤマハ発動機株式会社 Joint structure of valve seat
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Also Published As

Publication number Publication date
EP0563262A1 (en) 1993-10-06
JPH06503635A (en) 1994-04-21
EP0563262B1 (en) 1995-07-19
US5141029A (en) 1992-08-25
DE69111469T2 (en) 1996-01-11
DE69111469D1 (en) 1995-08-24
US5353501A (en) 1994-10-11

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