|Publication number||US3803463 A|
|Publication date||Apr 9, 1974|
|Filing date||Jul 10, 1972|
|Priority date||Jul 10, 1972|
|Publication number||US 3803463 A, US 3803463A, US-A-3803463, US3803463 A, US3803463A|
|Original Assignee||J Cover|
|Export Citation||BiBTeX, EndNote, RefMan|
|Referenced by (209), Classifications (14)|
|External Links: USPTO, USPTO Assignment, Espacenet|
United States Patent [1 1 [111 3,803,463
Cover Apr. 9, 1974 WEAPON FOR IMMOBILIZATION AND 3,374,708 3/1968 Wall 317/262 s CAPTURE 3,484,665 12/1969 Mountsoy et al.. 317/262 S 3,523,538 8/1970 Shimizy 317/262 S  Inventor: John H. Cover, 542 Vista Grande,
Palos Verdes, Calif. 92660 Primary Examiner L. Hix 22 Filed; Ju|y 10, 1972 Attorney, Agent, or Firm-Marvin H. Kleinberg .N .1 ,411 57 ABSTRACT A weapon for subduing and restraining includes a  ..317/262HS658960 harmless projectile that is connected by means of a l d Bel/2 relatively fine, conductive wire to a launcher which l o earc contains an electrical power supply. The projectile is l 28 intended to contact a living target without serious trauma and to deliver an electric charge thereto sufficient to immobilize. In different embodiments, the
 References C'ted projectile can be a pellet, a net or a combination of UNITED STATES PATENTS pellets and a net. The magnitude and frequency of the 8.843 3/1852 Sounenburg et a1 317/262 S electrical impulses delivered to the target can be con- 644,896 3/1900 conveys 317/262 S trolled at the launcher, and wguld range in effect from 317/262 3 immobilizing to potentially lethal levels. 317/262 S 3.156.185 11/1964 Hermann et a1. l02/l 23 Claims, 15 Drawing Figures [4 Z if ZflZ/f/[fl/A/ L 0mm 7 0:, 40 Z if f mmnmra 9 I974 3.803463 I 5 sum 2 ur a //1/ feel/P762 INVEN TOR. Ji/fl/ 1 [WEE 224M MM;
m n mum 9:914 35803463 sum 3 or 3 EQNVENTOR. 70% Cayie 7M y w KLQMLM-I WEAPON FOR IMMOBILIZATION AND CAPTURE This is a continuation of application Ser. No. 37,234, filed May 14, I970.
The present invention relates to weapons and more particularly to an improved weapon capable of delivering electrical impulses to remote targets.
In 1852, Dr. ATiieit Sounenburg and Phillipp Rechten received U.S. Pat. No. 8,843, for Electric Whaling Apparatus, which taught a harpoon connected through a conducting calbe to a magnetoelectric rotation machine." The machine was a simple, mechanically operated generator which had one tenninal connected to the cable and a second terminal connected through the copper bottom" of a whale boat," to the ocean. As taught, a harpooned whale could be electrocuted" by operating the generator, even though the harpoon wound might be superficial.
In 1952, Thomas D. Ryan applied for Letters Patent for Electric Weapons, which matured into U.S. Pat. No. 2,805,067, on Sept. 3, 1957. In that patent, various otherwise lethal weapons of the past such as spears, arrows, and lances were provided with self-contained power supplies. These weapons, in addition to any physical trauma that could be inflicted upon a target, also appliedhigh voltage electrical impulses, which, the patent states, are capable of producing either lethal or merely irritating effects.
These weapons had a source of power such as a battery, a transformer circuit and an interrupter, either a magnetic chopper or a spring-mass, oscillating system. The weapons were designed to deliver a series of high voltage shocking impulses to supplement the normal effect of such conventional, primitive weapons, which are primarily hand-held or hand propelled.
As of the date of the Ryan application, very little was known of the true physiological effects of electric currents on the living organism. Nonetheless, Ryan suggested that his device could produce varying results from fibrillation to severe muscle spasms, thereby immobilizing the victim. It is not clear that the disclosed circuits could, in fact, meet the object of the patent.
Dalziel and Lee, in an article published in the IEEE SPECTRUM of February, 1969, pp. 44-50, entitled Lethal Electric Currents, summarized their article in the IEEE Transactions of Industry and General Applications, Vol. IGA-4, pp. 467, 476, September- October, 1968, which reviewed the available data relating to the deleterious effects of electric shock, and reported on experiments that had been conducted. The authors discussed the effects of electricity as a function of voltage, current, frequency and duration.
Experiments on volunteers and research on animals tended to establish ventricular fibrillation as the most probable cause of fatalities attributed to electrocution. Currents, if conducted through nerve centers, may arrest certain functions such as respiration for periods of time after the current has ceased. Of course, high currents can produce burns and irreversible damage to vital organs as a result of heat.
Dalziel and Lee studied physiological response as a function of applied currents and found a nonlinear relationship. At the lowest levels of magnitude, electric currents produce a shock and perhaps involuntary muscle movements. At a next higher level, increasing involuntary muscular contractions occur, and, with increasing currents, a loss of voluntary muscular control. There next occurs a magnitude of current, at which a subject cannot voluntarily overcome the contracting forces. The greatest current at which it is still possible to release a conductor using the muscles directly stimulated by the current is called the let-go current, which represents the threshold between harmless and harmful exposures.
Currents slightly in excess of the let-go current will freeze a subject to a circuit, so long as the current persists. Higher currents of substantial duration, either continuous or intermittent, can produce serious, potentially lethal effects, including ventricular fibrillation, paralysis, asphyxia and burns.
Yet other studies by the Underwriters Laboratory in 1939 dealt with the problem of establishing safety standards for electrically charged fences. These studies, published in Research Report No. 14, in December 1939, suggested as safe, pulsed shocks" of prescribed magnitudes, if separated by recommended time intervals.
With the growing problems arising from the indiscriminate use of lethal weapons for the apprehension of criminal suspects, as well as for the control of crowds and mobs, new devices must be found which can immobilize and capture without inflicting serious or irreversible harm in the process. It would be desirable to have a compact, hand-held device that is capable of subduing without serious or permanent harm. Such a device would be invaluable for the self-protection of the private citizen, as well as an important element in the armamentarium of the armed forces and law enforcement agencies.
It has been found that there exists a range of electrical impulses, which when delivered to a human target can immobilize the target by inducing involuntary muscular contractions. These amounts of electrical energy generally exceed the minimum leg-go currents but are in a range that is considered well below fibrillation levels. It has also been found that the desired currents can be delivered a substantial distance through a very fine, lightweight filament. At sufficiently high voltages, there need not be penetration of the skin to deliver the electrical impulse. Moreover, it has been found that brief, intermittent impulses of current can be just as, if not more, effective than continuous currents, with a substantial reduction in the power required.
It has been deemed desirable to provide a weapon which can utilize an otherwise harmless projectile and which does not require harmful penetration of the target. It is also desirable to have an electrical device in which the electrical energy to be delivered to the target can be controllably adjusted. Further, it has been deemed desirable to have a convenient, manually operated launcher capable of accurately delivering an otherwise harmless projectile over distances greater than those that most persons could achieve with any accuracy by throwing.
It is also desirable to have a small hand-held, selfcontained weapon system capable of delivering a plurality of projectiles, with a conductive, filamentary connection as between a power supply in the launcher and the projectile.
According to the present invention, modern technology has been utilized to provide an extremely compact, electrical power supply capable of being packaged in a manually operable launcher, which, in combination with novel, relatively harmless projectiles, can deliver an electrical charge to a remote target with reasonably good accuracy.
In the several embodiments, the projectile or missile may be a fictile pellet, or may include a plurality of pellets connected by a mesh or net, which would be deployed upon launching. It is also possible to utilize a projectile of the type generally used in air rifles.
In alternative embodiments, larger launchers of the rifle type can be utilized, and would contain a heavier duty power supply, more suitable for use by law enforcement or military personnel. The several embodiments can be provided in single or multiple shot versions.
The launcher and projectile are electrically connected by means of a fine, conducting fiber which can be coiled in the projectile and tethered to the launcher. Alternatively, the supply coil can be arranged to remain with the launcher and the projectile would deploy the fiber. Both techniques have counterparts in other fields such as the spinning reel or the two-wire, guided missile.
In other embodiments, the projectile can be propelled, by means of a spring, compressed air, or compressed CO Explosive or pyrotechnic propellants may be employed, but would, if utilized, bring the device within the ambit of the various laws regulating deadly weapons, and might require registration by or permits of the user.
In accordance with the underlying theory of the present invention, there are two types of electrical current delivery systems. A first type of system employs a single wire and operates either in a conducting mode, wherein the ground or earth is used to complete the circuit between the power supply and the target or in a nonconducting mode which charges the target body to a predetermined voltage level, through the capacitive impedance of the body, thereby transmitting the requisite amount of current.
An alternative system utilizes a pair of wires constituting a current delivery and return path. In the twowire system, a plurality of projectiles may be deployed, connected by nonconducting fibers to form a mesh or net which envelops the target. In the system, it is unnecessary for either the power supply or the target to be grounded. Sufficient current can be made to flow through the target to accomplish the desired results.
As a special embodiment of the single wire, nonconducting mode, a resonant circuit is provided which is tuned" to the impedance of the target for a particular frequency. Such a resonant or tuned circuit can supply desired currents of lesser magnitude at lower frequencies to the target achieving the same physiological effects, but at substantial reductions in the power required.
Accordingly, it is an object of the present invention to provide an electrical power supply for generating electrical currents and for applying these currents to a target by means of a wire which is deployed using a launcher and projectile combination.
It is another object of invention to provide an improved protective device which applies a shocking and holding current to a target by a means of a wire carrying projectile.
It is yet another object of the invention to provide means for applying an electrical current to a remote location including a net trailing a conductive wire which is connected to and launched from a portable, handheld power supply.
The novel features which are believed to be characteristic of the invention, both as to organization and method of operation, together with further objects and advantages thereof will be better understood from the following description considered in connection with the accompanying drawings in which several preferred embodiments of the invention are illustrated by way of example. It is to be expressly understood, however, that the drawings are for the purpose of illustration and description only and are not intended as a definition of the limits of the invention.
FIG. 1 is a block-circuit diagram of a first embodiment of the invention in its broadest form, operating in a single-wire, conducting mode;
FIG. 2 is a block-circuit diagram of an alternative embodiment according to the present invention, moditied to operate in a pulsed, conducting mode;
FIG. 3 is a block-circuit diagram of an alternative embodiment of a system operating in a single-wire, nonconducting, resonant mode;
FIG. 4 is a block-circuit diagram of a power supply similar to that of FIG. 2 but employing a spark gap discharge.
FIG. 5 is yet an additional alternative embodiment of a two-wire system utilizing a plurality of spark gaps and a bank of capacitors in the output circuit for voltage amplification;
FIG. 6 is a simplified representation of a delivery system according to the present invention, illustrating single-wire operation in the conducting mode;
FIG. 7 is a representational view of the system of the present invention, modified to operate as a two-wire system;
FIG. 8 is a representational view of a net for enveloping a target;
FIG. 9 is a side view of a cockle burr type projectile carrying the supply of filamentary, conductive wire;
FIG. 10 is a view of alternative projectile, a dart in which a supply of conductive wire is retained in the launching device;
FIG. 1 1 is a view of a launcher for deploying a plurality of projectiles, connected by an insulating fiber in a net;
FIG. 12 is a view of an alternative launcher employing a single barrel;
FIG. 13 is a side view of an alternative system including a flashlight and a replaceable cartridge;
FIG. 14 is a front view of the cartridge of FIG. 13; and
FIG. 15 is a side sectional view of the cartridge of FIG. 14, taken along the line 15-15 in the direction of the appended arrows.
Turning first to FIG. 1, there is illustrated a typical circuit useful for operating either a single-wire or a two-wire system in the conducting mode. As shown, a power supply such as storage battery 10 is connected through a switch 12 to a DC-AC inverter unit 14. The output of the DC-AC inverter unit 14 is applied to the primary winding 16 of a transformer 18. The secondary winding 20 of the transformer 18 is connected at one terminal to ground, indicated by the conventional ground symbol 22 for single-wire operation. The other terminal is connected to a launching device 24, which physically propels a projectile 26 toward a remote target 28. In the two-wire configuration, the ground connection would be replaced by a connection to a second terminal in the launching device 24.
The projectile 26 remains connected, at all times, to the secondary winding 20 by a continuous, conducting wire or filament 30. The target 28, as illustrated, is represented by a finite resistance connected to ground 22. If the target is a human body, such a finite resistance exists between any point of contact and the ground upon which the target stands. Obviously, in the two-wire embodiment, a second conducting filament 30 (not shown) would also connect to the target 28.
In operation, according to one embodiment, the battery may be a portable, light-weight, high energy power supply, which, through the inverter 14 and the transformer 18, produces AC voltage in the range of to 30 KV.
Turning next to FIG. 2, there is shown an alternative circuit intended to operate in a pulsed mode. As shown, a power supply 10' is connected through switch 12 to a series circuit including an interrupter 14', such as an electromechanical chopper, and the primary 16' of a transformer 18'. The secondary winding 20 connects through a rectifying diode 32 to a second primary winding 34 of a second transformer 36.
A capacitor 38 is in parallel with the second primary 34, and a switching relay 40 has its switch 41, between the capacitor 38 and the second primary 34. The relay solenoid 44 is connected between the secondary winding 20 and the capacitor 38 and is connected in parallel with a current limiting resistor 42. A second, secondary winding 46 is connected at one end to the ground 22 and at the other end to a launching device 24. In a two-wire system, both ends of the secondary 46 would be coupled to the launcher 24.
In operation, a closure of the switch 12' completes the circuit through the interrupter l4 and the primary 16' of the transformer 18. The interrupter 14 converts the DC of the battery 10 to an intermittent current, capable of transformation to higher voltages through the transformer 18. The high voltage transformer output is rectified by the diode 32 and charges the capacitor 38. The relay-relaxation circuit, including the capacitor 38 and the relay 40, discharges the capacitor 38 in pulses through the primary 34 of the second transformer 36. At the second, secondary winding 46, there is available approximately 20 KV, with pulses that can be as infrequent as three per second.
In a continuous mode of operation, as in the circuit of FIG. 1, these circuits will furnish currents in the 20 to 30 ma range. Alternatively, operating in a pulsed mode, as in FIG. 2 above, where the pulse repetition rates preferably range from 2 per second to 10 per second, each pulse delivers no less than 0.01 joules and, preferably, approximately 0.5 joules to the target.
As a result of thumb, it has been determined that the product of capacitance and voltage gives a figure of merit for the effectiveness of the pulsed power supply as against a living target. If the product, VC, of a single pulse is greater than 10" volt-farads, the shock can cause great harm and may even be lethal, even with a single shock. Values at 10 volt-farads are deemed adequate to immobilize a victim through muscular spasm. If maintained for any length of time, the victim will become exhausted or asphyxiated because of such involuntary muscular activity. VC values on the order of 10' volt farads, produce pain such that a victim may be incapable of rational reaction and would probably be inhibited from coherent, organized locomotion.
Experimental circuits have been built according to the present invention utilizing a 6-volt supply 10 in conjunction with a 46 to 1 turns ratio in the first transfonner 18 and a 73 to 1 turns ratio in the second transformer 36. The capacitor 38 is selected to be 1.0 microfarads.
The output to the launching device 24 is therefore approximately 20,000 volts, However, because of the pulsed operation, the average power range is in the l to 10 watt level and in the preferred embodiment can be 2.5 watts. The power supply of FIG. 2 is designed to deliver, on the average, 20 KV pulses that provide 0.5 joules per pulse. This amount of energy is well below the levels considered dangerous by Dalziel and Lee, supra, and can be supplied by conventional dry cells.
Turning now to FIG. 3, there is shown an alternative embodiment operating in the single-wire, nonconducting, resonant mode. A power supply or battery 10" is connected to an oscillator-amplifier 14" which includes a switching device (not shown). The oscillator and amplifier 14" is connected to the primary winding 16" of a transformer 18". Similar to the circuit of FIG. 1, a secondary winding 20 has one end connected to ground 22 and at the other end is connected through an inductance element 48 to a launching device 24". As indicated in FIG. 3, the target 28" may be represented in the nonconducting mode, as a series combination of a resistive and a capacitive element coupled to ground 22.
In operation, the battery 10 applying power across the oscillator-amplifier 14" provides oscillatory energy to the transformer 18" which produces a relatively high voltage output. Including an inductance element in the circuit tends to tune the circuit for minimum overall impedance at the operating frequency determined by the oscillator-amplifier 14". In experimental models, an oscillator operating at approximately 2 KI-Iz, and with a capacitive load C of approximately pf, in the absence of an inductive element, approximately 30 KV are required to put 30 ma through the target. However, by adding an inductance 48 of approximately 7 henries, only 3 KVare necessary to provide the same 30 ma at the target.
In alternative embodiments of FIG. 3, appropriate circuitry for intermittent operation can be provided which further reduces the power requirements of the circuit. Alternatively, the circuit of FIG. 3 can be adapted for a two-wire operation in which case the ground connection would be unnecessary.
Turning next to FIG. 4, there is shown an embodiment for nonconducting, nonresonant intermittent operation utilizing a spark gap in conjunction with a capacitor. As shown in FIG. 4, the circuit of FIG. 2 may be employed except that the relay 40 and the elements associated therewith can be replaced by a spark gap 49. v
In operation, the capacitor 38' is charged to a potential adequate to cause a discharge across the spark gap 49 which substantially discharges the capacitor 38. The second transformer 36' efficiently couples this discharge pulse to the output circuits and to the target. The phenomenon of spark gap discharge is well known and the spacing as between the spark gap electrodes is selected to provide a discharge rate of from three to ten discharges per second.
Turning next to FIG. 5, there is shown yet an alternative embodiment in which the second transformer is replaced by a capacitor bank 39. As shown, the output circuits include, in addition to a rectifying diode 32, a plurality of capacitors 38" in parallel, separated by resistors and serially connected through spark gaps 49. In one experimental embodiment, a bank of six capacitors 38" utilized in conjunction with a 6-volt power supply and a transformer having a turns ratio of 600 to I produced approximately 3 KV across each of the capacitors which serially discharged to produce an 18 KV output pulse. Obviously, such a circuit could be utilized either in a single-wire or two-wire systems.
Turning next to FIG. 6, there is shown in outline form, a simplified launcher 50 which has sent a projectile 26 to remote target 28'. As illustrated, the launcher is operated as a one-wire system and therefore requires a connection to ground 22. The target 28 is also coupled to ground 22 by its proximity to the ground. In operating embodiments of the present invention, 40 gage copper wire which has a diameter of 3 mils has a fusing current of approximately I ampere. The resistivity of such a filament is approximately 1 ohm per foot and has a weight of approximately 0.03 pounds per thousand feet. However, 100 yards of 40 gage copper wire would weigh approximately one-half ounce and would introduce a voltage drop of approximately 3 volts when conducting a ma current.
In alternative embodiments, it is possible to utilize nonconductive filaments of even finer gage to which have been applied a conductive coating or plating. Any high tensile strength fibers could be utilized with an appropriate treatment to render it conductive. In some embodiments it is also desirable to provide an insulating coating over the conductive fibers.
Turning next to FIG. 7, there is shown an alternative launcher 52 which does not require a ground connection and which deploys at least two electrodes which may be projectiles 26', each connected to the launcher by a conductive filament 30'.
FIG. 8 illustrates a typical mesh or net 54 which may be deployed from the launcher to increase the probability of encountering the target. As shown, a first filament 56 is schematically indicated as being connected to a relatively positive terminal 58 at the launcher and a second filament 60 is indicated as connected to a relatively negative terminal 62. As shown, four peripheral projectiles 64 can be connected together with a conductive filament 66 so that the periphery of the net 54 is connected to apply the relatively positive potential. The central projectile 68 is connected to the relatively negative terminal 62 and is connected to the other projectile 64 with nonconducting filaments 70. When deployed to encounter a target, an electrical current will flow from the peripheral projectiles 64 through the target to the central projectile 68 thereby delivering the desired amount of electrical energy to the target.
It is obvious that other schemes may be devised to deliver the electrical currents to the target utilizing nondangerous projectiles with a high degree of confidence of encountering the target at various ranges.
Other combinations of projectile and conducting or nonconducting mesh connections are possible. For example, an alternative device might includes a plurality of projectiles connected to the relatively positive conductor S6 and a plurality of projectiles would be coupled to the relatively negative conductor 60 and the several projectiles would be separately launched toward the target.
FIG. 9 illustrates one form of projectile 72 that may utilized. As shown, the projectile may be considered a cockle burr" including a plurality of projecting conductive fibers 74 adapted to be entangled in clothing and electrically connected to a conductive filament 76 which is spooled on a bobbin 78 that is carried with the projectile 72. Stabilizing members 80 enable the projectile 72 to retain a reasonably accurate flight path. As illustrated, projectile 72 is launched from a barrel 82 and the conductive wire 76 is anchored, within the barrel to a plate (not shown) which is connected to the power supply. The projectile 72 can be propelled by any known means of propulsion including compressed air, compressed CO a compressed spring or a pyrotechnic device.
Turning next to FIG. 10, there is shown an alternative projectile 84 which is a dart such as is used with compressed air or compressed CO weapons. As shown, the dart 84 may include a point 86 with barb member 88 to enable a slight penetration of the target through clothing and the barb 88 enables the dart to become implanted and to be held in place. A conductive filament extends back to a bobbin 92 which is mounted in a cartridge 94 which is electrically coupled to the power supply. The dart 84 is normally held in the cartridge. When the pressure within the cartridge exceeds the restraints on the dart 84, the dart 84 is accelerated forward in a barrel 96. Obviously the cartridge 94 should be electrically isolated from the barrel 96 and the launcher to protect the user. The dart 84 continues to travel with the acceleration imparted to it and carries with it the conductive filament 90, which pays off the bobbin 92, substantially without friction or drag.
FIG. 11 illustrates a launcher 100 which is adapted to deploy a plurality of projectiles 102 each with a plurality of conductive projections adapted to hold to a target. A bobbin 104 containing a supply of conductive wire 106 is provided in each of the barrels 108 and the several projectiles 102 are interconnected by nonconducting filaments 110. Two of the projectiles can be connected to the relatively positive side of the power supply and two can be connected to the relatively negative side of the power supply. As shown in the dotted portion of the figure, the projectiles 102, when deployed, form a rhomboidal array which has a high probability of reaching a target.
FIG. 12 shows yet an alternative embodiment for deploying a plurality of projectiles 102, here three. As shown, a spring member 1 12 is mounted in a barrel 114 and pushes a piston member 116 upon which is mounted a pair of bobbins 118 and a conical, ramp" member which also houses a bobbin 118. The ramp member 120 deflects the rear two projectiles 102 into a diverging path while the central projectile 102 is launched substantially in the direction of aim. The central projectile may be connected to the relatively positive terminal while the remaining two projectiles 102 are connected to the relatively negative terminal; and, when deployed, achieve the configuration shown in the dotted portion of FIG. 12.
Turning next to FIG. 13, there is shown one proposed configuration of a system 200 according to the present invention. This system, which is adapted to be handheld, includes a flashlight element 202, a trigger switch 204 and a replaceable projectile cassette 206. The housing 207 is intended to be easily hand-held and contains the power supply and electrical circuits of the present invention. The flashlight element 202 can be utilized independently but it is intended to provide an aid to aiming in a darkened environment. Accordingly, the flashlight element 202 must be carefully aligned to be parallel with the launcher that is integral with the replaceable cassette 206.
As an additional design feature, it has been deemed appropriate to provide some form of alarm signal which indicates that the system is operable and ready to deploy projectiles. It is believed that such a signal would have a psychological effect and could add credibility to the warning of the user that the system might be employed.
FIG. 14 is a front view of the cassette 206 of FIG. 13 and shows the elements that would be contained in such a cassette. As illustrated, four projectiles are launched in a substantially rectangular net. Two of the projectiles 208, 210 are respectively connected to conductive filaments 212, 214 and to supply bobbins 216, 218. The other two projectiles 220, 222 are respectively connected through conductive elements 224, 226 to the first projectiles 208, 210. The fiber net 228 is coiled in a central receptacle 230 and the other connecting fibers 224, 226, 232 and 234 are each collected in a respective receptacle until the respective projectiles are deployed.
Turning finally to FIG. 15, there is shown in sidesection view, the launching mechanism of a cassette 206. As shown, with appropriate male connectors 240, 242 which connect the power supply to the supply bobbins 216, 218. Two of the launching barrels 244, 246 are shown with the projectiles 208, 210 respectively mounted therein on piston members 248, 250, respectively. At the base of the barrel members, in a common chamber 252, a supply of pyrotechnic propellant 254 is provided. A filament 256 adapted to be incandescently heated for ignition, is electrically connected to a concentric electrode arrangement 258 in the base of the cassette 206 which mounts in contact with a matching electrode pair in the launcher socket.
In operation, the electrodes 260 are energized which cause the wire element 256 to ignite the syrotechnic charge 254 driving the pistons 248, 250 in the outward direction. The force imparted propels the projectiles 208, 210 in a diverging direction with a substantial forward velocity component. The projectiles 208, 210 diverge until restrained by the fibers 232, 234, 228 and the projectiles, as a group, then continue in the forward direction. Electrical currents are applied to the projectiles 208, 210 through the conductive wires 212, 214, respectively which are connected to the electrodes 240, 242.
Thus, there has been shown in several embodiments apparatus for applying electrical energy to a remote target. The power levels that are employed are intended to be below lethal levels and adequate to control and immobilize an attacker.
What is claimed as new is:
l. The new use of a known combination of a power supply, conductor, and projectile for applying electrical energy through a capacitive discharge to a remote target comprising the step of providing electrical energy greater than 0.001 joules to the targer in discrete,
separable impulses at a voltage greater than 20 RV, but having a capacitance-voltage product, CV, less than 10 volt-farads, whereby the reactive impedance of the target to the electrical energy provided permits transfer of electrical energy to the target.
2. Apparatus for applying electrical energy to a remote target comprising:
power supply means for generating, electrical energy in discrete impulses, at first and second output terminals in response to an initiation signal;
conductive means including a pair of elongated, flexible conductors adapted to be respectively connected to said first and second output terminals;
contacting means including a pair of separate, electrode elements respectively connected to the conductors of said pair for applying electrical energy to the remote target when in close proximity thereto; and
a first and second projectile respectively carrying said pair of separate electrode elements, said projectiles being adapted to be deployed to separated parts of a remote target for establishing through said electrode members an extended, electrical path through the target whereby electrical energy in excess of .001 joules can be applied through said conductors, said projectiles, and said electrode elements to a remote target.
3. The apparatus for applying electrical energy to a remote target of claim 2, above, further including a net assembly, insulatingly intercoupling said projectiles, whereby a relatively large area of the target can be engaged by said projectiles and said electrode elements carried thereby.
4. Apparatus adapted to be connected to a source of electrical energy for conducting electrical energy to a remote target comprising in combination:
a. contacting means including an electrode element having at least one conductive point, and at least one small lightweight projectile intimately connected to said electrode element adapted to be propelled to engage a remote target;
b. launching means for propelling said projectile to a remote target; and
c. a single flexible, thin wire conductor electrically connected to said electrode element and to said projectile and adapted to be connected to a source of electrical energy and deployed by said propelled projectile for carrying electrical energy thereby between the source and the remote target.
5. The apparatus of claim 4, above, wherein said contacting means include at least one non-conductive elongated flexible member adapted to engage the remote target entangling the target and said contacting means.
6. The apparatus of claim 5, above, wherein said contacting means further include at least a second projec tile coupled to said projectiles being connected by said non-conductive elongated flexible member, said projectiles deploying said mesh and engaging and entangling the remote target to assure that both projectiles are in operational proximity to the target.
7. The apparatus of claim 4, above, further including a second flexible, thin wire conductor electrically connected between said contacting means and the source of energy and wherein said contacting means including a second projectile and a second electrode element carried thereby electrically, connected to said secondconductor for applying electrical energy to spatially separated areas of the target.
8. The apparatus of claim 7, above, further including a non-conductive mesh connecting said projectiles for engaging and entangling propelled projectiles with the target for conducting electrical energy to spatially separated parts of the target and for retaining said electrode elements in operable electrical proximity thereto.
9. A weapon comprising:
a. a self-contained source of electrical energy;
b. propulsion means;
c. target contacting means including at least two projectiles adapted to be deployed to a remote target by said propulsion means; and
d. conductive means including at least two conductors respectively operatively interconnecting said projectiles and said electrical energy source for completing an electrical circuit through the remote target;
said propulsion means being adapted to deploy said projectiles in a diverging path for engaging a relatively large area of the target.
10. The weapon of claim 9, above, wherein said projectiles are darts each having a conductive point in electrical communication with its associated said conductor, whereby electrical energy applied to each of said points will bridge insulative gaps which may separate said deployed projectiles from the target.
11. The weapon of claim 9, above, wherein said target contacting means further comprises a mesh coupled to said projectiles and adapted to be said projectiles with saidprojectiles for enveloping and entangling the remote target, assuring that said projectiles will engage the target at spatially separated areas to apply electrical energy thereto.
12. The weapon of claim 9, above, wherein said target contacting means include nonconducting filaments interconnecting said projectiles for limiting the divergence of said projectiles during deployment and for enveloping and entangling a remote target, to increase the likelihood that said projectiles will engage the target to apply electrical energy between spatially separated areas of the target.
13. For use with a weapon having a self-contained electrical energy source and a trigger means for operating the weapon, a replaceable cartridge comprising in combination:
a. a cartridge body including means adapted to make electrical contact with the weapon electrical energy source and the trigger means;
. target contacting means within said body including more than one projectile each having an electrode element for applying electrical energy between the weapon electrical energy source and a remote target, said projectiles being positioned to be divergently deployed;
c. conducting means within said body including a separate elongated, flexible, filamentary conductor coupled to each projectile, electrically connecting said electrode elements to said electrical contact means, said conductor being of length sufiicient to apply electrical energy to a remote target from the weapon; and
d. pyrotechnic deploying means within said body, connected to be energized by the trigger means for deploying said projectiles and conductors to the remote target at spatially separated points, upon operation of the trigger means. 14. The replaceable cartridge of claim 13, above, wherein said target contacting means include nonconductive filaments interconnecting said projectiles for limiting the divergence of said projectiles when deployed and for enveloping and entangling the remote target.
15. For use with a weapon having a self-contained electrical energy source and a trigger means for operating the weapon, a replaceable cartridge comprising in combination:
a. a cartridge body including means adapted to make electrical contact with the weapon electrical energy source and the trigger means;
b. target contacting means within said body including at least a projectile having an electrode element for applying electrical energy between the weapon electrical energy source and a remote target;
c. conducting means within said body including at least a single elongated, flexible, filamentary conductor connecting said projectile and electrode element to said electrical contact means, said conductor being of length sufficient to apply electrical energy to a remote target; and
d. deploying means within said cartridge body connected to be energized by the trigger means for deploying said projectile and conductor to the remote target upon operation of the trigger means.
16. The process of immobilizing a remote, living tar get comprising the steps of:
l. launching a projectile carrying a conductor from a power supply to the remote target;
2. engaging the target with said projectile and conductor 3. applying electrical energy to the target in a brief interrupted substantially d.c. impulse shorter than 0.1 second duration at a voltage greater than 30 kv, whereby the voltage of the impulse is sufficient to bridge insulative gaps between the conductor and the target and between the target and a common reference potential.
17. The process of claim 16, above, further including the steps of repeating the energy applying step at a rate between 3 and repeats per second, and shortening the duration of the individual impulses to intervals of 10 microseconds and less whereby the average power delivered to the target is approximately 2.5 watts.
18. The process of using a power supply, a conductor and a projectile for electrically coupling a remote target to the power supply comprising the steps of 55 l. generating at least one seaprated electrical impulse of at least 0.001 joules at a voltage greater than 5 kv for an interval less than 0.01 seconds; and
2. applying said separated electrical impulses to a remote target whereby the voltage level is adequate to conduct energy into the target through insulative gaps and whereby the target couples to a common reference potential through substantially insulative gaps.
19. The process of claim 18, above, wherein said applying step utilizes single conductor between the power supply and the remote target.
necting said projectiles and adapted to be deployed with said projectiles for enveloping and entangling the remote target and assuring that both projectiles will engage the target.
23. The weapon of claim 9, above, wherein said contacting means further comprises a plurality of nonconducting filaments interconnecting said projectiles, said filaments limiting the divergence of said projectiles during deployment and enveloping and entangling the remote target to increase the probability that both projectiles will engage the target.
UNITED STATES PATENT 0mm CERTIFICATE OF CECHN Patent No- 3,803,463' Dated April g, 1974 Inventor(s) JOHN'H. COVER It is certified that error appears in the above-identified patent and that said Letters Patent are hereby corrected as shown below:
Col. 1, line 11,, change "calbe" to -cable--'--' I Col. 1, line .27, change "appliedhigh" to -applied high- Col. 9, line 46, change -"syrotechnic" to -pyrotechnic- Col. 10, line 60, [Claim 6] change "mesh" to f] -exible member- Col. 11, line 32, [Claim 11] after "to be" insert 'deployed with- Col. 11, line 33, i delete "with saidprojectiles" Col. 12, line 55, [Claim 18] change "seaprated" to -separated Col. 12, line 56, change "5" to -5.0-
Col. 12, line 57, change "0.01" to .,l--
Col. 12, line 67, after "utilizes insert -a-- Signed and sealed this 24th day of December 1974.
MCCOY M. GIBSON JR. C. MARSHALL DANN attesting Officer. Commissioner of Patents FORM PO-105O (10-69) USCOMM-DC 50376-P69 U.S. GOVERNMENT PRINTING OFFICE: I969 O-356'334 UNITED STATES PATENT OFFICE CERTIFICATE OF CORECTWN Patent N0. 3,803,463 Dated April 9, 1974 .Inventor(s) JOHN-H. COVER V It is certified 'that error appears in the above-identified patent and that said Letters Patent are hereby corrected as shown below:
Col. 1, line 11, change "calbe" to -cable=-=' Col. 1, line v27, change "appliedhigh" to -applied high- Col. 9, line 46, change "'syrotechnic" to -pyrotechnic- Col. 10, line 60, [Claim 6] change "mesh" to -flexible member- Col. 11, line 32, [Claim 11] after "to be insert '--'-deployed with Col. 11, line 33, delete "with saidpicojectiles" Col. 12, line 55, [Claim 18] change "seaprated" to separated Col. 12, line change "5" to 5.. 0--
Col. 12, line 57, change "0.01" to --n1-- Col. 12, line 67, after "utilizes" insert -a-- Signed and sealed this 24th day of December 1974.
McCOY M. GIBSON JR. C. MARSHALL DANN Attesting Officer. Y Commissioner of Patents -ORM o-1050 (10-69) USCOMM-DC 60376-P69 U.S4 GOVERNMENT PRINTING OFFICE: I969 O3fi6-334
|Citing Patent||Filing date||Publication date||Applicant||Title|
|US3971292 *||Nov 12, 1974||Jul 27, 1976||Juan Garcia Paniagua||Projector of fluid with electric charge, of portable type|
|US4852454 *||Nov 10, 1987||Aug 1, 1989||Batchelder J Samuel||Method and apparatus for delivering electric currents to remote targets|
|US4943885 *||Feb 16, 1988||Jul 24, 1990||Willoughby Brian D||Remotely activated, nonobvious prisoner control apparatus|
|US5103366 *||Feb 21, 1989||Apr 7, 1992||Gregory Battochi||Electrical stun guns and electrically conductive liquids|
|US5153365 *||Sep 3, 1991||Oct 6, 1992||Chang Kun Ming||Belt-type electric shock device|
|US5193048 *||Apr 27, 1990||Mar 9, 1993||Kaufman Dennis R||Stun gun with low battery indicator and shutoff timer|
|US5388603 *||Dec 13, 1993||Feb 14, 1995||Bauer; Paul J.||Electronic stunning truncheon and umbrella|
|US5473501 *||Mar 30, 1994||Dec 5, 1995||Claypool; James P.||Long range electrical stun gun|
|US5654867 *||Mar 28, 1996||Aug 5, 1997||Barnet Resnick||Immobilization weapon|
|US5675103 *||Feb 8, 1996||Oct 7, 1997||Herr; Jan Eric||Non-lethal tetanizing weapon|
|US5698815 *||Dec 15, 1995||Dec 16, 1997||Ragner; Gary Dean||Stun bullets|
|US5786546 *||Aug 28, 1997||Jul 28, 1998||Simson; Anton K.||Stungun cartridge|
|US5790023 *||Jul 19, 1996||Aug 4, 1998||Waters Instruments Inc.||Apparatus and method for control of electric fence|
|US5831199 *||May 29, 1997||Nov 3, 1998||James McNulty, Jr.||Weapon for immobilization and capture|
|US5841622 *||Feb 4, 1998||Nov 24, 1998||Mcnulty, Jr.; James F.||Remotely activated electrical discharge restraint device using biceps' flexion of the leg to restrain|
|US5877949 *||Mar 25, 1997||Mar 2, 1999||Waters Instruments, Inc.||Direct capacitive discharge electric fence controller|
|US5912615 *||Oct 28, 1997||Jun 15, 1999||Kretzmar; Allan J.||Electrified theft/car-jack prevention device for use with motor vehicles and methods of use|
|US5936183 *||Dec 16, 1997||Aug 10, 1999||Barnet Resnick||Non-lethal area denial device|
|US5955695 *||Apr 13, 1998||Sep 21, 1999||Barnet Resnick||Automatic aiming non-lethal area denial device|
|US5962806 *||Nov 12, 1996||Oct 5, 1999||Jaycor||Non-lethal projectile for delivering an electric shock to a living target|
|US6269726 *||Jun 8, 1999||Aug 7, 2001||Barnet Resnick||Multi-shot, non-lethal, taser cartridge remote firing system for protection of facilities and vehicles against personnel|
|US6636412 *||Dec 12, 2001||Oct 21, 2003||Taser International, Inc.||Hand-held stun gun for incapacitating a human target|
|US6729222||Sep 24, 2002||May 4, 2004||Mcnulty, Jr. James F.||Dart propulsion system for an electrical discharge weapon|
|US6782789 *||Sep 9, 2002||Aug 31, 2004||Mcnulty, Jr. James F.||Electric discharge weapon for use as forend grip of rifles|
|US6802261 *||Oct 28, 2003||Oct 12, 2004||Southwest Research Institute||Tetherless neuromuscular disrupter gun with liquid-based capacitor (spray discharge)|
|US6802262 *||Oct 28, 2003||Oct 12, 2004||Southwest Research Institute||Tetherless neuromuscular disrupter gun with liquid-based capacitor (liquid dielectric)|
|US6862994 *||Jul 25, 2002||Mar 8, 2005||Hung-Yi Chang||Electric shock gun and electrode bullet|
|US6877434 *||Sep 13, 2003||Apr 12, 2005||Mcnulty, Jr. James F.||Multi-stage projectile weapon for immobilization and capture|
|US6880466||Jun 20, 2003||Apr 19, 2005||Brent G. Carman||Sub-lethal, wireless projectile and accessories|
|US6898887 *||Jul 30, 2003||May 31, 2005||Taser International Inc.||Safe and efficient electrically based intentional incapacitation device comprising biofeedback means to improve performance and lower risk to subjects|
|US6999295||Feb 5, 2005||Feb 14, 2006||Watkins Iii Thomas G||Dual operating mode electronic disabling device for generating a time-sequenced, shaped voltage output waveform|
|US7065915||Nov 5, 2004||Jun 27, 2006||Hung-Yi Chang||Electric shock gun|
|US7096792 *||Dec 24, 2004||Aug 29, 2006||Carman Brent G||Sub-lethal, wireless projectile and accessories|
|US7102870||May 29, 2003||Sep 5, 2006||Taser International, Inc.||Systems and methods for managing battery power in an electronic disabling device|
|US7111559 *||Jul 15, 2004||Sep 26, 2006||Maclachlan Edward K||Mobile electrical device for disabling a moving vehicle|
|US7145762 *||Feb 11, 2003||Dec 5, 2006||Taser International, Inc.||Systems and methods for immobilizing using plural energy stores|
|US7162303||Apr 8, 2003||Jan 9, 2007||Ardian, Inc.||Renal nerve stimulation method and apparatus for treatment of patients|
|US7218501||Jun 22, 2005||May 15, 2007||Defense Technology Corporation Of America||High efficiency power supply circuit for an electrical discharge weapon|
|US7237352||Jun 22, 2005||Jul 3, 2007||Defense Technology Corporation Of America||Projectile for an electrical discharge weapon|
|US7305787||Oct 23, 2004||Dec 11, 2007||Taser International, Inc.||Systems and methods for incapacitation using biofeedback|
|US7314007 *||Feb 18, 2005||Jan 1, 2008||Li Su||Apparatus and method for electrical immobilization weapon|
|US7409912 *||Jul 14, 2004||Aug 12, 2008||Taser International, Inc.||Systems and methods having a power supply in place of a round of ammunition|
|US7474518||Feb 21, 2006||Jan 6, 2009||Defense Technology Corporation Of America||Electronic disabling device having adjustable output pulse power|
|US7520081||Jul 13, 2005||Apr 21, 2009||Taser International, Inc.||Electric immobilization weapon|
|US7554786||Jun 30, 2009||Defense Technology Corporation Of America||Electronic disabling device having a non-sinusoidal output waveform|
|US7570476||Dec 28, 2007||Aug 4, 2009||Taser International, Inc.||Systems and methods for an electronic control device with date and time recording|
|US7580237||Dec 27, 2007||Aug 25, 2009||Taser International, Inc.||Systems and methods for immobilization with repetition rate control|
|US7600337 *||Oct 13, 2009||Taser International, Inc.||Systems and methods for describing a deployment unit for an electronic weapon|
|US7602597||Oct 13, 2009||Taser International, Inc.||Systems and methods for immobilization using charge delivery|
|US7602598||Oct 13, 2009||Taser International, Inc.||Systems and methods for immobilizing using waveform shaping|
|US7617005||Aug 14, 2006||Nov 10, 2009||Ardian, Inc.||Methods and apparatus for thermally-induced renal neuromodulation|
|US7620451||Feb 27, 2006||Nov 17, 2009||Ardian, Inc.||Methods and apparatus for pulsed electric field neuromodulation via an intra-to-extravascular approach|
|US7631452 *||Dec 15, 2009||Taser International, Inc.||Systems and methods for electronic weaponry with deployment unit detection|
|US7647115||Jun 3, 2005||Jan 12, 2010||Ardian, Inc.||Renal nerve stimulation method and apparatus for treatment of patients|
|US7653438||Jan 26, 2010||Ardian, Inc.||Methods and apparatus for renal neuromodulation|
|US7673411 *||Aug 7, 2006||Mar 9, 2010||Taser International, Inc.||Systems and methods for electrode drag compensation|
|US7717948||Aug 16, 2007||May 18, 2010||Ardian, Inc.||Methods and apparatus for thermally-induced renal neuromodulation|
|US7736237||Aug 23, 2006||Jun 15, 2010||Aegis Industries, Inc.||Electromuscular incapacitation device and methods|
|US7782592||Jul 14, 2006||Aug 24, 2010||Taser International, Inc.||Dual operating mode electronic disabling device|
|US7800885||Sep 21, 2010||Taser International, Inc.||Systems and methods for immobilization using a compliance signal group|
|US7853333||Jun 12, 2006||Dec 14, 2010||Ardian, Inc.||Methods and apparatus for multi-vessel renal neuromodulation|
|US7891128 *||Feb 22, 2011||Taser International, Inc.||Systems and methods for local and remote stun functions in electronic weaponry|
|US7900388 *||Mar 8, 2011||Taser International, Inc.||Systems and methods for a user interface for electronic weaponry|
|US7916446||Mar 29, 2011||Taser International, Inc.||Systems and methods for immobilization with variation of output signal power|
|US7936552||May 3, 2011||Taser International, Inc.||Systems and methods for immobilizing with change of impedance|
|US7937143||Oct 18, 2005||May 3, 2011||Ardian, Inc.||Methods and apparatus for inducing controlled renal neuromodulation|
|US7950329||Nov 17, 2006||May 31, 2011||Oleg Nemtyshkin||Cartridge for remote electroshock weapon|
|US7984579||Jul 26, 2011||Taser International, Inc.||Systems and methods for electronic weaponry that detects properties of a unit for deployment|
|US8045316||Oct 25, 2011||Taser International, Inc.||Systems and methods for predicting remaining battery capacity|
|US8058875||Aug 11, 2009||Nov 15, 2011||Raytheon UTD, Inc.||Detection of ground-laid wire using ultraviolet C-band radiation|
|US8061073 *||Nov 22, 2011||Taser International, Inc.||Systems and methods for a launch device and deployment unit|
|US8107213||Dec 28, 2007||Jan 31, 2012||Taser International, Inc.||Systems and methods for immobilization using pulse series|
|US8111498 *||Jul 9, 2008||Feb 7, 2012||Sdi - Security Device International Inc.||Electronic circuitry for incapacitating a living target|
|US8131371||Apr 13, 2006||Mar 6, 2012||Ardian, Inc.||Methods and apparatus for monopolar renal neuromodulation|
|US8131372||Mar 19, 2007||Mar 6, 2012||Ardian, Inc.||Renal nerve stimulation method for treatment of patients|
|US8145316||Mar 27, 2012||Ardian, Inc.||Methods and apparatus for renal neuromodulation|
|US8145317||Mar 6, 2006||Mar 27, 2012||Ardian, Inc.||Methods for renal neuromodulation|
|US8150518||Jun 3, 2005||Apr 3, 2012||Ardian, Inc.||Renal nerve stimulation method and apparatus for treatment of patients|
|US8150519||Mar 6, 2006||Apr 3, 2012||Ardian, Inc.||Methods and apparatus for bilateral renal neuromodulation|
|US8150520||Mar 6, 2006||Apr 3, 2012||Ardian, Inc.||Methods for catheter-based renal denervation|
|US8166690||May 1, 2012||Taser International, Inc.||Systems and methods for indicating properties of a unit for deployment for electronic weaponry|
|US8175711||May 8, 2012||Ardian, Inc.||Methods for treating a condition or disease associated with cardio-renal function|
|US8205537 *||Jun 26, 2012||Raytheon Company||Interceptor projectile with net and tether|
|US8253576||Aug 28, 2012||Raytheon Company||Search and rescue using ultraviolet radiation|
|US8277328||May 4, 2010||Oct 2, 2012||Aegis Industries, Inc.||Electromuscular incapacitation device and methods|
|US8339763||Dec 25, 2012||Mcnulty Jr James F||Electric discharge weapon for use as forend grip of rifles|
|US8342098||Jun 12, 2006||Jan 1, 2013||Security Devices International Inc.||Non-lethal wireless stun projectile system for immobilizing a target by neuromuscular disruption|
|US8347891||Nov 14, 2006||Jan 8, 2013||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for performing a non-continuous circumferential treatment of a body lumen|
|US8387540 *||Mar 5, 2013||Raytheon Company||Interceptor projectile and method of use|
|US8433423||Dec 13, 2010||Apr 30, 2013||Ardian, Inc.||Methods for multi-vessel renal neuromodulation|
|US8441360||May 14, 2013||Raytheon Company||Search and rescue using ultraviolet radiation|
|US8444640||May 21, 2013||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for performing a non-continuous circumferential treatment of a body lumen|
|US8454594||Aug 11, 2009||Jun 4, 2013||Medtronic Ardian Luxembourg S.A.R.L.||Apparatus for performing a non-continuous circumferential treatment of a body lumen|
|US8526160 *||Jul 3, 2012||Sep 3, 2013||John Louis Kotos||Electrically insulated coverings for electric stun device darts|
|US8548600||Sep 14, 2012||Oct 1, 2013||Medtronic Ardian Luxembourg S.A.R.L.||Apparatuses for renal neuromodulation and associated systems and methods|
|US8551069||Mar 6, 2006||Oct 8, 2013||Medtronic Adrian Luxembourg S.a.r.l.||Methods and apparatus for treating contrast nephropathy|
|US8620423||Mar 14, 2011||Dec 31, 2013||Medtronic Ardian Luxembourg S.A.R.L.||Methods for thermal modulation of nerves contributing to renal function|
|US8626300||Mar 11, 2011||Jan 7, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for thermally-induced renal neuromodulation|
|US8684998||Mar 9, 2012||Apr 1, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for inhibiting renal nerve activity|
|US8721637||Jul 12, 2013||May 13, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for performing renal neuromodulation via catheter apparatuses having inflatable balloons|
|US8728137||Feb 12, 2013||May 20, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for thermally-induced renal neuromodulation|
|US8728138||Feb 12, 2013||May 20, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for thermally-induced renal neuromodulation|
|US8733251 *||Jan 7, 2013||May 27, 2014||Steven Abboud||Conductive energy weapon ammunition|
|US8740896||Jul 12, 2013||Jun 3, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for performing renal neuromodulation via catheter apparatuses having inflatable balloons|
|US8768470||May 11, 2010||Jul 1, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for monitoring renal neuromodulation|
|US8771252||May 20, 2005||Jul 8, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and devices for renal nerve blocking|
|US8774913||Nov 14, 2006||Jul 8, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for intravasculary-induced neuromodulation|
|US8774922||May 21, 2013||Jul 8, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Catheter apparatuses having expandable balloons for renal neuromodulation and associated systems and methods|
|US8784463||Feb 12, 2013||Jul 22, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for thermally-induced renal neuromodulation|
|US8805545||Apr 16, 2013||Aug 12, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for multi-vessel renal neuromodulation|
|US8818514||Jul 2, 2013||Aug 26, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Methods for intravascularly-induced neuromodulation|
|US8845629||Apr 5, 2010||Sep 30, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Ultrasound apparatuses for thermally-induced renal neuromodulation|
|US8852163||Jun 28, 2013||Oct 7, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Renal neuromodulation via drugs and neuromodulatory agents and associated systems and methods|
|US8880186||Apr 11, 2013||Nov 4, 2014||Medtronic Ardian Luxembourg S.A.R.L.||Renal neuromodulation for treatment of patients with chronic heart failure|
|US8934978||Apr 22, 2014||Jan 13, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for renal neuromodulation|
|US8948865||Nov 15, 2013||Feb 3, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods for treating heart arrhythmia|
|US8958871||Jan 14, 2011||Feb 17, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for pulsed electric field neuromodulation via an intra-to-extravascular approach|
|US8983595||Nov 21, 2013||Mar 17, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Renal neuromodulation for treatment of patients with chronic heart failure|
|US8986294||Feb 4, 2010||Mar 24, 2015||Medtronic Ardian Luxembourg S.a.rl.||Apparatuses for thermally-induced renal neuromodulation|
|US9023037||Apr 23, 2013||May 5, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Balloon catheter apparatus for renal neuromodulation|
|US9025304||Oct 4, 2012||May 5, 2015||Taser International, Inc.||Systems and methods for a user interface for electronic weaponry|
|US9072527||Jul 15, 2013||Jul 7, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Apparatuses and methods for renal neuromodulation|
|US9108040||Jun 26, 2014||Aug 18, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for multi-vessel renal neuromodulation|
|US9125661||Oct 17, 2013||Sep 8, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for renal neuromodulation|
|US9131978||Apr 23, 2014||Sep 15, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods for bilateral renal neuromodulation|
|US9138281||Sep 23, 2013||Sep 22, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods for bilateral renal neuromodulation via catheter apparatuses having expandable baskets|
|US9168049 *||Jul 18, 2006||Oct 27, 2015||Vladimir Chemenko||Method for intracorporeal lithotripsy fragmentation and apparatus for its implementation|
|US9186198||Sep 14, 2012||Nov 17, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Ultrasound apparatuses for thermally-induced renal neuromodulation and associated systems and methods|
|US9186213||May 15, 2014||Nov 17, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods for renal neuromodulation|
|US9192715||Mar 21, 2014||Nov 24, 2015||Medtronic Ardian Luxembourg S.A.R.L.||Methods for renal nerve blocking|
|US9265558||Apr 23, 2014||Feb 23, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for bilateral renal neuromodulation|
|US9289255||Mar 3, 2015||Mar 22, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for renal neuromodulation|
|US9308043||Nov 20, 2014||Apr 12, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for monopolar renal neuromodulation|
|US9308044||Nov 20, 2014||Apr 12, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for therapeutic renal neuromodulation|
|US9314630||Nov 20, 2014||Apr 19, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Renal neuromodulation for treatment of patients|
|US9320561||Nov 20, 2014||Apr 26, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for bilateral renal neuromodulation|
|US9326817||Dec 1, 2014||May 3, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for treating heart arrhythmia|
|US9327122||Feb 2, 2015||May 3, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for catheter-based renal neuromodulation|
|US9354026||Sep 24, 2015||May 31, 2016||Taser International, Inc.||Electrode for electronic weaponry that dissipates kinetic energy|
|US9364280||Dec 17, 2014||Jun 14, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for pulsed electric field neuromodulation via an intra-to-extravascular approach|
|US9402992||Jul 2, 2015||Aug 2, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods and apparatus for multi-vessel renal neuromodulation|
|US9429396||Sep 18, 2015||Aug 30, 2016||Taser International, Inc.||Electrode for electronic weaponry that dissipates kinetic energy|
|US9439726||Mar 14, 2016||Sep 13, 2016||Medtronic Ardian Luxembourg S.A.R.L.||Methods for therapeutic renal neuromodulation|
|US20030216792 *||Apr 8, 2003||Nov 20, 2003||Levin Howard R.||Renal nerve stimulation method and apparatus for treatment of patients|
|US20040017178 *||Jul 25, 2002||Jan 29, 2004||Hung-Yi Chang||Electric shock gun and electrode bullet|
|US20040045207 *||Sep 9, 2002||Mar 11, 2004||Mcnulty James F.||Electrical discharge weapon for use as forend grip of rifles|
|US20040156162 *||Feb 11, 2003||Aug 12, 2004||Magne Nerheim||Dual operating mode electronic disabling device for generating a time-sequenced, shaped voltage output waveform|
|US20040156163 *||May 29, 2003||Aug 12, 2004||Magne Nerheim||Dual operating mode electronic disabling device for generating a time-sequenced, shaped voltage output waveform|
|US20050039628 *||Jun 20, 2003||Feb 24, 2005||Carman Brent G.||Sub-lethal, wireless projectile and accessories|
|US20050064750 *||Nov 5, 2004||Mar 24, 2005||Wayne Hansen||X-ray tube high voltage connector|
|US20050109200 *||Nov 21, 2003||May 26, 2005||Mcnulty James F.Jr.||Method and apparatus for increasing the effectiveness of electrical discharge weapons|
|US20050188827 *||Aug 30, 2004||Sep 1, 2005||Mcnulty James F.Jr.||Electrical discharge weapon for use as a forend grip of rifles|
|US20050188888 *||Feb 5, 2005||Sep 1, 2005||Watkins Thomas G.Iii|
|US20050228459 *||Jun 3, 2005||Oct 13, 2005||Levin Howard R||Renal nerve stimulation method and apparatus for treatment of patients|
|US20050228460 *||Jun 3, 2005||Oct 13, 2005||Levin Howard R||Renal nerve stimulation method and apparatus for treatment of patients|
|US20060027127 *||Jul 14, 2004||Feb 9, 2006||Taser International, Inc.||Systems and methods having a power supply in place of a round of ammunition|
|US20060067026 *||Sep 30, 2004||Mar 30, 2006||Kaufman Dennis R||Stun gun|
|US20060120009 *||Dec 3, 2004||Jun 8, 2006||Chudy John F Ii||Non-lethal electrical discharge weapon having a slim profile|
|US20060187610 *||Feb 18, 2005||Aug 24, 2006||Li Su||Electrical immobilization weapon|
|US20060235474 *||Jun 12, 2006||Oct 19, 2006||Ardian, Inc.||Methods and apparatus for multi-vessel renal neuromodulation|
|US20060255775 *||Feb 21, 2006||Nov 16, 2006||Michael Kramer||Electronic disabling device having a non-sinusoidal output waveform|
|US20060256498 *||Feb 22, 2006||Nov 16, 2006||Taser International, Inc.||Systems and methods for immobilization using charge delivery|
|US20070019357 *||Jun 22, 2005||Jan 25, 2007||Keely William A||High efficiency power supply circuit for an electrical discharge weapon|
|US20070019358 *||Jul 13, 2005||Jan 25, 2007||Kroll Mark W||Immobilization weapon|
|US20070021754 *||Jul 18, 2006||Jan 25, 2007||Vladimir Chernenko||Method for intracorporeal lithotripsy fragmentation and apparatus for its implementation|
|US20070066957 *||Oct 18, 2005||Mar 22, 2007||Ardian, Inc.||Methods and apparatus for inducing controlled renal neuromodulation|
|US20070081293 *||Jul 6, 2006||Apr 12, 2007||Brundula Steven N||Systems and Methods for a User Interface for Electronic Weaponry|
|US20070101893 *||Jun 12, 2006||May 10, 2007||Security Devices International Inc||Non-lethal wireless stun projectile system for immobilizing a target by neuromuscular disruption|
|US20070109712 *||Dec 4, 2006||May 17, 2007||Nerheim Magne H||Systems and Methods for Immobilizing Using Waveform Shaping|
|US20070133146 *||Jul 14, 2006||Jun 14, 2007||Nerheim Magne H||Dual Operating Mode Electronic Disabling Device|
|US20070188972 *||Feb 13, 2006||Aug 16, 2007||Taser International, Inc.||Systems and methods for describing a deployment unit for an electronic|
|US20070287132 *||Mar 9, 2004||Dec 13, 2007||Lamons Jason W||System and method of simulating firing of immobilization weapons|
|US20080007887 *||Jun 11, 2007||Jan 10, 2008||Massachusetts Institute Of Technology||Electrodes, devices, and methods for electro-incapacitation|
|US20080106841 *||Dec 24, 2007||May 8, 2008||Nerheim Magne H||Systems And Methods For Immobilization With Variation Of Output Signal Power|
|US20080123240 *||Dec 27, 2007||May 29, 2008||Nerheim Magne H||Systems and Methods For Immobilization With Repetition Rate Control|
|US20080130193 *||Dec 28, 2007||Jun 5, 2008||Nerheim Magne H||Systems And Methods For An Electronic Control Device With Date And Time Recording|
|US20080137260 *||Jul 6, 2006||Jun 12, 2008||Steven Brundula||Systems And Methods For A User Interface For Electronic Weaponry|
|US20080156219 *||Jun 18, 2007||Jul 3, 2008||Voss Donald E||Method and apparatus for destroying or incapacitating improvised explosives, mines and other systems containing electronics or explosives|
|US20080204965 *||Feb 1, 2008||Aug 28, 2008||Brundula Steven N D||Systems And Methods For Immobilization Using A Compliance Signal Group|
|US20080297970 *||Feb 21, 2006||Dec 4, 2008||Corey Rutz||Electronic disabling device having adjustable output pulse power|
|US20090111620 *||Oct 27, 2008||Apr 30, 2009||Sword Technologies Corp.||Powerod arrow|
|US20090231776 *||May 27, 2009||Sep 17, 2009||Defense Technology Corporation Of America||Electronic disabling device having a non-oscillating output waveform|
|US20090316327 *||Dec 24, 2009||Stinger Systems, Inc.||Shocking device having a count-based monitoring and recording circuit|
|US20090319007 *||Dec 24, 2009||Mcnulty Jr James F||Shocking device having a time-based monitoring and recording circuit|
|US20090323248 *||Feb 6, 2006||Dec 31, 2009||Taser International, Inc.||Systems and methods for local and remote stun functions in electronic weaponry|
|US20100008012 *||Jul 9, 2008||Jan 14, 2010||Shmuel Ben-Yaakov||Electronic Circuitry For Incapacitating a Living Target|
|US20100050856 *||Mar 4, 2010||Christopher Wallace Baldwin||Systems and methods for electrode drag compensation|
|US20100146835 *||Feb 5, 2010||Jun 17, 2010||Mc Nulty Jr James F||Electric discharge weapon for use as forend grip of rifles|
|US20110050177 *||Nov 23, 2005||Mar 3, 2011||Taser International, Inc.||Systems and methods for predicting remaining battery capacity|
|US20110057804 *||Sep 4, 2009||Mar 10, 2011||Raytheon UTD, Inc.||Search and rescue using ultraviolet radiation|
|US20110068938 *||Oct 12, 2010||Mar 24, 2011||Raytheon UTD, Inc.||Search and rescue using ultraviolet radiation|
|US20110096459 *||Apr 28, 2011||Smith Patrick W||Systems And Methods For Immobilization Using Pulse Series|
|US20110143648 *||Jun 16, 2011||Oy Halton Group Ltd.||Automatic displacement ventilation system with heating mode|
|US20120210904 *||Aug 23, 2012||Merems Paul A||Interceptor projectile and method of use|
|US20130021716 *||Jul 3, 2012||Jan 24, 2013||John Louis Kotos||Electrically Insulated Coverings for Electric Stun Device Darts|
|DE10207823A1 *||Feb 25, 2002||Sep 4, 2003||Joerg Bader||Sicherheitseinrichtung für ein Beförderungsmittel und Betäubungsgerät|
|EP0860683A2 *||Feb 3, 1998||Aug 26, 1998||Daimler-Benz Aerospace Aktiengesellschaft||Disc shaped projectile with non-lethal agent|
|EP0881460A2||May 29, 1998||Dec 2, 1998||McNulty Jr., James F.||Weapon which gives an electric shock|
|EP1673843A2 *||Oct 7, 2004||Jun 28, 2006||Taser International Inc.||Systems and methods for immobilization using selected electrodes|
|EP1718134A1||Oct 7, 2004||Nov 2, 2006||Taser International Inc.||Systems and methods for immobilization using selected electrodes|
|EP2328388A2||Oct 7, 2004||Jun 1, 2011||Taser International Inc.||Systems and methods for immobilization|
|WO1999030968A1 *||Sep 17, 1998||Jun 24, 1999||Resnick, Barnet||Non-lethal area denial device|
|WO1999052771A1 *||Sep 17, 1998||Oct 21, 1999||Resnick, Barnet||Automatic aiming non-lethal area denial device|
|WO2003072434A1||Feb 25, 2003||Sep 4, 2003||Bader Joerg||Safety device for a means of transport and a stunning device|
|WO2004001325A2||Jun 23, 2003||Dec 31, 2003||Carman Brent G||Sub-lethal, wireless projectile and accessories|
|WO2005067473A2 *||Nov 16, 2004||Jul 28, 2005||Law Enforcement Associates, Inc.||Method and apparatus for increasing the effectiveness of electrical discharge weapons|
|WO2005067473A3 *||Nov 16, 2004||Dec 29, 2005||Law Enforcement Associates Inc||Method and apparatus for increasing the effectiveness of electrical discharge weapons|
|WO2007033181A2 *||Sep 12, 2006||Mar 22, 2007||Taser International, Inc.||Deployment unit for electronic weaponry with independent propellant|
|WO2009025575A1 *||Aug 23, 2007||Feb 26, 2009||Jury Olegovich Ladyagin||Handheld multi-charge remote-contact electroshock weapon and a unitary cartridge therefor|
|U.S. Classification||361/232, 89/1.11|
|International Classification||F41H13/00, F41B15/00, H05C1/06, H05C1/00|
|Cooperative Classification||F41H13/0006, H05C1/06, F41H13/0025, F41B15/00|
|European Classification||F41B15/00, F41H13/00B, H05C1/06, F41H13/00D4|