NON-PYROTECHNIC DIVERSIONARY DEVICE
20250052551 ยท 2025-02-13
Assignee
Inventors
Cpc classification
F42B8/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42B8/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A diversionary device including a triggering mechanism, a payload and a compressed gas container containing a compressed gas. The compressed gas is non-flammable. The triggering mechanism is coupled to the compressed gas container, and conveys at least some of the gas from the compressed gas container to the payload after a predetermined delay after the triggering mechanism is activated. The gas conveyed to the payload causes the payload to produce a diversionary acoustic effect.
Claims
1. A diversionary device, comprising: a triggering mechanism; a payload; and a compressed gas container containing a compressed gas, the compressed gas being non-flammable, the triggering mechanism being coupled to the compressed gas container, the triggering mechanism conveying at least some of the gas from the compressed gas container to the payload after a predetermined delay after the triggering mechanism is activated, the gas conveyed to the payload causing the payload to produce a diversionary acoustic effect.
2. The diversionary device of claim 1, wherein the triggering mechanism has a restricted flow passage for some of the gas to traverse, a rate of flow of the gas in the restricted flow passage determining the predetermined delay of the triggering mechanism.
3. The diversionary device of claim 2, wherein the triggering mechanism includes a piston biased to puncture the compressed gas container when the triggering mechanism is activated.
4. The diversionary device of claim 3, wherein the piston is at a first position prior to the triggering mechanism being activated and the piston moves to a second position when the triggering mechanism is activated where the piston punctures the compressed gas container, an initial flow of the compressed gas causes the piston to move to a third position until the predetermined delay has expired causing the piston to move to a fourth position.
5. The diversionary device of claim 1, wherein the piston performs multiple functions.
6. The diversionary device of claim 5, wherein the multiple functions include at least three of the following: (1) puncturing the compressed gas container; (2) establishing a pathway for the compressed gas to enter a timing chamber; (3) establishing a pathway for the compressed gas to inflate the payload; and (4) metered-timing of a gas transfer process of the compressed gas.
7. The diversionary device of claim 1, wherein the payload includes a first envelope into which the compressed gas is directed.
8. The diversionary device of claim 7, wherein the payload further includes a second envelope having a predetermined failure pattern, the first envelope being within the second envelope.
9. The diversionary device of claim 8, wherein the second envelope is a non-expanding fabric envelope and the first envelope is an expandable envelope, the compressed gas released within the first envelope rapidly expands the first envelope reaching the constraints of the second envelope and causing the second envelope to fail along the predetermined failure pattern thereby causing an acoustic wave that is the diversionary acoustic effect.
10. The diversionary device of claim 9, wherein the payload further includes a dispersal compound located within the first and/or the second envelope, the dispersal compound being dispersed upon the failure of at least the second envelope.
11. The diversionary device of claim 1, wherein the diversionary device does not include a flammable gas, nor does the device include a chemical exothermic compound.
12. A method of operating a diversionary device, comprising the steps of: activating a triggering mechanism coupled to a payload; and conveying at least some gas from a compressed gas container to the payload after a predetermined delay after the triggering mechanism is activated in the activating step, the gas conveyed to the payload causing the payload to produce a diversionary acoustic effect, the diversionary acoustic effect being a rapid overpressure rise time shockwave.
13. The method of operating the diversionary device of claim 12, wherein the triggering mechanism has a restricted flow passage for some of the gas to traverse, a rate of flow of the gas in the restricted flow passage determining the predetermined delay of the triggering mechanism.
14. The method of operating the diversionary device of claim 13, wherein the triggering mechanism includes a piston biased to puncture the compressed gas container when the triggering mechanism is activated.
15. The method of operating the diversionary device of claim 14, wherein the piston is at a first position prior to the triggering mechanism being activated and the piston moving to a second position when the triggering mechanism is activated where the piston punctures the compressed gas container, an initial flow of the compressed gas causing the piston to move to a third position until the predetermined delay has expired causing the piston to then move to a fourth position.
16. The method of operating the diversionary device of claim 14, wherein the piston performs at least three functions.
17. The method of operating the diversionary device of claim 16, wherein the at least three functions include at least three of the following: (1) puncturing the compressed gas container; (2) establishing a pathway for the compressed gas to enter a timing chamber; (3) establishing a pathway for the compressed gas to inflate the payload; and (4) metered-timing of a gas transfer process of the compressed gas.
18. The method of operating the diversionary device of claim 12, further comprising the step of directing the compressed gas to the payload that includes a first envelope into which the compressed gas is directed thereby inflating the first envelope.
19. The method of operating the diversionary device of claim 18, wherein the payload further includes a second envelope having a predetermined failure pattern, the first envelope being within the second envelope which causes the second envelope to expand and to fail along the predetermined failure pattern thereby causing an acoustic wave that is the diversionary acoustic effect, the rapid overpressure rise time shockwave produces no less than 150 db or 630 pascals of overpressure within 0.25 ms.
20. The method of operating the diversionary device of claim 12, wherein the diversionary device does not include a flammable gas, nor does the device include a chemical exothermic compound.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawing, wherein:
[0012]
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[0022] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplification set out herein illustrates one embodiment of the invention, in one form, and such exemplification is not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
[0023] Referring now to the drawings, and more particularly to
[0024] Triggering mechanism 12 is coupled to compressed gas container 16 and to payload 14. Triggering mechanism 12 is configured to convey at least some of gas G from compressed gas container 16 to payload 14 after a predetermined delay after triggering mechanism 12 is activated. The gas G that is conveyed to payload 14 causes a portion of payload 14 to expand and to produce a desired diversionary acoustic effect.
[0025] Triggering mechanism 12 includes an activating lever 18 and a safety pin 20. Activating lever 18 and safety pin 20 are familiar elements to grenade type devices and serve similar purposes. Safety pin 20 is pulled out of triggering mechanism 12, for example as shown in
[0026] Now, additionally referring to
[0027] Now looking at
[0028] In
[0029] In
[0030] In
[0031] As can be seen restricted flow passage 24 is illustrated as being screwed into place so that different size passages can be selected to determine the length of the predetermined delay that takes place between the third and fourth positions of piston 22. It is also contemplated to have more than one selected restricted flow passage 24 may be included so that the user can alter the delay time by selecting the restricted flow passage 24 that is used.
[0032] Piston 22 performs at least three functions with four being listed as: [0033] (1) puncturing compressed gas container 16; [0034] (2) establishing a pathway for the compressed gas to enter timing chamber TC; [0035] (3) establishing a pathway for the compressed gas G to inflate payload 16; and [0036] (4) metered-timing of a gas transfer process of compressed gas G.
[0037] Now, additionally referring to
[0038] Payload 14 may further include a dispersal compound 56 located within the first and/or the second envelope, the dispersal compound being dispersed upon the failure of at least second envelope 52. Dispersal compound 56 may be an irritant of some sort, such as a skin irritant, an eye irritant, or an obnoxious odor. Dispersal compounds 56 or payload media 56 could also include: powder or liquids of various compounds potentially including: simulated smoke, dust, irritants, marking agents, smelly or fragrant mixes, medication, fertilizers, fire abatement compounds, and oxygen displacing agents. While it is the desire to have nonflammable elements in the NPDD 10, it is recognized that it could, contrary to this purpose, contain oxidizer agents, fire ignition agents etc. that are rapidly spread, while being localized with the burst energy of the burst envelope.
[0039] One important aspect of the intended construct of NPDD 10 is that it does not include a flammable gas, nor does the device include a chemical exothermic compound.
[0040] Advantageously, the single piston 22 with multiple action features provides a cost effective and reliable timing solution to NPDD 10.
[0041] Upon the release of seer 28 piston 22 is driven forward to penetrate sealed gas high pressure bottle 16. The gas pressure that is then exerted against piston 22 drives piston 22 to a timing position while timing cavity TC is filled with gas G through a small port 24 to accomplish the timing delay as the gas pressure differential on piston 22 allows the bias of spring 26 to move piston 22 to a firing position. In the firing position piston 22 dumps gas G in timing cavity TC and gas G in pressure vessel 16 quickly to thereby pressurize the burst envelope up to the burst pressure which releases the volume of the burst envelope in a quick catastrophic failure mode of fabric envelope 52 causing a rapid N-wave pressure rise to the localized atmosphere replicating the sound of an conventional explosion event.
[0042] As discussed above, timing can vary depending on the orifice 24 used. The delay can nominally be approximately 2 or 3 seconds, and can easily be selected in a range of from about 1 to 5 seconds.
[0043] It is also contemplated that the delay time can be impacted by changing the spring pressure, the orifice size, the stored bottle pressure, and the location, shape, area, of functional ports and valves.
[0044] NPDD 10 serves as a simulation or emulation of small to medium explosions and/or as training devices used for first responders and military/police training aids and theatrical simulations of explosions. The acoustic report of the envelope, as it ruptures, produces a sheer pressure wave of a rapid pressure rise of no less than 150 db or 630 pascals of overpressure within 0.25 ms to the surrounding ambient air, to thereby produce a shockwave concussion that is both heard and felt. Versions of NPDD 10 can actually produce up to 175 db (11,240 pascal) overpressure within 0.25 ms, with some configurations capable of 180 db (22,440 pascal) of overpressure within 0.25 ms. The diversionary acoustic effect of NPDD 10 is a rapid overpressure rise time shockwave.
[0045] It is also contemplated that payload 14 could be another type of acoustic device, such as a noisemaker, perhaps in the form of a whistle, a siren, or an airhorn, for example. Each providing a diversionary acoustic effect when activated.
[0046] Another advantage of the present invention is that it will not naturally ignite or exasperate fires and explosions. This is particularly advantageous in the presence of dangerous freight or in atmospheric environments such as ship boarding, meth labs, fuel or gas refinery locations etc.
[0047] It is also contemplated that NPDD 10 could be mechanically or electrically triggered with the use of a wired or wireless solenoid assembly to release seer 28.
[0048] The failure initiation detail on the outer bag 52 looks like the letter X, so after it blows there are 4 petals. Generally speaking the inner bladder 50 usually doesn't have petals, it's rupture is more of a ragged edge with a hole in the center.
[0049] While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.