ELECTRONIC STUN GRENADE
20210199412 ยท 2021-07-01
Assignee
Inventors
Cpc classification
F41H13/0087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B8/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B8/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/2039
ELECTRICITY
F42B12/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42B12/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electronic stun grenade (10) comprising a casing (11) and a means for generating light (13), wherein the means for generating light (13) is mounted onto an exterior surface of the casing (11). This allows the interior volume defined by the casing (11) to be more effectively used for containing a means for powering the means for generating light (13). Particularly suited to applications requiring compact stun grenades, such as man portable or weapon launched devices.
Claims
1. An electronic stun grenade comprising a casing and a means for generating light, wherein the means for generating light is mounted onto an exterior surface of the casing, such that an interior volume defined by the casing can be used for containing a means for powering the means for generating light.
2. The electronic stun grenade of claim 1 wherein the means for generating light comprises a plurality of LEDs.
3. The electronic stun grenade of claim 2 wherein the plurality of LEDs are mounted onto at least a first electrically conductive band encircling the casing.
4. The electronic stun grenade of claim 3 wherein each electrically conductive band comprises a first and second electrical track, such that LEDs mounted onto the same electrically conductive band can be electrically connected in parallel.
5. The electronic stun grenade of claim 4 comprising a plurality of electrically conductive bands electrically connected in series.
6. The electronic stun grenade of claim 2, wherein each electrically conductive band comprises copper.
7. The electronic stun grenade of claim 2, further comprising a spacer element positioned between each electrically conductive band and the casing.
8. The electronic stun grenade of claim 1, wherein the casing comprises a heat conductive material.
9. The electronic stun grenade of claim 1, further comprising a means for powering the means for generating light, the means for powering being contained within the casing.
10. The electronic stun grenade of claim 9 wherein the means for powering is a Lithium High Voltage battery.
11. The electronic stun grenade of claim 1, further comprising a means for controlling the means for generating light.
12. The electronic stun grenade of claim 11 wherein the means for controlling comprises a microcontroller.
13. The electronic stun grenade of claim 1, further comprising an LED array attached to a first end of the casing, the LED array being electrically connectable to a means for powering the means for generating light, wherein the LED array is orientated such that in use, light generated by the array is directed axially away from the casing.
14. The electronic stun grenade of claim 1, further comprising a light transmissive coating covering at least the means for generating light.
15. A projectile comprising the electronic stun grenade of claim 1, wherein the projectile has a maximum diameter substantially equal to 40 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Embodiments of the invention will now be described by way of example only and with reference to the accompanying drawings, in which:
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025]
[0026]
[0027]
[0028] In use the electronic stun grenade 10 may reside within a grenade launcher prior to use. LED array 15 may be operated via a switch in the first end of the casing 11 that a user can depress, or alternatively via a button on the grenade launcher itself (for instance an electrical connection may exist from the grenade launcher to the power source and microcontroller 21). This enables the electronic stun grenade 10 to operate as a torch is required. Upon deployment the stun grenade 10 may be launched (from a grenade launcher) or thrown towards a target location. The user may press a button on the electronic stun grenade 10 to initiate the power supply and microcontroller 21 (or alternatively the act of launching the stun grenade 10 from a grenade launcher may cause the power supply and microcontroller 21 to initiate). The power supply and microcontroller 21 upon receiving an initiation waits for a pre-programmed time delay before triggering power to be supplied to LEDs 13. The time delay may be programmed into the power supply and microcontroller 21 to be sufficient to enable the electronic stun grenade 10 to arrive at a target location (after being launched or thrown) before the LEDs 13 radiate. The power supplied to LEDs 13 may be modulated by power supply and microcontroller 21 to generate a pulsed light effect from LEDs 13.
[0029] The shape of the electronic stun grenade casing 10 is shown in the figures to be substantially cylindrical. This is beneficial as the stun grenade will conform to a launch tube of for instance a 40 mm grenade launcher. However the casing 10 may be substantially of other shapes or designs depending on the application. An LED array 15 is an optional feature enabling a dual use of the electronic stun grenade 10, and other light emitting devices may be used instead of the LED array 15 (for instance a bulb). The arrangement of LEDs 13 may be substantially equally spaced around casing 10, however other arrangements that are not equally spaced may be used. An electronic stun grenade 10 with only single electrically conductive band 12 may be used. The interior volume of casing 10 may comprise additional chambers acting as gas expansion chambers. A high pressure gas in an on-board gas cylinder or generator that is vented into these chambers may be used to provide an acoustic distraction effect in additional to a visual effect. The gas may also serve to provide internal cooling to the device.