Shock protection for weapon mounted devices
09631895 ยท 2017-04-25
Assignee
Inventors
Cpc classification
F41G11/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/393
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/387
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41C27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device for mounting on a weapon or weapon station, including, an encasement for enclosing the device, a core element that provides a functionality of the device, a planar spring that is connected internally to a side of the encasement; and wherein the core element is coupled to one side of the planar spring, so that the core element is not in physical contact with the encasement.
Claims
1. A device for mounting on a weapon or weapon station, comprising: an encasement for enclosing the device; a core element that provides a functionality of the device; a planar spring that is rigidly connected internally directly or indirectly to a side of the encasement; and wherein the core element is directly coupled to a single side of the planar spring to be held by the planar spring in a void surrounded by the encasement without forming direct physical contact with the encasement or any rigid elements in the encasement.
2. A device according to claim 1, wherein the planar spring is rigidly connected internally directly or indirectly to at least two sides of the encasement.
3. A device according to claim 1, wherein said planar spring comprises multiple layers stacked together.
4. A device according to claim 3, wherein some of the layers have different thicknesses.
5. A device according to claim 3, wherein some of the layers are made from different materials.
6. A device according to claim 3, wherein an elastic band surrounds multiple layers of the planar spring.
7. A device according to claim 3, wherein an elastic material is placed between the layers of the planar spring.
8. A device according to claim 1, wherein the planar spring comprises: a center part; two arms extending from the center parts wherein one arm extends from one side of the center part and is rigidly attached internally directly or indirectly to one side of the encasement, and one arm extends from another side of the center part and is rigidly attached internally directly or indirectly to an opposite side of the encasement.
9. A device according to claim 8, wherein the center part has a cut out portion and forms a closed contour surrounding the cut out portion.
10. A device according to claim 8, wherein the arms surround the shape formed by center part and are attached to a side of the encasement opposite the side from which they originate from the center part.
11. A device according to claim 1, further comprising a display that is connected by a flexible data cable to the core element.
12. A device according to claim 1, further comprising an electrical power source that is connected by a flexible electrical cable to the core element.
13. A device according to claim 1, further comprising an optical arrangement to focus light onto an image detector in the core element.
14. A device according to claim 13, wherein the planar spring has a cut out portion to allow the light to pass through the planar spring to the image detector.
15. A device according to claim 1, wherein said functionality includes serving as an image detector or serving as an image engine for a weapon sight device.
16. A method of damping vibrations or shocks in a core element of a device mounted on as weapon or on a weapon station, comprising: coupling rigidly a planar spring internally directly or indirectly to a side of an encasement of the device; coupling the core element directly to a single side of the planar spring to be held by the planar spring in a void surrounded by the encasement without forming direct physical contact with the encasement or any rigid elements in the encasement; wherein said core element provides a functionality of the device.
17. A method according to claim 16, wherein said device includes an optical arrangement to focus light onto an image detector in the core element.
18. A method according to claim 16, wherein the planar spring has a cut out portion to allow the light to pass through the planar spring to the image detector.
19. A method according to claim 16, wherein said planar spring comprises multiple layers stacked together.
20. A method according to claim 16, wherein the planar spring comprises: a center part; two arms extending from the center part, wherein one arm extends from one side of the center part and is rigidly attached internally directly or indirectly to one side of the encasement, and one arm extends from another side of the center part and is rigidly attached internally directly or indirectly to an opposite side of the encasement.
21. A method according to claim 20, wherein the center part has a cut out portion and forms a closed contour surrounding the cut out portion.
22. A method according to claim 20, wherein the arms surround the shape formed by center part and are attached to a side of the encasement opposite the side from which they originate from the center part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will be understood and better appreciated from the following detailed description taken in conjunction with the drawings. Identical structures, elements or parts, which appear in more than one figure, are generally labeled with the same or similar number in all the figures in which they appear, wherein:
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DETAILED DESCRIPTION
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(12) In an exemplary embodiment of the disclosure, thermal weapon sight 100 includes a core 105 (shown in
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(14) In an exemplary embodiment of the disclosure, the imaging engine 120 performs image processing using image processing algorithms such as dynamic range compression and contrast enhancement, helping the human eye detect what would normally be undetectable, regardless of operating temperatures. The imaging detector 110 and the imaging engine 120 together serve as the core 105 of thermal weapon sight 100. Optionally, thermal weapon sight 100 includes a power source 150 to provide power to the core 105, for example via a flexible power cable 155. The power source may use rechargeable or non-rechargeable batteries or be connected to external power sources to allow extending use of thermal weapon sight 100.
(15) In an exemplary embodiment of the disclosure, thermal weapon sight 100 is assembled in an encasement 115 having supports 135 on the internal walls of the encasement 115, for example extending from two or more of internal walls of the encasement 115 to hold core 105 inside the encasement without direct contact with the internal walls. Optionally, a planar spring 140 is attached to supports 135 on two opposite sides of the encasement 115 and core 105 is coupled to one side of the planar spring, so that core 105 will not be physically in direct contact with the internal walls of the encasement. Accordingly, shocks (e.g. recoil) from the weapon will be dampened by planar spring 140 and not transmitted directly to core 105.
(16) In an exemplary embodiment of the disclosure, planar spring 140 is attached to a mounting interface 130 which is coupled to core 105. Optionally, screws 132 or nuts and bolts may be used to provide a secure attachment between planar spring 140, mounting interface 130 and core 105.
(17) In an exemplary embodiment of the disclosure, planar spring 140 is designed to have a center part 146 with a cut out portion, so that the center part forms a closed contour surrounding the cut out portion, for example a ring shaped center part to allow image sensor 110 to receive light passing through the cut out portion of planar spring 140. Optionally, center part 146 may be rectangular, square, multilateral or any other shape. In some embodiments of the disclosure, planar spring 140 may be attached to the opposite side of core 105 so that the center of planar spring 140 does not need to be cut out so as not to interfere with image recording by image sensor 110.
(18) In an exemplary embodiment of the disclosure, planar spring 140 includes two or more arms 144 extending from center part 146. Optionally, the arms 144 surround substantially half of the shape formed by center part 146, so that one arm 144 extending from the top of center part 146 will be attached to the bottom of encasement 115 and one arm 144 extending from the bottom center part 146 will be attached to the top of encasement 115. Optionally, an interface 142 is situated at the end of arms 144 for attaching planar spring 140 to supports 135 of encasement 115, so that the spring will be held by encasement 115 and core 105 will be attached to the center part 146 of planar spring 140.
(19) In some embodiments of the disclosure, an elastic band 148, for example made from rubber or silicone is positioned to grip the arms 144 of the planar springs 140 to enhance damping between multiple layers of planar spring 140 (e.g. 140A, 140B, 140C).
(20) In an experiment conducted using an Ace assault rifle with 7.6251 mm caliber bullets and having a thermal weapon sight 100 as described above mounted onto it, 600 bullets were shot while measuring the recoil acceleration of the thermal weapon sight 100 relative to the acceleration of the core 105 of the thermal weapon sight 100. Additionally, after every 20 bullets the status of the pixels of the display were analyzed to determine if any pixels were lost due to the recoil force or if other damage occurred. The results showed that no pixels were lost when using planar spring 140 to damp the shocks and vibrations caused by the weapon recoil as explained above. Additional tests were performed on other weapons such as Tavor 5.56 mm assault rifle, SCAR-H assault rifle and others with similar results.
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(22) It should be appreciated that the above described methods and apparatus may be varied in many ways, including omitting or adding steps, changing the order of steps and the type of devices used. It should be appreciated that different features may be combined in different ways. In particular, not all the features shown above in a particular embodiment are necessary in every embodiment of the disclosure. Further combinations of the above features are also considered to be within the scope of some embodiments of the disclosure. It will also be appreciated by persons skilled in the art that the present disclosure is not limited to what has been particularly shown and described hereinabove.