OPTICAL DEVICE MOUNTING APPARATUS FOR USE WITH WEAPONS
An optical device mounting apparatus for use with firearms and related methods and systems are disclosed. The mounting apparatus has at least one arm portion connectable to a mounting rail of a firearm. A mounting shoe receiver is connected to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm.
This application claims benefit of U.S. Provisional Application Ser. No. 62/490,474 filed Apr. 26, 2017 and titled “Optical Device Mounting Apparatus for Use with Weapons”, the entire disclosure of which is incorporated herein by reference.
FIELD OF THE DISCLOSUREThe present disclosure is generally related to mounting devices and more particularly is related to an optical device mounting apparatus for use with weapons.
BACKGROUND OF THE DISCLOSUREOptical devices are commonly used in various environments to enhance the capabilities of the user's vision. In military environments, various optical devices are used to give a soldier enhanced visibility in harsh conditions. For example, devices like the AN/PVS 14 night vision monocular are commonly used in the military to enhance a soldier's visibility in low light conditions. These optical devices are affixed to combat helmets, weapons, or other structures that a soldier uses, and during a field operation, a soldier may move the optical device between the various mounting structures.
When the AN/PVS-14 night vision monocular is issued, it is accompanied by several accessories, including the monocular itself, the various lens caps and lanyard and 2 key interface products, a helmet mount, and the weapon mount.
Thus, a heretofore unaddressed need exists in the industry to address the aforementioned deficiencies and inadequacies.
SUMMARY OF THE DISCLOSUREEmbodiments of the present disclosure provide a system and method for an optical device mounting apparatus for use with firearms. Briefly described, in architecture, one embodiment of the apparatus, among others, can be implemented as follows. The mounting apparatus has at least one arm portion connectable to a mounting rail of a firearm. A mounting shoe receiver is connected to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm.
The present disclosure can also be viewed as providing a system for mounting an optical device. Briefly described, in architecture, one embodiment of the system, among others, can be implemented as follows. An optical device mounting system for use with firearms includes a firearm rail and an optical device having a mounting shoe attached thereon. At least one arm portion is connectable to the mounting rail. A mounting shoe receiver is connected to the at least one arm portion, The mounting shoe receiver has angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails. A plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm.
The present disclosure can also be viewed as providing methods of mounting an optical device on a firearm. In this regard, one embodiment of such a method, among others, can be broadly summarized by the following steps: connecting at least one arm portion to a mounting rail of a firearm; connecting a mounting shoe receiver to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm; and mounting an optical device by slidably engaging a mounting shoe attached thereon with the dovetailed rails of the mounting shoe receiver.
Other systems, methods, features, and advantages of the present disclosure will be or become apparent to one with skill in the art upon examination of the following drawings and detailed description. It is intended that all such additional systems, methods, features, and advantages be included within this description, be within the scope of the present disclosure, and be protected by the accompanying claims.
Many aspects of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Embodiments of the present disclosure provide a system and method for an optical device mounting apparatus for use with firearms, and in particular, used with specific orientations relative to a firearm.
The apparatus 110 may be used to mount any type of optical device to a firearm, including the PVS-14 monocular or other optical enhancement devices. The apparatus 110 may include a number of arm portions 120 to position the mounting shoe receiver 140 in the appropriate position above the rail 28, commonly a position which is spaced above the rail 28 and sometimes offset from a center axis of the rail 28. The offset may be on either side of the rail 28, depending on the operator or the use conditions of the firearm. As shown, a first arm 120A may be used to connect primarily to the rail 28 by fitting around the edges of the rail 28 and being removably secured thereto. The ability to removably secure a mounting arm to the rail can be achieved through numerous different means, as is known in the art. A second arm portion 120B is also used to connect to the first arm portion 120A and the mounting shoe receiver 140. The connection between the first and second arm portions 120A, 120B may be achieved by various fasteners, such as a threaded fastener, pin, bolt, button, and the like. Protrusions or nesting shapes within the arms 120A, 120B may be used to ensure that they're properly aligned when connected together. For example, arm 120A may have raised areas, indented areas, grooves, or walls designed to mate with corresponding areas on arm 120B. In
As shown, the second arm portion 120B may include a right-angled design which includes a first wall 122A positioned substantially perpendicular to a second wall 122B. The interior surfaces of walls 122A, 122B abut first arm portion 120A to properly align the arms 120A, 120B. The second wall 122B may be oriented substantially vertically to the first wall 122A and include an angled leg 124 which is sized to fit within a slot 146 of the mounting shoe receiver 140 housing. The angled leg 124 may permit the mounting shoe receiver 140 housing to move in an angular vertical direction and be retained in place with a threaded fastener at the desired position. The angled leg 124 may also allow the mounting shoe receiver 140 to be angularly adjusted down the length of the mounting rail 28 so that the optical device is optically aligned with the ballistic path downrange. The mounting shoe receiver 140 may be rotated about the threaded fastener to achieve the alignment. The slot 146 may allow the mounting shoe receiver 140 to align with the angled leg 124 easily by providing an alignment pathway. The slot 146 also ensures that inadvertent movement of the mounting shoe receiver 140 and the arm portions 120 is prevented, as the angled leg 124 is held in place by the slot 146.
As shown in
It is noted that the specific positioning of the mounting shoe receiver 140 in the vertical position is unique and novel. Within the art, mounting shoes and mounting shoe receivers have been used only in a horizontal position, such that the wall 144 of the mounting shoe receiver 140 is positioned parallel with the top edge of the rail 28, e.g., parallel to a plane formed along the uppermost surface of the rail 28. In the subject disclosure, the optical device is capable of being positioned substantially 90° relative to the conventional positioning due to the vertically-oriented mounting shoe receiver 140 which provides benefits in positioning the optical device in the desired location vertically above the rail 28. It also has benefits of being able to utilize the popular mounting shoes which are used to attach optical devices to other types of mounts, such as helmet mounts. The apparatus 110 allows significant interchangeability of the optical device between a weapon-mounted position and other mounting configurations without the needed to fiddle with threaded screws or other cumbersome connections.
In one example, the second arm portion 120B and the first arm portion 120C may mate at right-angled edges.
The mounting shoe 920 may be fastened to the optical device 910 using common fasteners, such as threaded screws. The mounting shoe receiver 140, first arm portion 120A, and second arm portion 120B may be the same components discussed relative to
Step 1010 includes connecting at least one arm portion to a mounting rail of a firearm. In one example, a first arm portion may be connected to the mounting rail, while a second arm portion is connected to the first arm portion.
Step 1020 includes connecting a mounting shoe receiver to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm. In one example, the mounting shoe receiver may be connected to the second arm portion discussed above.
Step 1030 includes mounting an optical device by slidably engaging a mounting shoe attached thereon with the dovetailed rails of the mounting shoe receiver. In one example, the mounting shoe receiver may include a locking interface such as a button, lever, or spring-loaded lock. The step of slidably engaging a mounting shoe may further include engaging the locking interface to receive or holding the mounting shoe in place.
In one example, a second arm portion may be connected to a first arm portion along a pivoting axis as discussed above. The method of mounting an optical device may further include rotating the optical device about the pivoting axis, either to position the optical device over the mounting rail for use, or to position the optical device away from the mounting rail so that the firearm may be used without the optical device. In rotating the optical device, the substantially planar wall of the mounting shoe receiver may be rotated such that it is not parallel to a vertical plane of the firearm. However, when the optical device is rotated back over the mounting rail, the mounting shoe receiver may return to its state parallel to the vertical plane of the firearm. This may allow a user to quickly alternate between use of the firearm with the optical device and use without.
The various components of the present disclosure may be made from any suitable material for operation with firearms, including metals, alloys, plastics, and the like. In particular, the components may be manufactured to withstand combat use, and may include mil-spec materials and manufacturing.
It should be emphasized that the above-described embodiments of the present disclosure, particularly, any “preferred” embodiments, are merely possible examples of implementations, merely set forth for a clear understanding of the principles of the disclosure. Many variations and modifications may be made to the above-described embodiment(s) of the disclosure without departing substantially from the spirit and principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and the present disclosure and protected by the following claims.
Claims
1. An optical device mounting apparatus for use with firearms, the mounting apparatus comprising:
- at least one arm portion connectable to a mounting rail of a firearm; and
- a mounting shoe receiver connected to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm.
2. The apparatus of claim 1, wherein the at least one arm portion comprises an angled leg sized to slidably engage in a slot on the mounting shoe receiver.
3. The apparatus of claim 1, wherein the mounting shoe receiver is connected to the at least one arm portion offset from a center axis of the mounting rail.
4. The apparatus of claim 1, comprising at least two arm portions, wherein a first arm portion is connectable to a mounting rail of a firearm, wherein a second arm portion is connectable to the first arm portion, and wherein the mounting shoe receiver is connected to the second arm portion.
5. The apparatus of claim 4, wherein the mounting shoe receiver is connected to the second arm portion offset from a center axis of the mounting rail.
6. The apparatus of claim 4, wherein the second arm portion comprises a first wall and a second wall connected substantially perpendicular to each other, and wherein the first arm portion connects with the second arm portion by abutting the first and second walls of the second arm portion.
7. The apparatus of claim 4, wherein the second arm portion is connectable to the first arm portion along a pivoting axis oriented parallel to the mounting rail, wherein the mounting shoe receiver is rotatable about the pivoting axis, and wherein when the mounting shoe receiver is rotated, the plane of the substantially planar wall is rotated.
8. The apparatus of claim 7, wherein the pivoting axis is a pivoting axle connecting the first arm portion and the second arm portion.
9. An optical device mounting system for use with firearms, comprising:
- a firearm rail;
- an optical device having a mounting shoe attached thereon;
- at least one arm portion connectable to the firearm rail; and
- a mounting shoe receiver connected to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm.
10. The system of claim 9, wherein the mounting shoe receiver is connected to the at least one arm portion offset from a center axis of the mounting rail.
11. The system of claim 9, comprising at least two arm portions, wherein a first arm portion is connectable to a mounting rail of a firearm, wherein a second arm portion is connectable to the first arm portion, and wherein the mounting shoe receiver is connected to the second arm portion.
12. The system of claim 11, wherein the second arm portion comprises a first wall and a second wall connected substantially perpendicular to each other, and wherein the first arm portion connects with the second arm portion by abutting the first and second walls of the second arm portion.
13. The system of claim 11, wherein the second arm portion is connectable to the first arm portion along a pivoting axis oriented parallel to the mounting rail, wherein the mounting shoe receiver is rotatable about the pivoting axis, and wherein when the mounting shoe receiver is rotated, the plane of the substantially planar wall is rotated.
14. A method of mounting an optical device on a firearm, comprising the steps of:
- connecting at least one arm portion to a mounting rail of a firearm;
- connecting a mounting shoe receiver to the at least one arm portion, the mounting shoe receiver having angled dovetailed rails with a substantially planar wall positioned between the angled dovetailed rails, wherein a plane of the substantially planar wall is positioned parallel to a vertical plane of the firearm; and
- mounting an optical device by slidably engaging a mounting shoe attached thereon with the dovetailed rails of the mounting shoe receiver.
15. The method of claim 14, wherein the mounting shoe receiver is slidable along a leg of the at least one arm portion in a direction along the mounting rail and in a direction along the vertical plane of the firearm.
16. The method of claim 14, further comprising the step of angularly aligning the mounting shoe receiver along a central axis of the firearm by positioning the mounting shoe receiver against a raised portion of the at least one arm portion.
17. The method of claim 14, wherein the optical device is mounted offset from a center axis of the mounting rail.
18. The method of claim 14, wherein the step of connecting at least one arm portion to a mounting rail of a firearm comprises connecting a first arm portion to the mounting rail and connecting a second arm portion to the first arm portion, and wherein the mounting shoe receiver is connected to the second arm portion.
19. The method of claim 18, wherein the first arm portion abuts the second arm portion along a shelf of the second arm portion.
20. The method of claim 18, wherein the optical device is rotatable about a pivoting axis oriented parallel to the mounting rail between the first arm portion and the second arm portion.
Type: Application
Filed: Apr 26, 2018
Publication Date: Nov 1, 2018
Inventor: Robert J. McCreight (Boerne, TX)
Application Number: 15/963,944