Multi-function gunsight
10969198 · 2021-04-06
Assignee
Inventors
Cpc classification
F41G1/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41G1/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A multi-function gunsight for aiming a firearm comprises a body and a sight arm pivotally coupled to the body for rotation between a stowed orientation and a deployed orientation. The body defining a laser cavity, a starboard cavity, and a port cavity. A laser housing is disposed inside the laser cavity defined by the body. The laser housing supports a semiconductor chip that emits laser light and a collimating lens that collimates the laser light emitted by the semiconductor chip. A forward end of the laser housing is coupled to a spherical bearing. The spherical bearing constrains movement of the laser housing in three translation degrees of freedom corresponding to translation along x, y, and z axes of an x-y-z coordinate system. The spherical bearing allows rotation of the laser housing about at least the x and y axes of the x-y-z coordinate system.
Claims
1. A multi-function gunsight for aiming a firearm, the firearm having a receiver with a barrel extending forwardly, the barrel having a bore and a gun bore axis, an upper rail mounted above the receiver and the barrel, the multi-function gunsight comprising: a body having a forward portion, a rearward portion, and a clamp portion for attachment to the upper rail of the firearm, the body defining a laser cavity formed in the forward portion; a sight arm pivotally supported at the rearward portion of the body and pivotal about a sight arm pivotal axis between a deployed position and a reclined position, the sight arm having a sighting element establishing a sighting element axis when the gunsight is mounted on the upper rail of the firearm and the sight arm is in the deployed position; a laser unit disposed in the laser cavity and generating a laser beam extending in a forward direction along a laser beam axis, wherein the laser beam axis, the sighting element axis, and the gun bore axis are all generally coplanar.
2. The gunsight of claim 1, further comprising an elevation adjustment mechanism including an elevation adjustment screw, the elevation adjustment screw rotating about an elevation adjustment screw axis that lies on a vertical plane defined by the sight line, the laser beam axis, and the gun bore axis.
3. The gunsight of claim 1, further comprising a battery housing including a battery compartment, the battery compartment being disposed on one side of a vertical plane defined by the sight line, the laser beam axis, and the gun bore axis.
4. The gunsight of claim 3, wherein the body and the battery compartment are unitarily formed from a single piece of material and the battery compartment extends below a lowermost surface of the clamp portion.
5. The gunsight of claim 3, wherein the battery housing is generally cylindrical and the gunsight further comprises a circuit board disposed in the battery cavity.
6. The gunsight of claim 1, further comprising a first switch disposed on a first side of the body and a second switch disposed on a second side of the body.
7. The gunsight of claim 6, wherein the first and second switches are coplanar with the sight arm pivot axis and the laser beam axis.
8. The gunsight of claim 6, wherein each of the first and second switches includes a momentary contact switch for activating and deactivating the laser.
9. The gunsight of claim 6, wherein the rearward portion of the body includes two rearwardly extending legs, and wherein the first switch is disposed in a first cavity in a first leg of the two rearwardly extending legs, the first cavity opening in a first direction, the first switch assuming a closed circuit state when depressed, and the second switch is disposed in a second cavity in a second leg of the two rearwardly extending legs, the second cavity opening in a second direction, and the second switch assuming a closed circuit state when depressed.
10. The gunsight of claim 1, in combination with the firearm.
11. The gunsight of claim 1, wherein the body defines an H-shaped cross-section when the body is sectioned along a section plane extending through the laser cavity and the two rearward extending legs.
12. A multi-function gunsight for aiming a firearm, the firearm having a receiver with a barrel extending forwardly, the barrel having a bore and a gun bore axis, an upper rail mounted above the receiver and the barrel, the multi-function gunsight comprising: a body having a forward portion, a rearward portion, and a clamp portion for attachment to the upper rail of the firearm, the body defining a laser cavity is formed in the forward portion, and first and second cavities; a first switch disposed in the first cavity, the first switch assuming a closed circuit state when depressed; a second switch disposed in the second cavity, the second switch assuming a closed circuit state when depressed; a sight arm pivotally supported at the rearward portion and pivoting about a sight arm pivot axis between a deployed position and a reclined position, the sight arm includes a sighting element establishing a sight line, extending forwardly when the sight arm is in the deployed position and the gunsight is attached to the upper rail of the firearm; and a laser unit disposed in the laser cavity and generating a laser beam extending in a forward direction along a laser beam axis, wherein the laser beam axis, the sighting element axis, and the gun bore axis are all generally coplanar.
Description
DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
(30) Referring to
(31) The multi-function gunsight 100 includes a windage adjustment mechanism 142W comprising a windage adjustment spring 144W and a windage adjustment screw 146W that is threadingly received in a windage adjustment insert 148W. The windage adjustment insert 148W includes a windage adjustment shoulder 150W that is positioned and configured to limit travel of the windage adjustment screw 146W. The windage adjustment spring 144W is positioned and configured to bias the laser housing 124 against the windage adjustment screw 146W. The windage adjustment screw 146W is positioned and configured so that rotation of the windage adjustment screw 146W relative to the windage adjustment insert 148W produces rotation of the laser housing 124 about the y-axis.
(32) The multi-function gunsight 100 also includes an elevation adjustment mechanism 142E comprising an elevation adjustment spring 144E and an elevation adjustment screw 146E that is threadingly received in an elevation adjustment insert 148E. The elevation adjustment insert 148E includes an elevation adjustment shoulder 150E positioned and configured to limit travel of the elevation adjustment screw 146E. The elevation adjustment spring 144E is positioned and configured to bias the laser housing 124 against the elevation adjustment screw 146E. The elevation adjustment screw 146E is positioned and configured so that rotation of the elevation adjustment screw 146E relative to the elevation adjustment insert 148E produces rotation of the laser housing 124 about the x-axis. A laser sight may be adjusted or sighted for a particular distance and wind condition.
(33) In some embodiments, a starboard switch 152S is disposed in the starboard cavity 120 defined by the body 104 of the multi-function gunsight 100. The starboard switch 152S comprises a starboard switch substrate 156S overlaying a bottom surface of the starboard cavity 120, a starboard switch spring 158S overlaying the starboard switch substrate 156S, and a starboard switch cap 160S overlaying the starboard switch spring 158S. The starboard switch substrate 156S comprises a first conductive trace 162S and a second conductive trace 164S disposed on a starboard facing surface 166S of the starboard switch substrate 156S. The starboard switch spring 158S is deformable between an unstressed configuration in which an inner surface of the starboard switch spring is concave and a deformed configuration in which the starboard switch spring completes an electrical circuit between the first conductive trace 162S and the second conductive trace 164S of the starboard switch substrate 156S. The starboard switch spring 158S is positioned and configured to assume the deformed configuration when a portwardly directed depressing force is applied to the starboard switch cap 160S.
(34) In some embodiments, a port switch 152P is disposed in the port cavity 122 defined by the body 104 of the multi-function gunsight 100. The port switch 152P comprises a port switch substrate 156P overlaying a bottom surface of the port cavity 122, a port switch spring 158P overlaying the port switch substrate 156P, and a port switch cap 160P overlaying the port switch spring 158P. The port switch substrate 156P comprises a first conductive trace 162P and a second conductive trace 164P disposed on a portwardly facing surface 166P of the port switch substrate 156P. The port switch spring 158P is deformable between an unstressed configuration in which an inner surface of the port switch spring is concave and a deformed configuration in which the port switch spring completes an electrical circuit between the first conductive trace 162P and the second conductive trace 164P of the port switch substrate 156P. The port switch spring 158P is positioned and configured to assume the deformed configuration when a starboardly directed depressing force is applied to the port switch cap 160P.
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(36) The starboard switch 152S comprises a first conductive trace 162S and a second conductive trace 164S disposed on a starboard facing surface 166S of a starboard switch substrate 156S. The first conductive trace 162S is electrically connected to the printed wiring board by a first switch wire. The second conductive trace 164S is electrically connected to the printed wiring board by a second switch wire. The port switch 152P comprises a first conductive trace 162P and a second conductive trace 164P disposed on a portward facing surface 166P of a port switch substrate 156P. The first conductive trace 162P is electrically connected to the printed wiring board by a first switch wire. The second conductive trace 164P is electrically connected to the printed wiring board by a second switch wire.
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(44) The multi-function gunsight 100 includes a windage adjustment mechanism 142W and an elevation adjustment mechanism 142E that may allow the gunsight to be adjusted or sighted for a particular distance and wind condition. The windage adjustment mechanism 142W comprises a windage adjustment screw 146W that is threadingly received in a windage adjustment insert 148W. Rotation of the windage adjustment screw 146W relative to the windage adjustment insert 148W produces rotation of the laser source about a y-axis. The multi-function gunsight 100 also includes an elevation adjustment mechanism 142E comprising an elevation adjustment screw 146E that is threadingly received in an elevation adjustment insert 148E. Rotation of the elevation adjustment screw 146E relative to the elevation adjustment insert 148E produces rotation of the laser source about an x-axis.
(45) The multi-function gunsight 100 comprises a starboard switch 152S and a port switch 152P. In the embodiment of
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(47) A battery housing 176 multi-function gunsight 100 may be fixed to one of the lateral sides (port and starboard) of the Y-shaped body 104. The battery housing 176 defines a battery compartment 178 disposed on one lateral side (port or starboard) of the Y-shaped body in some embodiments. A windage adjustment mechanism 142W of the multi-function gunsight 100 may be positioned opposite the battery compartment 178. In some embodiments, the battery compartment 178 is disposed portward of the laser cavity 108 defined by the forwardly extending leg 110 of the body 104 and the windage adjustment mechanism 142W is disposed on a starboard side of the forwardly extending leg 110 of the body 104. In other embodiments, the battery compartment 178 is disposed starboard of the laser cavity 108 defined by the forwardly extending leg 110 of the body 104 and the windage adjustment mechanism 142W is disposed on a port side of the forwardly extending leg 110 of the body 104.
(48) The battery compartment 178 may be dimensioned and adapted to receive a battery 174. In some embodiments, the battery compartment 178 is dimensioned and adapted to receive a battery 174 of the size known as CR123A. The battery 174 may comprise, for example, a CR123A lithium battery. In one or more embodiments, the battery compartment 178 is disposed forward of the sight arm pivot axis PA. In one or more embodiments, a forward-most end of the battery compartment 178 is disposed forward of a forward-most end of the laser cavity 108.
(49) In one or more embodiments, a laser unit 134 of the multi-function gunsight 100 is disposed inside the laser cavity 108. The laser unit 134 may generate a laser beam extending in a forward direction along a laser beam axis LA. In one or more embodiments, the laser beam axis LA is generally parallel to the gun bore axis BA of the firearm 20. In one or more embodiments, the laser unit 134 is disposed forward of the sight arm pivot axis PA.
(50) In one or more embodiments, a elevation adjustment mechanism 142E of the multi-function gunsight 100 is positioned opposite the battery compartment 178 and the battery housing 176. The elevation adjustment mechanism may selective rotate the laser unit 134 about a elevation axis X. In one or more embodiments, the elevation axis X extends in portward and starboard directions. In one or more embodiments, the elevation adjustment mechanism 142E is disposed forward of the sight arm pivot axis PA. In one or more embodiments, a windage adjustment mechanism 142W of the multi-function gunsight 100 is positioned opposite the battery compartment 178 and the battery housing 176. The windage adjustment mechanism may selective rotate the laser unit 134 about a windage axis Y. In one or more embodiments, the windage axis Y extends in upward and downward directions. In one or more embodiments, the windage adjustment mechanism 142W is disposed forward of the sight arm pivot axis PA.
(51) In one or more embodiments, the sight arm 106 of the multi-function gunsight 100 comprises a sighting element 136 extending a along a sighting element axis SA. In one or more embodiments, the sighting element axis SA extends in the forward and rearward directions when the sight arm 106 is in the reclined position and the sighting element axis SA extends in the upward and downward directions when the sight arm 106 is in the deployed position. In one or more embodiments, the sighting element 136 is disposed rearward of the sight arm pivot axis PA when the sight arm 106 is in the reclined position and the sighting element 136 is disposed upward of the sight arm pivot axis PA when the sight arm 106 is in the deployed position. In one or more embodiments, the sighting element 136 is generally aligned with the sight arm pivot axis PA along an axis extending in forward and rearward directions when the sight arm 106 is in the deployed position. In one or more embodiments, the sighting element axis SA, the laser beam axis LA, and the gun bore axis BA are all generally coplanar when the sight arm 106 is in the reclined position. When the sight arm 106 is in the deployed position, the user may aim the firearm 20 with reference to a sight line SL extending through the sighting element 136. In one or more embodiments, the sight line SL, the laser beam axis LA, and the gun bore axis BA are all generally coplanar when the sight arm 106 is in the deployed position. In one or more embodiments, the sight line SL, the laser beam axis LA, and the gun bore axis BA are all generally parallel to each other when the sight arm 106 is in the deployed position. In one or more embodiments, the sighting element axis SA, the laser beam axis LA, and the gun bore axis BA are all generally parallel to each other when the sight arm 106 is in the reclined position.
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(56) The following United States patents are hereby incorporated by reference herein: U.S. Pat. Nos. 5,533,292, 5,918,374, 5,063,677, 8,037,634, 4,686,770, 8,015,744, 5,784,823, 5,584,569, 7,926,218, 7,472,830, 5,307,253, 5,193,099, 5,993,026, 5,343,376, 9,297,614, 5,838,639, 5,803,582, 5,791,766, and 6,066,052. The above references to U.S. patents in all sections of this application are herein incorporated by references in their entirety for all purposes. Components illustrated in such patents may be utilized with embodiments herein. Incorporation by reference is discussed, for example, in MPEP section 2163.07(B).
(57) The above references in all sections of this application are herein incorporated by references in their entirety for all purposes. All of the features disclosed in this specification (including the references incorporated by reference, including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive.
(58) Each feature disclosed in this specification (including references incorporated by reference, any accompanying claims, abstract and drawings) may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
(59) The invention is not restricted to the details of the foregoing embodiment(s). The invention extends to any novel one, or any novel combination, of the features disclosed in this specification (including any incorporated by reference references, any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed The above references in all sections of this application are herein incorporated by references in their entirety for all purposes.
(60) Although specific examples have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that any arrangement calculated to achieve the same purpose could be substituted for the specific examples shown. This application is intended to cover adaptations or variations of the present subject matter. Therefore, it is intended that the invention be defined by the attached claims and their legal equivalents, as well as the following illustrative aspects. The above described aspects embodiments of the invention are merely descriptive of its principles and are not to be considered limiting. Further modifications of the invention herein disclosed will occur to those skilled in the respective arts and all such modifications are deemed to be within the scope of the invention.