EJECTOR FOR FIREARM
20230213296 · 2023-07-06
Inventors
Cpc classification
F41A3/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A3/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An ejector mechanism for a firearm includes an ejector disposed at a forward face of a bolt. The ejector includes a hole designed to provide clearance for the firing pin to pass at least partially through the ejector. The hole may include a counterbore on a rear side of the ejector.
Claims
1. An ejector mechanism for a firearm comprising: an ejector disposed at a forward face of a bolt, wherein the ejector comprises a hole designed to provide clearance for a firing pin to pass at least partially through the ejector.
2. The ejector mechanism of claim 1, wherein the hole comprises a counterbore on a rear side of the ejector.
3. The ejector mechanism of claim 1, wherein the ejector comprises a rear protrusion that extends into a corresponding hole in the bolt.
4. The ejector mechanism of claim 3, wherein the corresponding hole in the bolt is disposed at a location on the forward face distal from the firing pin.
5. The ejector mechanism of claim 3, wherein the corresponding hole in the bolt is disposed at bottom of the forward face.
6. The ejector mechanism of claim 3, further comprising a spring disposed within the corresponding hole in the bolt.
7. The ejector mechanism of claim 1, wherein the ejector comprises a flat surface such that the flat surface is defined by an offset from an extractor cavity of the bolt.
8. The ejector mechanism of claim 1, wherein the ejector comprises a symmetric shape with at least two flat surfaces such that a first flat surface is compatible with an extractor on a right side of the bolt and a second flat surface is compatible with an extractor on a left side of the bolt.
9. The ejector mechanism of claim 1, wherein the ejector comprises a forward interface comprising (i) a contact surface that protrudes forward and (ii) a secondary surface that is offset rearward from the contact surface.
10. The ejector mechanism of claim 1, wherein the ejector comprises a retaining hole configured to interface with a retaining pin.
11. An ejector mechanism for a firearm comprising: an ejector disposed at a forward face of a bolt, wherein at least a portion of the ejector is disposed at a center of the forward face of the bolt.
12. The ejector mechanism of claim 11, wherein the ejector comprises a hole designed to provide clearance for a firing pin to pass at least partially through the ejector.
13. The ejector mechanism of claim 12, wherein the hole comprises a counterbore on a rear side of the ejector.
14. The ejector mechanism of claim 11, wherein the ejector comprises a rear protrusion that extends into a corresponding hole in the bolt.
15. The ejector mechanism of claim 14, wherein the corresponding hole in the bolt is disposed at a location on the forward face distal from the firing pin.
16. The ejector mechanism of claim 14, wherein the corresponding hole in the bolt is disposed at bottom of the forward face.
17. The ejector mechanism of claim 11, wherein the ejector comprises a flat surface such that the flat surface is defined by an offset from an extractor cavity of the bolt.
18. The ejector mechanism of claim 11, wherein the ejector comprises a symmetric shape with at least two flat surfaces such that a first flat surface is compatible with an extractor on a right side of the bolt and a second flat surface is compatible with an extractor on a left side of the bolt.
19. The ejector mechanism of claim 11, wherein the ejector comprises a forward interface comprising (i) a contact surface that protrudes forward and (ii) a secondary surface that is offset rearward from the contact surface.
20. The ejector mechanism of claim 11, wherein the ejector comprises a retaining hole configured to interface with a retaining pin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0024] The subject matter of embodiments of the present invention is described here with specificity to meet statutory requirements, but this description is not necessarily intended to limit the scope of the claims. The claimed subject matter may be embodied in other ways, may include different elements or steps, and may be used in conjunction with other existing or future technologies. This description should not be interpreted as implying any particular order or arrangement among or between various steps or elements except when the order of individual steps or arrangement of elements is explicitly described.
[0025] Although the illustrated embodiments in
[0026] In some cases, a firearm 1 includes a firearm operating system 3000, an upper receiver 30, and a barrel 50 (see
[0027] According to certain embodiments of the present invention, as shown in
[0028] As shown in
[0029] The ejector mechanism 100 may include an ejector 101, a spring 120, and a retaining pin 3117 (see
[0030] In some embodiments, the ejector 101 interfaces with the ejector cavity 3101 of the bolt 3020. As shown in
[0031] The ejector 101 may be designed to include a portion that extends away from the location of the hole 3111 on the forward face 3103. For example,
[0032] As shown in
[0033] Accordingly, the ejector 101 may be designed such that the rear protrusion 105 extends rearward at the 6 o'clock position when viewing the forward face 3103 of the bolt 3020. To install the ejector 101 into the bolt 3020, a spring 120 is inserted into hole 3111 such that the opposite end of the spring 120 will bottom out in cavity 106 (or against rear surface 109), which will compress when the ejector 101 is pushed rearward. After inserting the ejector 101 into the ejector cavity 3101, the ejector 101 is adjusted such that the hole 107 is aligned with a portion of hole 3115 (between forward end 3115.1 and rear end 3115.2) of the bolt 3020 and a retaining pin 3117 is then inserted into hole 3115 and hole 107. The retaining pin 3117 may be a roll pin, a solid pin, or any other appropriate configuration used to retain the ejector 101. The ejector spring 120 is compressed within hole 3111 when the ejector 101 is pushed rearward. For example, when a rim of a cartridge is retained by extractor 201, the rear surface of the cartridge presses the ejector 101 rearward such that the forward interface 102 is approximately flush with a rear wall or floor of the forward cavity 3028. In some embodiments, when the forward interface 102 is approximately flush with the rear wall of the forward cavity 3028, the rear end 3115.2 of hole 3115 is adjacent to or in contact with retaining pin 3117. When the bolt 3020 moves rearward due to either (i) manual operation/movement (e.g., operating the charging handle) or (ii) cycling of the firearm 1 after firing a cartridge, the spring in hole 3111 pushes the ejector 101 forward such that once the forward face 3103 reaches the ejection port 31 of the upper receiver 30, the ejector 101 pushes the rear surface of a cartridge (or an empty shell of a cartridge if a round was fired) causing the cartridge/shell to pivot about the extractor 201 and exit the firearm 1. The bolt 3020 may be configured with a smaller hole that extends through hole 3111 to the rear face 3107 of the bolt 3020 which allows the operator to push the ejector spring out of the hole 3111 from the rear.
[0034] The shape of the ejector 101 and the corresponding cavity 3101 of the bolt 3020 may be based on creating an offset from the location of the firing pin hole (central hole 3027) through the bolt. In some embodiments, the cavity 3101 includes a flat wall and the ejector 101 includes a flat surface 104 designed to create a minimum offset from the extractor cavity 3102 (see
[0035] In some embodiments, the size and/or shape of the ejector 101 near the firing pin hole 103 is designed to increase safety. For example, the portion of the ejector 101 in this area may be designed to be larger (or in some cases significantly larger) than the primer for the appropriate cartridge.
[0036] As illustrated in
[0037] As shown in
[0038] The extractor 201 may be located within the extractor cavity 3102 of the bolt 3020 such that the extractor 201 can move based on the geometry of the cavity 3102 and an interface with an extractor plunger 203 inserted into extractor spring cavity 3122. As shown in
[0039] In some embodiments, rotation of the extractor 201 depends on an interface with the extractor plunger 203. The extractor plunger 203 may include a rear portion 203.4, a front portion 203.3, a rear surface 203.1, and a surface 203.2. In some cases, the rear portion 203.4 may be cylindrical and the front portion 203.3 may include a blade shape having a flat portion and/or a rectangular cross section. A spring 220 may be inserted into hole 3122. The extractor plunger 203 is then inserted into hole 3122 of the bolt 3020 and the spring 220 is compressed against the rear surface 203.1 such that the surface 203.2 is approximately aligned and/or continuous with profile surface 3105 of the bolt 3020. In some embodiments, the front portion 203.3 presses against the rear member 206 of the extractor 201 to bias the extractor 201 toward engagement with a cartridge. The bolt 3020 may be configured with a smaller hole that extends through hole 3122 to the rear face 3107 of the bolt 3020 which allows the operator to push the extractor spring 220 out of the hole 3122 from the rear.
[0040] When the bolt 3020 moves forward over the top of a magazine, the lower portion 3108 pushes the upper-most cartridge out of the magazine and toward the barrel extension 3060 and the chamber of the firearm 1. In some embodiments, the bolt 3020 may include a gap 3108.1 in the lower portion 3108, which allows excess gas and carbon to escape from the forward cavity 3028.
[0041] When the cartridge is in the chamber in a firing position, the cartridge is approximately aligned with a center of the forward face 3103 of the bolt 3020 such that the central hole 3027 of the bolt 3020 and/or the hole 103 of the ejector 101 are aligned with the primer of the cartridge (to align the forward end 3081 of the firing pin 3080 with the cartridge). When the cartridge is in the firing position, forward motion of the firing pin 3080 (e.g., caused by a hammer interacting with the rear end 3083 of the firing pin 3080) causes the cartridge to discharge.
[0042] In some embodiments, as shown in
[0043] The components of any of the firearms 1 described herein may be formed of materials including, but not limited to, thermoplastic, carbon composite, plastic, nylon, polyetherimide, steel, aluminum, stainless steel, high strength aluminum alloy, other plastic or polymer materials, other metallic materials, other composite materials, or other similar materials. Moreover, the components of the firearms may be attached to one another via suitable fasteners, which include, but are not limited to, screws, bolts, rivets, welds, co-molding, injection molding, or other mechanical or chemical fasteners.
[0044] Different arrangements of the components depicted in the drawings or described above, as well as components and steps not shown or described are possible. Similarly, some features and sub-combinations are useful and may be employed without reference to other features and sub-combinations. Embodiments of the invention have been described for illustrative and not restrictive purposes, and alternative embodiments will become apparent to readers of this patent. Accordingly, the present invention is not limited to the embodiments described above or depicted in the drawings, and various embodiments and modifications may be made without departing from the scope of the claims below.