Adjustable buffer
09995553 ยท 2018-06-12
Inventors
Cpc classification
F41C23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A3/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An adjustable buffer optionally including at least some of a buffer element having an elongate buffer element body portion, wherein the buffer element body portion includes an externally threaded portion; a collar nut having a collar nut aperture formed therethrough, wherein at least a portion of the collar nut aperture is internally threaded so as to interact with the externally threaded portion of the buffer element body portion, and wherein one or more collar nut recesses are formed in the collar nut; and a locking collar having a locking collar aperture formed therethrough, wherein the locking collar aperture is formed so as to accept at least a portion of the buffer element body portion therethrough, wherein the locking collar includes one or more locking collar protrusions, and wherein the one or more locking collar protrusions are mateable with the one or more collar nut recesses.
Claims
1. An adjustable buffer, comprising: a buffer element, wherein said buffer element comprises an elongate buffer element body portion extending from a buffer element head portion, wherein said buffer element body portion includes an externally threaded portion; a collar nut, wherein a collar nut aperture is formed through said collar nut, wherein at least a portion of said collar nut aperture is internally threaded, wherein said internally threaded portion is threaded so as to interact with said externally threaded portion of said buffer element body portion, and wherein one or more collar nut recesses are formed in said collar nut; and a locking collar, wherein a locking collar aperture is formed through said locking collar, wherein said locking collar aperture is formed so as to accept at least a portion of said buffer element body portion therethrough, wherein said locking collar includes one or more locking collar protrusions, and wherein said one or more locking collar protrusions are mateable with said one or more collar nut recesses.
2. The adjustable buffer of claim 1, wherein said buffer element comprises an internal buffer element cavity defined by an open end, one or more side walls, and a bottom wall.
3. The adjustable buffer of claim 2, wherein a weight element is positioned within said internal buffer element cavity.
4. The adjustable buffer of claim 3, wherein said weight element comprises a solid portion of material, a powdered or granulated material, or a liquid.
5. The adjustable buffer of claim 1, wherein an alignment groove is formed in at least a portion of said buffer element body portion, wherein an alignment protrusion extends from a portion of said locking collar, and wherein interaction of said alignment groove and said alignment protrusion maintains said locking collar in a desired rotational position relative to said body element.
6. The adjustable buffer of claim 1, wherein said alignment groove is formed along a longitudinal axis of said buffer element body portion.
7. The adjustable buffer of claim 1, wherein said buffer element head portion has a greater outer diameter than an outer diameter of said buffer element body portion.
8. The adjustable buffer of claim 1, further comprising an end cap, wherein at least a portion of said end cap extends from said elongate buffer element body portion.
9. The adjustable buffer of claim 1, wherein a position of said collar nut along said buffer element body portion can be adjusted by rotation of said collar nut relative to said buffer element body portion, via interaction of said externally threaded portion of said buffer element body portion and said internally threaded portion of said collar nut.
10. The adjustable buffer of claim 1, wherein said locking collar aperture is sized so as to be repeatably slidable along at least a portion of said buffer element body portion.
11. The adjustable buffer of claim 1, wherein when said locking collar is abutted against said collar nut, interaction of mating locking collar recesses and locking collar protrusions maintain said locking collar in a rotational position relative to said collar nut.
12. An adjustable buffer, comprising: a buffer element, wherein said buffer element comprises an elongate buffer element body portion extending from a buffer element head portion, wherein said buffer element body portion includes an externally threaded portion, and wherein said buffer element comprises an internal buffer element cavity; a collar nut, wherein a collar nut aperture is formed through said collar nut, wherein at least a portion of said collar nut aperture is internally threaded, wherein said internally threaded portion is threaded so as to interact with said externally threaded portion of said buffer element body portion, and wherein a position of said collar nut along said buffer element body portion can be adjusted by rotation of said collar nut relative to said buffer element body portion; and a locking collar, wherein a locking collar aperture is formed through said locking collar, wherein said locking collar aperture is formed so as to accept at least a portion of said buffer element body portion therethrough.
13. The adjustable buffer of claim 12, wherein said internal buffer element cavity is defined by an open end, one or more side walls, and a bottom wall.
14. The adjustable buffer of claim 12, wherein an alignment groove is formed in at least a portion of said buffer element body portion, wherein an alignment protrusion extends from a portion of said locking collar, and wherein interaction of said alignment groove and said alignment protrusion maintains said locking collar in a desired rotational position relative to said body element.
15. The adjustable buffer of claim 12, wherein one or more collar nut recesses are formed in said collar nut, wherein one or more locking collar protrusions are formed in said locking collar, wherein said one or more locking collar protrusions are mateable with said one or more collar nut recesses, and wherein when said locking collar is abutted against said collar nut, interaction of mating locking collar recesses and locking collar protrusions maintain said locking collar in a rotational position relative to said collar nut.
16. The adjustable buffer of claim 12, wherein one or more collar nut recesses are formed in said locking collar, wherein one or more locking collar protrusions are formed in said collar nut, and wherein said one or more locking collar protrusions are mateable with said one or more collar nut recesses, and wherein when said locking collar is abutted against said collar nut, interaction of mating locking collar recesses and locking collar protrusions maintain said locking collar in a rotational position relative to said collar nut.
17. The adjustable buffer of claim 12, wherein saki position of said collar nut along said buffer element body portion can be adjusted by rotation of said collar nut relative to said buffer element body portion, via interaction of said externally threaded portion of said buffer element body portion and said internally threaded portion of said collar nut.
18. The adjustable buffer of claim 12, wherein said locking collar aperture is sized so as to be repeatably slidable along at least a portion of said buffer element body portion.
19. An adjustable buffer, comprising: a buffer element, wherein said buffer element comprises an elongate buffer element body portion extending from a buffer element head portion, wherein said buffer element body portion includes an externally threaded portion; a collar nut, wherein a collar nut aperture is formed through said collar nut, wherein at least a portion of said collar nut aperture is internally threaded, wherein said internally threaded portion is threaded so as to interact with said externally threaded portion of said buffer element body portion, and wherein a position of said collar nut along said buffer element body portion can be adjusted by rotation of said collar nut relative to said buffer element body portion; and a locking collar, wherein said locking collar includes one or more locking collar protrusions mateable with one or more collar nut recesses.
20. The adjustable buffer of claim 19, further comprising a locking collar aperture formed through said locking collar, wherein said locking collar aperture is formed so as to accept at least a portion of said buffer element body portion therethrough.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) As required, detailed exemplary embodiments of the present disclosure are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the systems, methods, and/or apparatuses that may be embodied in various and alternative forms, within the scope of the present disclosure. The figures are not necessarily to scale; some features may be exaggerated or minimized to illustrate details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to employ the present disclosure.
(2) The exemplary embodiments of the presently disclosed systems, methods, and/or apparatuses will be described in detail, with reference to the following figures, wherein like reference numerals refer to like parts throughout the several views, and wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(42) For simplicity and clarification, the design factors and operating principles of the adjustable buffer according to the presently disclosed systems, methods, and/or apparatuses are explained with reference to various exemplary embodiments of an adjustable buffer according to the presently disclosed systems, methods, and/or apparatuses. The basic explanation of the design factors and operating principles of the adjustable buffer is applicable for the understanding, design, and operation of the adjustable buffer of the presently disclosed systems, methods, and/or apparatuses. It should be appreciated that the adjustable buffer can be adapted to many applications where an adjustable buffer can be used.
(43) As used herein, the word may is meant to convey a permissive sense (i.e., meaning having the potential to), rather than a mandatory sense (i.e., meaning must). Unless stated otherwise, terms such as first and second are used to arbitrarily distinguish between the elements such terms describe. Thus, these terms are not necessarily intended to indicate temporal or other prioritization of such elements.
(44) The term coupled, as used herein, is defined as connected, although not necessarily directly, and not necessarily mechanically. The terms a and an are defined as one or more unless stated otherwise.
(45) Throughout this application, the terms comprise (and any form of comprise, such as comprises and comprising), have (and any form of have, such as has and having), include, (and any form of include, such as includes and including) and contain (and any form of contain, such as contains and containing) are used as open-ended linking verbs. It will be understood that these terms are meant to imply the inclusion of a stated element, integer, step, or group of elements, integers, or steps, but not the exclusion of any other element, integer, step, or group of elements, integers, or steps. As a result, a system, method, or apparatus that comprises, has, includes, or contains one or more elements possesses those one or more elements but is not limited to possessing only those one or more elements. Similarly, a method or process that comprises, has, includes or contains one or more operations possesses those one or more operations but is not limited to possessing only those one or more operations.
(46) It should also be appreciated that the terms adjustable buffer, collar nut, locking collar, and firearm are used for basic explanation and understanding of the operation of the presently disclosed systems, methods, and/or apparatuses. Therefore, the terms adjustable buffer, collar nut, locking collar, and firearm are not to be construed as limiting the systems, methods, and/or apparatuses of the present disclosure. Thus, for example, the term firearm is to be understood to broadly include any firearm or other similar handheld or shoulder mounted device or tool.
(47) For simplicity and clarification, the adjustable buffer of the present disclosure will be described as being used in conjunction with a firearm, such as an AR-15 or M4 style rifle or carbine. However, it should be appreciated that these are merely exemplary embodiments of the adjustable buffer and are not to be construed as limiting the presently disclosed systems, methods, and/or apparatuses. Thus, the adjustable buffer of the present disclosure may be utilized in conjunction with any firearm or rifle, such as, for example, an AR-10 style rifle, air rifle, paintball marker, Airsoft rifle, replica rifle, or any other tool, device, or object.
(48) Turning now to the drawing FIGS.,
(49) As illustrated most clearly in
(50) In various exemplary embodiments, the buffer element 100 includes a buffer element cavity 127 defined by one or more interior side walls 128 and an interior bottom wall 129. The buffer element cavity 127 extends from the interior bottom wall 129, along the one or more interior side walls 128, to an open end of the buffer element cavity 127.
(51) In various exemplary, nonlimiting embodiments, the buffer element 100 is formed of a substantially solid portion of material and only includes a buffer element cavity 127 of a sufficient size to accept at least a portion of the end cap extension portion 420 of the end cap 400. Alternatively, the buffer element cavity 127 may not be included and the end cap 400 is not a separate element, but is formed as an integral part of the buffer element 100.
(52) The buffer element body portion 120 extends from the second end 102 of the buffer element 100 to a buffer element shoulder 115. In various exemplary embodiments, the buffer element body portion 120 extends parallel to the longitudinal axis A.sub.L, of the buffer element 100 and the buffer element shoulder 115 extends perpendicular to the longitudinal axis A.sub.L, of the buffer element 100. Alternatively, the buffer element shoulder 115 may extend at an angle that is equal to, greater than, or less than 90 relative to the longitudinal axis A.sub.L, of the buffer element 100.
(53) A bulbous portion or buffer element head portion 110 extends from the buffer element shoulder 115 to the front end or front surface of the buffer element 100. The buffer element head portion 110 has a greater outer diameter than an outer diameter of the buffer element body portion 120.
(54) In certain exemplary embodiments, one or more recesses or notches 112 are formed around portions of the buffer element head portion 110. If included, the recesses or notches 112 provide debris channels, such that any matter or debris that comes between the buffer element head portion 110 and the buffer tube 20 can be diverted into the recesses or notches 112, so as not to hinder the movement of the buffer element 100 in relation to the buffer tube 20.
(55) A threaded portion 126 extends along at least a portion of the buffer element body portion 120 between the buffer element shoulder 115 and the second end 102 of the buffer element body portion 120.
(56) An alignment groove 124 may optionally be formed in at least a portion of the buffer element body portion 120, extending from the second end 102 toward (and optionally to) the buffer element shoulder 115.
(57) In various exemplary embodiments, wherein the end cap 400 is included, a buffer element retaining pin aperture 122 extends at least partially through the buffer element body portion 120, proximate the second end 102 of the buffer element 100 and is formed so as to accept at least a portion of a retaining pin 132 therethrough.
(58) In various exemplary embodiments, the buffer element 100 is substantially rigid and is formed of stainless steel. Alternate materials of construction of the buffer element 100 may include one or more of the following: steel, aluminum, titanium, and/or other metals, as well as various alloys and composites thereof. Thus, it should be understood that the material or materials used to form the buffer element 100 is a design choice based on the desired appearance and/or functionality of the buffer element 100.
(59) If included, the weight element 140 is sized so as to be fitted within the buffer element cavity 127 of the buffer element 100. The actual weight of the weight element 140 can vary, depending upon the desired functionality of the weight element 140 and the overall functional weight of the buffer element 100. In various exemplary embodiments, the weight element 140 may comprise a portion of stainless steel or tungsten. Alternatively, the weight element 140 may comprise a solid portion of material, a powdered or granulated material (such as, for example, loose sand, lead, steel, or other metallic or nonmetallic shot), or a liquid (such as, for example, Mercury).
(60) As illustrated most clearly in
(61) The outer size and shape of the end cap extension portion 420 of the end cap 400 is such that at least a portion of the end cap extension portion 420 of the end cap 400 can be fitted through the open end of the buffer element cavity 127 of the buffer element cavity 127 and positioned within at least a portion of the buffer element cavity 127.
(62) An end cap head portion 410 extends rearward from the end cap shoulder 415 to the second end of the end cap 400. In various exemplary embodiments, the end cap head portion 410 has an overall dome or a tapered shape. Alternatively, the end cap head portion 410 may comprise a generally cylindrical overall shape.
(63) An end cap retaining aperture 422 extends at least partially through the end cap extension portion 420 of the end cap 400 and is formed so as to accept at least a portion of a retaining pin 132 therethrough.
(64) In various exemplary embodiments, the end cap 400 is substantially rigid and is formed of urethane. Alternatively, the end cap 400 may be substantially deformable or flexible and may be formed of rubber, silicone, plastic, self-lubricating plastic, or a polymeric material. Thus, it should be understood that the material or materials used to form the end cap 400 is a design choice based on the desired appearance and/or functionality of the end cap 400.
(65) As illustrated most clearly in
(66) At least a portion of the collar nut aperture 220 is internally threaded. The internally threaded portion 226 includes threads that correspond to the externally threaded portion 126 of the buffer element body portion 120. As illustrated most clearly in
(67) Thus, by rotating the collar nut 200 relative to the buffer element 100, the position of the collar nut 200 along the buffer element body portion 120 can be adjusted by interaction of the externally threaded portion 126 of the buffer element body portion 120 and the internally threaded portion of the collar nut 200.
(68) One or more locking collar recesses 215 are formed in the collar nut 200. The number, shape, and placement of each locking collar 300 recess 215 is a design choice.
(69) In certain exemplary embodiments, one or more recesses or notches 212 are formed around portions of the collar nut 200. If included, the recesses or notches 212 provide debris channels, such that any matter or debris that comes between the collar nut 200 and the buffer tube 20 can be diverted into the recesses or notches 212, so as not to hinder the movement of the collar nut 200 (or buffer element 100) in relation to the buffer tube 20.
(70) In various exemplary embodiments, the collar nut 200 is substantially rigid and is formed of aluminum. Alternate materials of construction of the collar nut 200 may include one or more of the following: steel, stainless steel, titanium, and/or other metals, as well as various alloys and composites thereof. Thus, it should be understood that the material or materials used to form the collar nut 200 is a design choice based on the desired appearance and/or functionality of the collar nut 200.
(71) As illustrated most clearly in
(72) In various exemplary embodiments, an alignment protrusion 324 extends into at least a portion of the locking collar aperture 320. If included, the alignment protrusion 324 is formed so as to be aligned with and slidable along the alignment groove 124 of the buffer element 100, when the locking collar 300 is positioned about the buffer element body portion 120 of the buffer element 100. Interaction of the alignment groove 124 and the alignment protrusion 324 maintains the locking collar 300 in a desired rotational position relative to the body element.
(73) One or more locking collar protrusions 315 extend from the locking collar 300. The number, shape, and placement of each color protrusion is a design choice. One or more of the locking collar protrusions 315 is formed so as to be at least partially received within a corresponding locking collar 300 recess 215. Thus, when the first end 301 of the locking collar 300 is abutted against the second end 202 of the collar nut 200, the interaction of mating locking collar recesses 215 and locking collar protrusions 315 maintain the locking collar 300 in a desired rotational position relative to the collar nut 200.
(74) In relation to various exemplary embodiments, it is shown and described that the locking collar protrusions 315 are formed on the locking collar 300 and the locking collar recesses 215 are formed on the collar nut 200, this is optional. However, as illustrated most clearly in
(75) In certain exemplary embodiments, one or more recesses or notches 312 are formed around portions of the locking collar 300. If included, the recesses or notches 312 provide debris channels, such that any matter or debris that comes between the locking collar 300 and the buffer tube 20 can be diverted into the recesses or notches 312, so as not to hinder the movement of the locking collar 300 (or buffer element 100) in relation to the buffer tube 20.
(76) In various exemplary embodiments, the locking collar 300 is substantially rigid and is formed of aluminum. Alternate materials of construction of the locking collar 300 may include one or more of the following: steel, stainless steel, titanium, and/or other metals, as well as various alloys and composites thereof. Thus, it should be understood that the material or materials used to form the locking collar 300 is a design choice based on the desired appearance and/or functionality of the locking collar 300.
(77) As illustrated most clearly in
(78) If included, the weight element 140 is inserted within the buffer element cavity 127.
(79) If the end cap 400 is included, at least a portion of the end cap extension portion 420 of the end cap 400 is fitted within the internal buffer cavity, such that the end cap retaining aperture 422 is aligned with the buffer element retaining pin aperture 122. In this configuration, the end cap shoulder 415 optionally contacts the second end 102 of the buffer element 100.
(80) Once the end cap 400 is appropriately positioned proximate the second end 102 of the buffer element 100, the retaining pin 132 is positioned through the end cap retaining aperture 422, the buffer element retaining pin aperture 122.
(81) The collar nut 200 is threadedly fitted about the buffer element body portion 120, via interaction of the internally threaded portion 226 of the collar nut 200 and the externally threaded portion 126 of the buffer element body portion 120.
(82) The locking collar 300 is slidably fitted about the buffer element body portion 120, via interaction of the buffer element body portion 120 and the central locking collar aperture 320 (and optionally interaction of the alignment groove 124 of the buffer element 100 and the alignment protrusion 324 of the locking collar 300). The locking collar 300 is slidably fitted about the buffer element body portion 120 such that the second end of the locking collar 300 is abutted against the first end 201 of the collar nut 200 and the locking collar protrusions 315 are appropriately aligned with an at least partially fitted within the corresponding locking collar recesses 215.
(83) Once the relevant components are attached or coupled to the buffer element 100, at least a portion of the buffer element body portion 120 of the assembled adjustable buffer is positionable within the buffer spring 30 such that the first end of the buffer spring 30 engages or contacts the second end of the locking collar body 310.
(84) During a firing cycle, as illustrated most clearly in
(85) As illustrated most clearly in
(86) As illustrated in
(87) While the presently disclosed systems, methods, and/or apparatuses have been described in conjunction with the exemplary embodiments outlined above, the foregoing description of exemplary embodiments of the present disclosure, as set forth above, are intended to be illustrative, not limiting and the fundamental systems, methods, and/or apparatuses should not be considered to be necessarily so constrained. It is evident that the systems, methods, and/or apparatuses are not limited to the particular variation or variations set forth and many alternatives, adaptations modifications, and/or variations will be apparent to those skilled in the art.
(88) Furthermore, where a range of values is provided, it is understood that every intervening value, between the upper and lower limit of that range and any other stated or intervening value in that stated range is encompassed within the presently disclosed systems, methods, and/or apparatuses. The upper and lower limits of these smaller ranges may independently be included in the smaller ranges and is also encompassed within the present disclosure, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the present disclosure.
(89) It is to be understood that the phraseology of terminology employed herein is for the purpose of description and not of limitation. Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the presently disclosed systems, methods, and/or apparatuses belong.
(90) In addition, it is contemplated that any optional feature of the inventive variations described herein may be set forth and claimed independently, or in combination with any one or more of the features described herein.
(91) Accordingly, the foregoing description of exemplary embodiments will reveal the general nature of the presently disclosed systems, methods, and/or apparatuses, such that others may, by applying current knowledge, change, vary, modify, and/or adapt these exemplary, non-limiting embodiments for various applications without departing from the spirit and scope of the present disclosure and elements or methods similar or equivalent to those described herein can be used in practicing the present disclosure. Any and all such changes, variations, modifications, and/or adaptations should and are intended to be comprehended within the meaning and range of equivalents of the disclosed exemplary embodiments and may be substituted without departing from the true spirit and scope of the presently disclosed systems, methods, and/or apparatuses.
(92) Also, it is noted that as used herein and in the appended claims, the singular forms a, and, said, and the include plural referents unless the context clearly dictates otherwise. Conversely, it is contemplated that the claims may be so-drafted to require singular elements or exclude any optional element indicated to be so here in the text or drawings. This statement is intended to serve as antecedent basis for use of such exclusive terminology as solely, only, and the like in connection with the recitation of claim elements or the use of a negative claim limitation(s).