1. Field of the Invention
The subject invention relates to firearms and more specifically to mechanisms that minimize fouling of firing components.
2. Description of the Prior Art
Firearms typically include a receiver that houses several working components of the firearm, including firing components, with a barrel extending from the receiver. There are various classes of firearms that operate in different manners. One class of firearm utilizes a bolt carrier disposed in the receiver that is moveable between a firing position, from which a live round of ammunition can be fired, and a retracted position, from which a spent casing is ejected. The movement of the bolt carrier and ejection of the casing can be accomplished with a direct gas impingement system. Examples of direct gas impingement type firearms include the M16, the M4®, such as the M4® carbine, and the AR-15®, such as the AR-15® Platform.
Firearms having the direct gas impingement system typically include an ejection port defined by the receiver. Direct gas impingement systems route exhaust gases back through the firearm to move the bolt carrier toward a retracted position. In particular, after firing the firearm, the direct gas impingement system routes exhaust gases, including any associated debris, from the barrel, back through a return tube to the bolt carrier, and out the ejection port of the receiver.
Some firearms include an ejection port door for covering the ejection port to prevent debris from entering the receiver and fouling the firing components. The ejection port door automatically opens in response to firing the firearm and/or charging the firearm, i.e. loading a live round into a chamber of the barrel. However, the ejection port door must be manually moved to the closed position by a user to prevent debris from entering the ejection port and thus entering the receiver. Accordingly, during combat it is unlikely the user will consistently close the ejection port door after firing or charging the firearm, thereby allowing debris to foul the firing components and potentially cause the firearm to jam or fail.
The prior art has attempted to solve the problem of debris entering the ejection port. For example, U.S. Pat. No. 3,619,926 to Alday discloses a firearm having a receiver defining an ejection port window with a bolt assembly movably disposed within the receiver. The firearm further includes a cover plate coupled to the bolt assembly with the cover plate movable independently to the bolt assembly. Having the cover plate and the bolt assembly moving independently of each other in such a manner increases frictional wear between the components and thus increases the possibility of the cover plate and/or the bolt assembly failing. In addition, the system disclosed in Alday is relatively complicated and has additional moving parts that are prone to failure.
Therefore, there remains a need to develop a firearm having a mechanism that automatically blocks an ejection port when in a firing position and minimizes, if not eliminates, fouling of the firing components.
The present invention provides for a firearm having a receiver defining a bore with the receiver extending along a longitudinal axis. The receiver defines an ejection port transverse to the longitudinal axis with the bore defining an inner surface. A bolt carrier is disposed in the bore and moveable relative to the receiver along the longitudinal axis between a firing position and a rearward position with the bolt carrier defining at least one exhaust port transverse to the longitudinal axis. A shield defines an aperture aligned with the exhaust port for exhausting gases therethrough. The shield is longitudinally affixed to the bolt carrier and moves with the bolt carrier as a unit between the firing and rearward positions along the longitudinal axis with the shield blocking the ejection port when in the firing position and the shield sliding along the inner surface away from the ejection port when moving to the rearward position in conjunction with the bolt carrier.
Accordingly, the present invention defines a mechanism, in the form of a shield or a shield apparatus, that minimizes, if not eliminates, fouling of the firing components, i.e. the action. In particular, the shield is longitudinally affixed to the bolt carrier to provide automatic blocking of an ejection port anytime the bolt carrier is in a firing position without having to manually close a door for preventing debris from entering the ejection port and fouling the firing components.
Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings.
Referring to the Figures, wherein like numerals indicate like or corresponding parts throughout the several views, a firearm 20 is generally shown in
The firearm 20 utilizes a direct gas impingement system to eject a spent casing after firing the firearm 20. Examples of such types of firearms 20 include the M16, the M4®, such as the M4® carbine, and the AR-15®, such as the AR-15® Platform. The firearm 20 described herein is designed to permit easy retro-fitting of the certain components to a variety of currently and/or previously manufactured firearm designs having direct gas impingement systems.
Referring also to
A door 36 is pivotally coupled to the receiver 24 adjacent the ejection port 28. The door 36 is movable between a closed position covering the ejection port 28, a released position allowing the door 36 to move away from the ejection port 28 and an open position completely spaced from the ejection port 28. The closed position is shown in
A magazine 38, also referred to as a clip, is detachably mounted to the upper receiver portion 34 and can be loaded with a plurality of live rounds. The firearm 20 further includes a trigger assembly supported by the receiver 24. The trigger assembly includes a trigger 40 and a hammer 42. The trigger 40 is pulled to move the hammer 42, which, as discussed further below, ultimately results in the firing of the firearm 20.
The firearm 20 includes a hand guard 44 that extends from the receiver 24 circumferentially about a barrel 46. A buttstock 48 extends rearwardly from the receiver 24 for supporting the firearm 20 against a shoulder of the user. A hand grip 50 extends downwardly along the upper receiver portion 32 for grasping by the user.
As shown in
Referring to
As best shown in
When the bolt carrier 58 is in the firing position, the trigger 40 can be pulled to release the hammer 42, which strikes the firing pin 66. When the hammer 42 strikes the firing pin 66, the firing pin 66 strikes the live round to fire the live round, which causes the bullet to move through and out of the second bore 52. After firing the live round, the exhaust gases are routed back to the bolt carrier 58 through a return tube 68, which is shown in
Turning to
As also shown in FIGS. 7 and 9-10, the firearm 20 further includes a shield 82 longitudinally affixed to the bolt carrier 58 and moving with the bolt carrier 58 as a unit between the firing and rearward positions along the longitudinal axis L. In other words, the shield 82 and the bolt carrier 58 fail to move independently of each other along the longitudinal axis L. The bolt carrier 58 and the shield 82 can also be removed from the first bore 26 of the receiver 24 as the unit for providing easy cleaning and/or replacement of the components of the firearm 20.
The shield 82 is formed of a self lubricating polymeric material and more specifically formed of a thermoplastic material, such as an acetyl polymer. Other suitable plastics include nylon 12, such as Lauramid® and Nyaltron®; polyoxymethylene; phenolic composites; or combinations thereof. Preferably, the self lubricating polymeric material is formed of Delrin® AF, which comprises an acetyl homopolymer having a polytetrafluoroethylene filler, e.g. PTFE fibers. It is to be appreciated that other polymeric materials can also be used to form the shield 82.
As best shown in
The shield 82 further includes a middle portion 88, a first end portion 90 and a second end portion 92. The first 90 and second 92 end portions extend outwardly from the middle portion 88 away from each other. In other words, the middle portion 88 is disposed between the first 90 and second 92 end portions.
The shield 82 defines an aperture 94 aligned with the exhaust port 60 for exhausting gases therethrough. Preferably, the middle portion 88 of the shield 82 defines the aperture 94 with the aperture 94 extending through the entire shield 82. There may also be other apertures or recesses disposed in the shield 82 as needed.
The shield 82 further includes an outer edge and an angled portion 96 tapering toward the outer edge along a part of the shield 82 with the distal rim 76 of the outer surface 74 and the angled portion 96 being complementary in configuration to each other. More specifically, the angled portion 96 is disposed on the interior side 86. The angled portion 96 tapers toward the outer edge along the middle portion 88 and the second end portion 92 with the angled portion 96 tapering toward the outer edge along a section of the first end portion 90. The outer edge includes a flat end 97 along the first end portion 90 with the flat end 97 terminating at the angled portion 96. The flat end 97 of the shield 82 is complementary with the first end 78 of the bolt carrier 58 for preventing the shield 82 from interfering with the operation of the bolt carrier 58 or any other interference with other components of the firearm 20.
A biasing device 98 is disposed between the bolt carrier 58 and the shield 82 for biasing the shield 82 outwardly away from the bolt carrier 58 such that the shield 82 continuously engages the inner surface 30 of the receiver 24 during movement in the firing and rearward positions. The biasing device 98 preferably includes at least one spring 98 disposed between the bolt carrier 58 and the shield 82 for biasing the shield 82 outwardly away from the bolt carrier 58 transverse to the longitudinal axis L. The interior side 86 of the shield 82 can abut the outer surface 74 of the bolt carrier 58 or can be spaced from the outer surface 74 as long as the exterior side 84 remains in engagement with the inner surface 30 of the receiver 24.
A securing system 100 is attached to one of the bolt carrier 58 and the shield 82 for longitudinally affixing the shield 82 to the bolt carrier 58. In other words, the securing system 100 prevents the shield 82 from moving independently of the bolt carrier 58 along the longitudinal axis L while permitting the shield 82 to move independently of the bolt carrier 58 transverse to the longitudinal axis L. Stated another way, the shield 82 is longitudinally affixed to the bolt carrier 58 in such a manner as to allow the shield 82 to move closer to and farther away from the outer surface 74 during biasing movement.
The securing system 100 includes the boss 62 extending outwardly from the outer surface 74 of the bolt carrier 58. Preferably, the boss 62 is received into the aperture 94 of the middle portion 88 for longitudinally affixing the shield 82 to the bolt carrier 58. The boss 62 extends outwardly from the outer surface 74 by a first distance. The exterior side 84 of the shield 82 is disposed a second distance from the outer surface 74. The second distance is greater than the first distance such that the shield 82 extends beyond the boss 62.
As best shown in
Referring to
A release mechanism (not numbered) may be provided between the shield 82 and the door 36 to release the door 36 from the closed position. In particular, the release mechanism would be activated when the shield 82 moves from the firing position to the rearward position for moving the door 36 from the closed position to a released position. The door 36 is spring 98 biased such that once the door 36 is in the released position, the door 36 will automatically rotate downwardly to the open position to fully open the ejection port 28. Once the door 36 is opened, the door 36 remains open until the user rotates the door 36 back to the closed position and the latch re-engages the receiver 24.
Obviously, many modifications and variations of the present invention are possible in light of the above teachings. The foregoing invention has been described in accordance with the relevant legal standards; thus, the description is exemplary rather than limiting in nature. Variations and modifications to the disclosed embodiment may become apparent to those skilled in the art and do come within the scope of the invention. Accordingly, the scope of legal protection afforded this invention can only be determined by studying the following claims.
The subject patent application claims priority to and the benefits of U.S. Provisional Patent Application Ser. No. 61/133,624, filed on Jul. 1, 2008 and U.S. Provisional Patent Application Ser. No. 61/211,228, filed on Mar. 27, 2009.
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