Field of the Invention
The present invention relates to rifle construction, firearm accessory mounts and more particularly relates to accessory mounts and methods for configuring a rifle with a modular structure for attaching accessories.
Discussion of the Prior Art
It is well known to those skilled in the art that firearms such as precision rifles and military rifles, e.g., M16 type rifles, are characterized by the heating of the barrels to relatively high temperatures. At such temperatures, the barrels cannot be safely held by the shooter. Consequently, a variety of forearms or handguards have been developed to surround and provide adequate cooling for the gun barrel and mitigate the possibility of burning the shooter's hands, as disclosed in U.S. Pat. Nos. 4,663,875 and 5,010,676.
With the continuing application of newly developed technologies, e.g., lasers, infrared ray scopes, micro-computerization, etc., to modern warfare, the basic combat weapon, i.e., rifles, carbines and shotguns, have become relatively complicated. This has resulted in requirements for the association of these weapons with a variety of accessories such as infrared and night vision scopes, laser spotters and the like. Use of such accessories has driven development of various types of mounting devices for rifles (see, e.g., U.S. Pat. Nos. 4,026,054, 4,733,489, 4,845,871, 5,198,600, 5,343,650 & 5,590,484).
Because firearms may be subjected to substantial abuse, plus the need for as much simplicity as possible in construction and use of the weapon, very serious requirements and restrictions are encountered in the development of militarily acceptable systems for mounting accessories to firearms. Many accessory devices used with rifles or carbines such as the M4 (e.g., 100, shown in
The Picatinny rail (as illustrated in
While quad rail handguard assemblies with mounting rails 103 have obvious utilitarian benefits, they also have shortcomings. Most notably, they can be uncomfortable or cause injury when grasped by a shooter, they can snag on clothing, barbed wire or other objects, and if equipped with handplates, hand panels or other components, they add weight and complexity to a weapon system.
Other mounting systems have detachable rails that allow the user to install rails only where they are needed, and only of the length needed. While this decreases weight (and the discomfort and other disadvantages) of having needless rails where the hand is to grip, it suffers from other disadvantages. First, such systems may be difficult or complex to install. Second, they may require custom modification of parts, such as drilling and tapping holes where needed. Third, the attachment locations may be in limited locations due to the need to relocate fasteners such as threaded inserts (or may increase cost and weight by using an excessive number of fasteners). A further significant disadvantage of systems having modular rails that may be mounted in various locations on the forearm or handguard of a rifle stock is the susceptibility to loosening. If the mount for a rifle scope becomes loose, this can cause significant aiming errors. One solution to the disadvantages of Picatinny quad rail systems is the MAGPUL™ MOE™ handguard assembly described and illustrated in Magpul's U.S. Pat. No. 8,925,236, which provides a method for attaching accessory rail segments and other items to an ergonomically shaped MOE™ brand handguard. These rails and mounting attachments, once mounted, also appear to present the susceptibility to loosening.
Another approach is the KEYMOD™ system introduced by VLTOR Weapon Systems. The KEYMOD system consists of two parts: the KEYMOD slot; and the KEYMOD nut. The slot is distinctive with a larger diameter through-hole combined with a narrow slot. The slot is chamfered on the backside while the through-hole is sized for clearance of a quick-detach sling swivel (approximately ⅜″ diameter). However, the KEYMOD specifications also suffer from several disadvantages including more complex and expensive manufacturing requirements.
Precision shooters engaged in benchrest competition, Varmint hunting, military or police sniping or precision rifle match competition face additional problems relating to barrel heat management. As shots are fired, a barrel becomes increasingly hot and eventually heat rising from the barrel can cause a visible optical distortion in the shooter's view or image of the target, and this optical distortion is called “mirage.” Recreational shooters such as benchrest competitors have fashioned some novel and inexpensive mirage shields from old venetian blind strips or strips of elastically stretched fabric which extend over the upper surface of the barrel's length, and these mirage shields can, if properly installed and not disturbed, reduce or eliminate optical distortions in the target image caused by heat rising from the barrel. See, for example, http://bulletin.accurateshooter.com/2014/07/one-dollar-do-it-yourself-mirage-shield/. These shields are typically fragile and may be disturbed or stripped away altogether if carelessly handled.
Therefore, there is a need in the art for a firearm accessory mounting interface that adds minimal or no weight to a weapon system, is unlikely to snag and is comfortable to hold and which is durable and so does not require excessive care or special handling. There is also a need for a convenient, flexible, structurally rigid but ergonomically friendly and unobtrusive system and method for allowing users to attach rail-mountable accessories to a weapon such as a rifle or carbine.
Accordingly, it is an object of the present invention to overcome the above mentioned difficulties by providing a convenient, flexible, structurally rigid but ergonomically friendly and unobtrusive system and method for allowing users to attach rail-mountable accessories to a weapon such as a rifle or carbine. It is also an object of the present invention to provide an integral and durable, fuss-free mirage shield structure which mitigates optical distortion.
In accordance with the present invention, an improved mounting interface for use in a rifle handguard or the like includes a substantially tubular structure having a contoured, textured surface with plurality firearm accessory mount rail segments that are unlikely to snag anything and provides a textured external cylindrical sidewall which is comfortable to hold.
The mounting interface or tubular handguard has a proximal threaded collar segment with a proximal opening carrying internal threads configured to engage a rifles threaded receiver and provide a protective extended tubular sidewall which extends distally from the receiver to surround and protect the rifle's barrel, preferably without touching or bearing upon the rifle's barrel in any way (e.g., so that the barrel is “free floating”).
The tubular handguard's cylindrical sidewall is preferably defined with four radially spaced quadrants, namely a top quadrant, a bottom quadrant, a left side quadrant and a right side quadrant. The left and right side quadrants each have, preferably, first and second spaced arrays of parallel, elongated perforating slots defined therethrough, so that the handguard's interior lumen is in fluid communication with the outside or ambient air. The cylindrical sidewall is also preferably segmented distally (e.g., along a central axis which is coaxial with the barrel's bore) into first, second and third longitudinally aligned segments of equal axial length, where the first and second segments are separated by a transverse circumferential trough or groove which encircles the sidewall at a selected length from the handguard's proximal end. The left and right side quadrant's elongated perforating slots do not extend though the circumferential troughs defining each longitudinal segment.
The cylindrical sidewall's top quadrant and bottom quadrant are preferably defined with first and second spaced arrays of parallel, elongated grooves defined therein. The elongated perforating grooves also do not extend though the circumferential troughs defining each longitudinal segment.
The tubular handguard's cylindrical sidewall thus includes, within the left and right side quadrants, a pair of elongated perforating slots or ducts which are spaced apart at a selected inter-slot width and extend for the length of each longitudinally aligned sidewall segment, from an end or circumferential trough to the next trough or to the distal end of the sidewall. The lateral sidewall segments between the first and second elongated perforating slots, define segments of a cylindrical sidewall preferably with textured sidewall surfaces, and so project radially or laterally away from the cylinder's central axis in a convex curvature defined between the first and second elongated perforating slots in the inter-slot width.
On the top and bottom quadrants, the tubular handguard's cylindrical sidewall includes a pair of elongated non-perforating grooves which are spaced apart at a selected inter-groove width and extend for the length of each longitudinally aligned sidewall segment, from an end or circumferential trough to the next trough or to the distal end of the sidewall. The sidewall segment between the spaced apart elongated grooves also defines a segment of a cylindrical sidewall, preferably with a textured sidewall surface, and so projects radially away from the cylinder's central axis in a convex curvature defined between the spaced elongated grooves in the inter-groove width.
The mounting interface of the present invention is defined with a plurality of (e.g., four) linear transverse notches defined in that sidewall's convex curvature defined between the spaced elongated grooves in the inter-groove width, and the transverse notches extend substantially from the first elongated groove to the second elongated groove and so extend substantially all the way across the inter-groove width. The linear transverse distance between the spaced apart elongated grooves (or the inter-groove width, along the transverse notches) is preferably selected to be 21.2 mm, or the same as the width of the top of a traditional Picatinny Rail segment, so accessories which are compatible with the Picatinny rail platform (MIL-STD-1913 or STANAG 2324) will easily engage and hold onto the sidewall's surface, the transverse notch surface and sidewall's elongate groove edges defining the first and second elongated non-perforating grooves, all of which cooperate to provide the enhanced, snag-free mounting interface of the present invention.
The mounting interface of the present invention is preferably configured as a forend assembly adapted for use with a service rifle (e.g., 100, 101) which is adapted for attachment to releasable picatinny-style mounts at multiple attachment locations along four quadrants while also allowing indexing of the forend assembly at multiple angular locations relative to the rifle. In a preferred embodiment, the Handguard Nut Diameter is 2.110″ and the overall Handguard Diameter is 1.980″
Working now from the front toward the rear, a forend assembly consists of a forend tube with three panels, knurled to facilitate grip along the exterior surfaces, and containing a series of grooves running lengthwise, fabricated at the correct angle and width to provide a novel geometry which is comfortable to hold while also providing clamping surfaces configured to engage and support accessories designed to mount upon the popular “picatinny rails”. To allow components to be attached to the forend tube via the ergonomic rail system, additional cross-slots are provided running perpendicular to center-of-bore, just scalloping the outside diameter of the forend tube, said slots having radial bottoms to provide structural strength and stability, while also maintaining desired aesthetics and an unobtrusive feel during recoil. For additional strength, each of the cylindrical knurled panel segments is separated by a continuous ring of material. Inside each knurled panel, multiple locations for attaching components, via multiple cross-slots described above, is available both lengthwise and at four different quadrants along the circumference of the forend tube.
The forend tube further comprises a rear orifice to accept a forend tube extension via an intimate mating of diameters (press fit) and further fastened by four dowel cross-pins. The forend assembly is drawn proximally and held tight against the receiver by a forend tube nut which has flange or lip that engages a flange on the tube extension upon assembly of the forend tube, the tube extension and the forend tube nut all of which may rotate freely about the common center-line of the assembly until final assembly and tightening. The forend tube nut further comprises a knurled exterior for grip and presents a threaded orifice or lumen to attach the completed forend assembly to the receiver. The forend tube extension further comprises a proximal flange surface with a plurality (e.g., four) proximally projecting tabs to be accepted in multiple slots present at the forward face of the receiver, thereby allowing the forend assembly to be easily indexed to multiple angular locations along its center-line first at increments of five degrees, then twenty two and one half degrees thereafter.
The forend tube extension further comprises a counter bore orifice to accept a forward outside diameter of a receiver barrel coupler/nut, thereby upon complete assembly to the receiver, the forend tube nut fastens the rear face of the forend tube extension's flange to the forward face of the receiver barrel coupling forend nut's internal flange, where the above described interaction provides support to the forend assembly while preventing the transfer of stress to the protruding tabs of the forend tube extension. Upon final assembly, loosening the forend tube nut just slightly allows the easy rotation and indexing of the forend assembly, while complete loosening of the forend tube nut allows complete removal of the forend assembly.
The above and still further objects, features and advantages of the present invention will become apparent upon consideration of the following detailed description of a specific embodiment thereof, particularly when taken in conjunction with the accompanying drawings, wherein like reference numerals in the various figures are utilized to designate like components.
Turning now to
In accordance with the present invention, an improved mounting interface 200 for use in a rifle handguard or the like includes a substantially tubular structure having a contoured, textured exterior surface with a plurality of firearm accessory mount rail segments 260 that are configured to receive bipods and other accessories adapted to clamp to a standard Picatinny rail, but in a configuration which omits a typical Picatinny rail's projecting corners (or ‘horns’) so those rail segments are unlikely to snag anything. Instead, the enhanced accessory mount interface or forend assembly 200 provides a textured external cylindrical sidewall which is much more comfortable to hold than the quad-rail forend assembly 103 of the prior art (as shown in
In the exemplary embodiment illustrated in
Proximal threaded collar segment 210 preferably has a knurled external sidewall and internal threads which are configured to engage and hold the distal-end external threads of receiver 212 (as best seen in
The tubular handguard's cylindrical sidewall 220 is preferably defined with four radially spaced quadrants, namely a top quadrant 222, a bottom quadrant 224, a left side quadrant 226 and a right side quadrant 228. The left and right side quadrants 226, 228 each have, preferably, first and second spaced arrays of parallel, elongated perforating slots or ducts 232, 234 defined therethrough, so that the handguard's interior lumen is in fluid communication with the outside or ambient air. The elongated perforating slots or ducts 232, 234 are preferably configured to aim flowing barrel-heated air from the interior of the handguard lumen laterally and away from the top quadrant 222, thereby reducing the potential for optical distortion in the target image seen by the shooter and providing an integral and durable, fuss-free mirage shield structure which mitigates hot barrel induced optical distortion for the precision shooter and the corresponding target image stability issues seen by the shooter as the barrel heats up.
The cylindrical sidewall 220 is also preferably segmented into first, second and third longitudinally aligned segments of equal length, where the first and second segments are separated by a transverse circumferential trough or groove 242 which encircles the sidewall at a selected length from the handguard's proximal end. The elongated perforating slots or ducts 232, 234 do not extend though the circumferential troughs which separate (or are between) each longitudinal segment.
The cylindrical sidewall's top quadrant 222 and bottom quadrant 224 have first and second spaced arrays of parallel, elongated grooves 236, 238 defined therein. The cylindrical sidewall's transverse circumferential troughs which encircle the sidewall separate each segment so that the elongated grooves 236, 238 do not extend though the circumferential troughs defining each longitudinal segment.
The tubular handguard's cylindrical sidewall thus includes, within the left and right side quadrants 226, 228, a pair of elongated perforating slots or ducts 232, 234 which are spaced apart at a selected inter-slot width and extend for the length of each longitudinally aligned sidewall segment, from an end or circumferential trough to the next trough or to the distal end of the sidewall. The lateral sidewall segments between the first and second elongated perforating slots remain segments of a cylindrical sidewall, preferably with textured sidewall surfaces, and so project radially or laterally away from the cylinder's central axis in a convex curvature defined between the first and second elongated perforating slots 232, 234 in a segment of the sidewall referred to as the inter-slot width.
On the top and bottom quadrants 222, 224 the cylindrical sidewall's pair of spaced apart parallel elongated non-perforating grooves 236, 238 are spaced apart at a selected inter-groove width and extend for the length of each longitudinally aligned sidewall segment, from an end or circumferential trough to the next trough or to the distal end of the sidewall. The sidewall segment between the spaced apart elongated grooves also defines a segment of a cylindrical sidewall, preferably with a textured sidewall surface, and so projects radially away from the cylinder's central axis in a convex curvature defined between the first and second elongated grooves 236, 238 in a segment of the side wall referred to as the inter-groove width.
The mounting interface of the present invention is defined with a plurality of (e.g., four) linear transverse notches 250 defined in that sidewall's convex curvature defined between the first and second elongated grooves 236, 238 in the inter-groove width, and the transverse notches 250 extend substantially from said first elongated groove 236 to said second elongated groove 238 and so extend substantially all the way across the inter-groove width. The linear transverse distance between the first and second elongated grooves (or the inter-groove width, along the transverse notches 250) is preferably selected to be 21.2 mm, or the same as the width of the top of a traditional Picatinny Rail segment, so accessories which are compatible with the Picatinny rail platform (MIL-STD-1913 or STANAG 2324) will easily engage and hold onto the sidewall's surface, the transverse notch surface and sidewall's elongate groove edges defining the first and second elongated non-perforating grooves 236, 238, all of which cooperate to provide a firearm accessory mount rail segment 260. In the illustrated embodiment, the top quadrant and bottom quadrant each provide three firearm accessory mount rail segments 260 for the enhanced, snag-free mounting interface 200 of the present invention.
In the first embodiment illustrated in
Turning now to
Forend tube nut 210A has a cylindrical sidewall having an open proximal lumen with proximal end which defines an annular proximal end wall which is tightened proximally, where it may be limited in proximal engagement by a corresponding annular abutment surface defined in receiver 212, when forend tube nut 210A 210 is affixed thereupon. Forend tube nut 210A also has in its internal lumen an inwardly projecting annular flange 210AF at its distal end, and inwardly projecting tube nut flange 210AF is dimensioned to engage a draw tight against the tube extension's proximal flange 210BF when tube nut 210A is threadably engaged upon and tightened proximally onto receiver 212.
Prior to assembly and installation, the rifle's barrel 214 (shown in
Collar assembly 210 includes forend tube nut 210A which engages and supports forend tube extension 210B which defines the distally projecting segment of slightly reduced diameter cylindrical sidewall which fits snuggly within the open proximal end of and engages the elongated forend tube member. Tube extension 210B is affixed to forend tube member 216 by installation of a plurality of (e.g., four) transverse dowel pins 210P which are received in radially arrayed transverse bores (210TB, 216TB) defined in the cylindrical sidewall of said tube extension 210B and in the sidewall of tubular member 216, where the tubular member's bores 216TB are defined in sidewall 222 near its proximal end (best seen in
So forend tube assembly 200 preferably comprises three coaxially aligned tubular segments where collar segment 210 includes a forend tube nut 210A (with the external knurled sidewall surface) which receives and supports flanged forend tube extension 210B having proximal flange 210BF that bears on the receiver's distal transverse abutment end wall surface 212EW.
Turning now to
As best seen in
The mounting interface of the present invention is preferably configured as a forend assembly adapted for use with a precision rifle (e.g., 202) or a service rifle (e.g., 100, 101) which is adapted for attachment to releasable picatinny-style mounts at multiple attachment locations along four quadrants while also allowing indexing of the forend assembly at multiple angular locations relative to the rifle. In a preferred embodiment, the Handguard Nut Diameter is 2.110″ and the overall Handguard Diameter is 1.980″.
Another feature of the ergonomic mount 260 of the present invention is that each transverse mounting notch 250 has a cross sectional shape which is rounded or radiussed, as best seen in
Having described and illustrated preferred embodiments of a new and improved firearm accessory mounting interface, mirage shield and ergonomic method for configuring rifle components and accessories, it is believed that other modifications, variations and changes will be suggested to those skilled in the art in view of the teachings set forth herein. It is therefore to be understood that all such variations, modifications and changes are believed to fall within the scope of the claims appended hereto.
This application is related to and claims priority to commonly owned provisional application 62/199,139, entitled “Improved Firearm Accessory Mounting Interface, Mirage Shield and Ergonomic Method for configuring rifle components and accessories”, which was filed on Jul. 30, 2015, the entire disclosure of which is incorporated herein by reference. This application is also related to and claims priority to commonly owned provisional application 62/274,054, entitled “Improved, Modular T15 Precision Rifle Assembly and Method”, which was filed on Dec. 31, 2015, the entire disclosure of which is also incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
4275625 | Tomlinson | Jun 1981 | A |
6609321 | Faifer | Aug 2003 | B2 |
6836990 | Shiloni | Jan 2005 | B2 |
7568304 | Moody | Aug 2009 | B1 |
D641450 | Ding | Jul 2011 | S |
8037633 | Troy | Oct 2011 | B1 |
8336243 | Langevin | Dec 2012 | B2 |
8371056 | Baker | Feb 2013 | B1 |
8402684 | Beltz | Mar 2013 | B1 |
8667726 | Huff | Mar 2014 | B1 |
8739448 | Kimmel | Jun 2014 | B2 |
8806796 | Clifton | Aug 2014 | B1 |
9404714 | Langevin | Aug 2016 | B2 |
9528793 | Oglesby | Dec 2016 | B1 |
9581403 | Hayes | Feb 2017 | B2 |
9599439 | Sylvester | Mar 2017 | B1 |
9766035 | Storch | Sep 2017 | B2 |
20030074822 | Faifer | Apr 2003 | A1 |
20040060222 | Oz | Apr 2004 | A1 |
20040226212 | Shiloni | Nov 2004 | A1 |
20050268513 | Battaglia | Dec 2005 | A1 |
20070163163 | Munst | Jul 2007 | A1 |
20080148619 | Rogers | Jun 2008 | A1 |
20090038200 | Keng | Feb 2009 | A1 |
20100307043 | Moody | Dec 2010 | A1 |
20110016762 | Davies | Jan 2011 | A1 |
20110185617 | Brixius | Aug 2011 | A1 |
20110192066 | Kimmel | Aug 2011 | A1 |
20110214328 | Williams | Sep 2011 | A1 |
20120017482 | Chvala | Jan 2012 | A1 |
20120246989 | Troy | Oct 2012 | A1 |
20130000174 | Troy | Jan 2013 | A1 |
20130104439 | Hines | May 2013 | A1 |
20130180151 | Moore | Jul 2013 | A1 |
20130326925 | Power | Dec 2013 | A1 |
20140013642 | Larson, Jr. | Jan 2014 | A1 |
20140033593 | Moore, Jr. | Feb 2014 | A1 |
20140115938 | Jarboe | May 2014 | A1 |
20140230303 | Rice | Aug 2014 | A1 |
20140259850 | Schreckenstein | Sep 2014 | A1 |
20140325889 | Michal | Nov 2014 | A1 |
20140373414 | Nierenberg | Dec 2014 | A1 |
20150101232 | Schoenlau | Apr 2015 | A1 |
20150168095 | Dubreuil | Jun 2015 | A1 |
20150198409 | DeSomma | Jul 2015 | A1 |
20150285577 | Faifer | Oct 2015 | A1 |
20150285585 | Hewes | Oct 2015 | A1 |
20150316347 | Shea | Nov 2015 | A1 |
20150345896 | Michal | Dec 2015 | A1 |
20150369558 | Gottzmann | Dec 2015 | A1 |
20160010946 | Gibbens | Jan 2016 | A1 |
20160054096 | Dzwill | Feb 2016 | A1 |
20160061548 | Urias | Mar 2016 | A1 |
20160076846 | Melancon | Mar 2016 | A1 |
20160209166 | Larson, Jr. | Jul 2016 | A1 |
20160273861 | Langenbeck | Sep 2016 | A1 |
Number | Date | Country | |
---|---|---|---|
20170138692 A1 | May 2017 | US |
Number | Date | Country | |
---|---|---|---|
62274054 | Dec 2015 | US | |
62199139 | Jul 2015 | US |