Firearm bolt assembly with a pivoting handle

Information

  • Patent Grant
  • 12215947
  • Patent Number
    12,215,947
  • Date Filed
    Friday, September 16, 2022
    2 years ago
  • Date Issued
    Tuesday, February 4, 2025
    2 months ago
Abstract
Firearms and bolt mechanisms are disclosed herein. The firearm can include a bolt assembly configured to provide leverage for extracting a cartridge. The bolt body can include a main cylindrical body, handle, and a pivot pin extending through a portion of the handle within the cylindrical body. The handle can be rotated relative to the main cylindrical body to push the bolt assembly along an internal passageway of the receiver.
Description
TECHNICAL FIELD

The present invention relates generally to firearms. More specifically, the invention relates to firearms with bolt assemblies with pivoting handles for assisting with cartridge extraction.


BACKGROUND

Manual bolt-action rifles have bolt mechanisms configured to load cartridges into a chamber for firing and to remove empty cartridge shells from the chamber for ejection. Conventional bolt mechanisms have bolt handles fixedly connected to bolt bodies. Spent cartridges often stick to sidewalls of the chamber due to expansion of the cartridge bodies due to pressure built up during firing. Unfortunately, this can often require relatively high extraction forces for dislodging the spent cartridge. A helical extraction cam is typically located at the aft end of the receiver for generating such high forces.





BRIEF DESCRIPTION OF THE DRAWINGS

Non-limiting and non-exhaustive embodiments are described with reference to the following drawings. The same reference numerals refer to like parts throughout the various views, unless otherwise specified.



FIG. 1 is an isometric view of a firearm in accordance with one or more embodiments.



FIG. 2 is a top view of a portion of the firearm of FIG. 1 having a bolt assembly with a pivoting handle in an unlocked position for extracting a casing.



FIG. 2A is a detailed view of a handle shoulder contacting a receiver shoulder of FIG. 2.



FIG. 3 is a top view of the portion of the firearm after the handle has been rotated rearwardly to leverage the bolt assembly along the receiver.



FIG. 3A is a detailed view of the handle shoulder and receiver shoulder of FIG. 3.



FIG. 4 is a partially exploded isometric view of the firearm in accordance with one embodiment.



FIG. 5 is an isometric view of an action assembly with a bolt mechanism in a closed position in accordance with one embodiment.



FIG. 6 is a front view of the assembly of FIG. 5.



FIG. 7 is a cross-sectional view of the assembly taken along line 7-7 of FIG. 6.



FIG. 8 is an isometric view of the action assembly with the bolt mechanism in an unlocked position for allowing cartridge extraction in accordance with one embodiment.



FIG. 9 is a front view of the assembly of FIG. 8.



FIG. 10 is a cross-sectional view of the assembly taken along line 10-10 of FIG. 9.



FIG. 11 is an isometric view of the action assembly with a bolt handle that has been pivoted to begin extraction of a cartridge in accordance with one embodiment.



FIG. 12 is a front view of the assembly of FIG. 11.



FIG. 13 is a cross-sectional view of the assembly taken along line 13-13 of FIG. 12.



FIG. 14 is an isometric view of the assembly with the bolt handle in a rearward extraction position for discharging a spent case or shell via an ejection port.



FIG. 15 is a front view of the assembly of FIG. 14.



FIG. 16 is a cross-sectional view of the assembly taken along line 16-16 of FIG. 15.



FIG. 17 is a front isometric view of a bolt mechanism/receiver assembly in accordance with one or more embodiments.



FIG. 18 is a rear exploded isometric view of the assembly of FIG. 17.



FIG. 19 is an isometric view of the bolt assembly in accordance with an embodiment.



FIG. 20 is an exploded view of the bolt assembly of FIG. 19.



FIG. 21 is an isometric view of a bolt handle in accordance with one embodiment.



FIG. 22 is a plan view of the bolt handle.



FIG. 23 is a side view of the bolt handle.



FIG. 24 is a cross-sectional view of the bolt handle taken along line 24-24 of FIG. 23.



FIG. 25 is a side view of a bolt mechanism in accordance with one embodiment.



FIG. 26 is a cross-sectional view of the bolt mechanism taken along line 26-26 of FIG. 25.



FIG. 27 is a side view of the bolt assembly in accordance with an embodiment.



FIG. 28 is a cross-sectional view of the bolt assembly taken along line 28-28 of FIG. 27.



FIG. 29 is an isometric view of a bolt assembly in accordance with another embodiment.



FIG. 30 is an exploded isometric view of the bolt assembly of FIG. 29.



FIG. 31 is an isometric view of a bolt mechanism/receiver assembly with a bolt mechanism in a locked configuration in accordance with an embodiment.



FIG. 32 is an isometric view of the assembly of FIG. 31 with a bolt mechanism in an unlocked position.



FIG. 33 shows internal components of the assembly of FIG. 31.



FIG. 34 is a detailed view of a portion of the assembly of FIG. 33.



FIG. 35 is an isometric view of a firearm in accordance with one or more embodiments.



FIG. 36 is an isometric view of a portion of the firearm of FIG. 35 having a bolt assembly with a pivoting handle in a locked position.



FIG. 37 is an isometric view of the pivoting handle in an unlocked position for extracting a casing.



FIG. 38 is an isometric view of a bolt mechanism in an open configuration.



FIG. 39 is a top view of the bolt mechanism of the firearm of FIG. 35 with the pivoting handle in a forward position in accordance with one embodiment.



FIG. 40 is a back view of the bolt mechanism in a receiver.



FIG. 41 is a partial cross-sectional view of the bolt mechanism and receiver taken along line 41-41 of FIG. 40.



FIG. 42 is a top view the bolt mechanism of FIG. 39 with the pivoting handle in a rearward position.



FIG. 43 is a back view of the bolt mechanism in a receiver.



FIG. 44 is a cross-sectional view of the bolt mechanism and the receiver taken along line 44-44 of FIG. 40.



FIG. 45 is an isometric view of a bolt mechanism for the firearm of FIG. 35 in accordance with an embodiment.



FIG. 46 is an exploded view of the bolt mechanism.



FIG. 47 is an isometric view of a pivoting handle and a firing pin assembly in accordance with one embodiment.



FIG. 48 is a side view of the pivoting handle in accordance with embodiments of the technology.



FIG. 49 is a front view of the pivoting handle of FIG. 48.



FIG. 50 is a top view of the pivoting handle of FIG. 48.





DETAILED DESCRIPTION

The present technology is generally directed to, for example, bolt action firearms, bolt mechanisms, receivers and/or receiver-bolt connections and interactions. Specific details of numerous embodiments of the technology are described below with reference to FIGS. 1-50. A person of ordinary skill in the art will understand that the technology can have other embodiments with additional elements and features, or the technology can have other embodiments without several of the features shown and described below with reference to FIGS. 1-50. The terms “rearward”, “forward”, “proximal”, and “distal” are used to describe the illustrated embodiments and are used consistently with the description of non-limiting exemplary applications. The terms rearward/aft/proximal and forward/fore/distal are used in reference to the user's body when a user fires a firearm, unless the context clearly indicates otherwise.


Overview


In some embodiments, a bolt mechanism can include a pivoting bolt handle that acts as a lever that enables extraction of a cartridge from a receiver with significant force. The rotation of a main bolt body can be limited to, for example, unlocking/locking the bolt mechanism. The bolt handle can be rotated (e.g., rotated in the rearward/proximal direction) to linearly drive the unlocked bolt mechanism along the receiver while a pinned-connection can prevent or limit moments applied by the bolt handle to a main bolt body. This offers a tremendous advantage over traditional bolt actions which relay on, for example, a helical extraction cam along the receiver.


In some embodiments, a firearm assembly can include a receiver and a bolt mechanism. The receiver can have one or more receiver shoulders. The bolt mechanism can include a bolt body, a handle, and a handle pin rotatably coupling the handle to another component of the bolt mechanism. The handle can be rotated to lever the bolt body along the receiver. The pinned connection can substantially prevent or limit bolt body rotation, such as off-axis rotation. This allows the bolt mechanism to be pushed along the receiver while maintaining bolt body alignment. In one embodiment, the handle pin pivotally connects the handle to a central region (e.g., a region along a mid-sagittal plane or a center plane) of the bolt body. When the handle is rotated, a handle shoulder can push against the receiver shoulder facing the bolt body. The rotating handle applies a force to the handle pin in the opposite direction as the force applied to the receiver shoulder. This causes the displacement of the bolt body along a passageway of the receiver. In some embodiments, the pinned-connection limits, reduces, or substantially prevents lateral movement of the bolt body (e.g., off axis rotation) due to the handle leveraging the bolt mechanism rearwardly. To unlock the bolt mechanism, the handle is rotated about a longitudinal axis of the bolt body to rotate the bolt mechanism from a locked to unlocked position. The handle can be rotated about a handle axis of rotation (e.g., an axis of rotation generally perpendicular to the longitudinal axis of the bolt mechanism) to drive the bolt body in the aft direction relative to the receiver.


In some embodiments, a bolt mechanism has a pivoting handle with an arm and a handle shoulder. The handle shoulder is positionable to contact a receiver shoulder such that a bolt body is leveraged rearwardly by rotating the handle with respect to the bolt body. The bolt body can be driven rearwardly to extract at least a portion of a cartridge from a firing chamber. In certain embodiments, the arm and shoulder are positioned on opposing lateral sides of the bolt body. For example, the handle shoulder and the arm can protrude from diametrically opposed positions along the bolt body. The bolt body can be a generally cylindrical, hollow tube surrounding at least a portion of the handle and/or handle pin. In certain embodiments, the handle can have a main body located between the arm and the handle shoulder. The main body can include a pin opening through which the handle pin extends and a firing pin assembly passageway. The handle can have a one-piece or multi-piece construction and can be made, in whole or in part, of metal, rigid plastic, composite materials, or other suitable rigid material.


In further embodiments, a firearm has a bolt assembly with a pivoting bolt handle used for spent cartridge extraction, and a cocking mechanism that is located behind the bolt handle pivot. A firing pin passes through a pin, which pivotally couples the handle to a main body.


In yet further embodiments, a bolt assembly for a bolt action rifle has a pivoting handle attached to a main bolt body by a pivot pin. The pivot pin passes through an approximately cylindrical body of the bolt. A firing pin assembly passes through the bolt handle.


In further embodiments, a bolt assembly for a bolt action rifle can have a pivoting handle with a short portion and a long portion. The short portion protrudes from the side of the bolt opposite the long portion of the handle. The short portion is configured to contact the receiver so that the bolt assembly can be levered in a proximal or rearward direction in order to extract at least a portion of a cartridge from a chamber. In some embodiments, the short portion can include a shoulder having a contact surface that lies along an imaginary plane generally perpendicular to a longitudinal axis of the bolt assembly. When the handle is rotated relative to the body of the bolt assembly, the shoulder can press against the receiver to drive the main body of the bolt assembly along the receiver in the rearward direction. In one embodiment, the main body of the bolt is pivotally connected to the handle such that substantially no movements, attributable to the pivoting handle, are applied to the main body when the handle is pivoted to displace the main body along the receiver.


In some embodiments, a bolt mechanism for a bolt action rifle includes a main bolt body configured to move along a passageway of a receiver and a handle. The handle is rotatably coupled to the main bolt body such that rotation of the handle relative to the main bolt body produces an extraction force with a line of action extending along the passageway. The line of action can be substantially parallel to a longitudinal axis of the main bolt body. The main bolt body can be kept aligned with the passageway of the receiver while the handle pushes against an internal wall of the receiver to leverage the bolt mechanism away from a firing chamber.


Bolt-Action Firearms



FIG. 1 is an isometric view of a firearm 100 in accordance with one or more embodiments. The firearm 100 can include a bolt assembly or mechanism 110 (“bolt mechanism 110”), a barrel 120, a receiver 130, a grip 136, and a stock assembly 138. The bolt mechanism 110 can be used to load a cartridge into a firing chamber and can hold a shell (or casing) of a cartridge during firing. The bolt mechanism 110 is configured to leverage spent shells from the chamber. For example, mechanical advantage provided by the bolt mechanism 110 can help dislodge an expanded shell from the chamber of the firearm, even if the shell has been expanded a significant amount during the firing process. The firearm 100 can be repeatedly loaded, discharged, and unloaded using minimal user-applied forces. In operation, after firing the projectile, the bolt mechanism 110 can be unlocked by vertically rotating a bolt handle 112 (“handle 112”) from a lowered forward locked position (illustrated in FIG. 1) to a raised forward unlocked position. After unlocking the bolt mechanism 110, the handle 112 can then be rearwardly rotated to dislodge the spent cartridge. A pinned-connection can prevent or limit moments applied by the handle 112 to a main bolt body. After dislodging the spent cartridge, the handle 112 can be pulled rearwardly to slide the bolt mechanism 110 rearwardly along the receiver 130 until the spent cartridge is ejected via an ejection port 142 (see FIGS. 14, 15, and 16). After expelling the cartridge, the bolt mechanism 110 can be returned to the forward lowered position to reload the firearm 100.



FIG. 2 is a top plan view of the unlocked bolt mechanism 110 after the handle 112 has been moved from a forward locked position (FIG. 1) to an unlocked position in accordance with one embodiment. FIG. 2A is a detailed view of a handle shoulder 170 contacting an internal receiver shoulder 180 (illustrated in phantom line) of the receiver 130. Referring now to FIG. 2, the bolt mechanism 110 can include a cylindrical bolt body 150, a lug 152, and a handle pin 160. The handle 112 extends through the bolt body 150 and has an elongated arm 164 (“arm 164”) and a handle shoulder 170. The handle shoulder 170 and the arm 164 are located on opposites sides of a longitudinal axis or midplane plane 172 of the bolt mechanism 110. As the handle 112 pivots rearwardly (indicated by arrow 182), the handle shoulder 170 contacts the stationary receiver shoulder 180 such that the handle 112 displaces the handle pin 160 and bolt body 150 rearwardly (indicated by arrow 184). The handle pin 160 is freely rotatable relative to the bolt body 150 to minimize, reduce, or substantially prevent applied movements (e.g., moments about an axis of the handle pin 160) from being applied to the bolt body 150. This pinned connection ensures proper axial alignment of the bolt body 150 with an internal passageway of the receiver 130.


Referring now to FIG. 2A, an end 181 of the shoulder 170 can serve as a pivot point. When a user pulls rearwardly on the handle 112, the end 181 can remain generally stationary with respect to a surface 183 of the receiver shoulder 180. In other embodiments, the end 181 can have a rounded configuration for sliding along the surface 183 during handle rotation. The configuration of the shoulder 171 can be selected based on the configuration of the receiver and bolt body 150.



FIG. 3 is a top plan view of the bolt mechanism 110 with the handle 112 in a rotated-rearward position after the bolt body 150 has been displaced rearwardly along the receiver. FIG. 3A is a detailed view of the shoulder 170 contacting the receiver shoulder 180. As the handle 112 is rotated from the forward position (FIG. 2) to the rotated-rearward position (FIG. 3), the shoulder 171 can apply a force Fs (FIG. 3A) to the shoulder 180 to produce an axial force FP applied to the pin 160. The axial force FP is proportional to force applied to the handle 112 by the user. In some embodiments, the line of action of the force FP is generally aligned or collinear with the axis 172 (FIG. 2) of the bolt body 150. The direction of the axial force FP can be generally parallel to the longitudinal axis 172 of the bolt body 150 to limit frictional forces between the bolt mechanism 110 and the receiver. The mechanical advantage provided by this arrangement can be equal to or greater than about 2, about 5, about 10, about 15, or about 20 to overcome sticking of the cartridge case to the firing chamber wall. The configuration of the bolt mechanism 110 (e.g., length of the arm 164) can be selected to achieve other mechanical advantages.



FIG. 4 is an exploded isometric view of the firearm 100 in accordance with an embodiment. An upper or action assembly 192 (“assembly 192”) can include the bolt mechanism 110 and the receiver 130. Components and operation of the assembly 192 are discussed in connection with FIGS. 5-16.



FIG. 5 is an isometric view of the assembly 192 with the bolt mechanism 110 in the ready-to-fire locked configuration. FIG. 6 is a front view of the assembly 192 of FIG. 5. FIG. 7 is a cross-sectional view of the assembly 192 taken along line 7-7 of FIG. 6. Referring now to FIG. 7, the bolt mechanism 110 extends forwardly through a passageway 200 of the receiver 130. An extractor assembly 153 is configured to hold the rim of the cartridge 210, illustrated in a firing chamber 220. The lug 152 of a head 229 is held captively between a forward-facing shoulder 228 and the barrel 120. A firing pin assembly 230 extends longitudinally through the bolt body 150. In some embodiments, a striker screw 232 extends through an opening 252 of the handle 112 and a through-hole or opening 254 in the pin 160. The opening 252 is large enough to allow rotation of the handle 112 relative to the striker screw 232. The receiver 130 has a cam-less aft end to allow the bolt mechanism 110 to be translated proximally from the receiver 130. For example, the bolt body 150 can be translated in the proximal direction while the bolt body 150 is substantially rotationally fixed (e.g., less than 5, 3, or 2 degrees of rotation) relative to the receiver 130.



FIG. 8 is an isometric view of the assembly 192 with the bolt mechanism 110 in an unlocked configuration. FIG. 9 is a front view of the assembly 192 of FIG. 8. FIG. 10 is a cross-sectional view of the assembly 192 taken along line 10-10 of FIG. 9. Referring to FIGS. 8-10, the handle 112 has been rotated upwardly about a longitudinal axis 240 (FIGS. 8 and 10) of the bolt mechanism 110. The arm 164 (FIG. 10) can be generally orthogonal to the longitudinal axis 240. For example, a longitudinal axis 242 (FIG. 10) of the arm 164 can be oriented generally perpendicular to the longitudinal axis 240 of the bolt mechanism 110. Referring to FIG. 10, the handle pin 160 defines the transverse axis of rotation 243 passing generally diametrically across the bolt mechanism 110. The lug 229 has been moved away from the forward-facing shoulder 228 (FIG. 7) to allow rearward movement of the bolt mechanism 110.



FIG. 11 is an isometric view of the assembly 192 after the handle 112 has been rotated rearwardly to begin the cartridge case extraction process in accordance with one embodiment. FIG. 12 is a front view of the assembly 192 of FIG. 11. FIG. 13 is a cross-sectional view of the assembly 192 taken along line 13-13 of FIG. 12. As shown in FIG. 13, the longitudinal axis 242 of the handle 112 has been rotated an angle α from an initial position 244. The angle α can be equal to or greater than 5 degrees, 10 degrees, 15 degrees, 20 degrees, 25 degrees, 30 degrees, 40 degrees, 50 degrees, or any other angle selected based on the desired amount of handle movement. The handle shoulder 170 presses against the receiver shoulder 180, as discussed in connection with FIGS. 2 and 3, to drive the bolt mechanism 110 in the rearward direction to at least partially extract the spent cartridge 210 from the chamber 220. FIG. 13 shows a gap 270 after the spent cartridge has been dislodged.



FIG. 14 is an isometric view of the assembly 192 with the bolt mechanism 110 in rearward position for discharging the spent cartridge 210 via the ejection port 142. FIG. 15 is a front view of the assembly 192 of FIG. 14. FIG. 16 is a cross-sectional view of the assembly 192 taken along line 16-16 of FIG. 15. Referring now to FIG. 16, the handle 112 can remain in the rotated position while the bolt mechanism 110 slides along the passageway 200 of the receiver 130. To reload the firearm, the bolt mechanism 110 can be returned to the locked position discussed in connection with FIGS. 5-7.



FIG. 17 is a front right-side isometric view of the assembly 192 in accordance with one or more embodiments. FIG. 18 is an exploded rear right-side isometric view of the assembly 192. Referring now to FIG. 18, the bolt mechanism 110 can be inserted into a rearward portion 281 of the receiver 130. The extractor assembly 153 can be moved along the passageway 200 until the arm 164 is aligned with a slotted region 310. The arm 164 can be moved distally along a longitudinal slot 312, and once the arm 164 reaches a forward position against an abutment 313, the handle 112 can be rotated vertically downward along a vertical slot 314. Components of the bolt mechanism 110 in accordance with one embodiment are discussed in connection with FIGS. 19-29. Another bolt mechanism is discussed in connection with FIGS. 29-34.


Bolt Mechanisms



FIG. 19 is an isometric view of the bolt mechanism 110 in accordance with an embodiment. FIG. 20 is an exploded view of the bolt mechanism 110. The bolt mechanism 110 can include the handle 112, the bolt body 150, the extractor assembly 153, and a shroud 350. The handle 112 can include a knob 360 fixedly or rotatably coupled to an end portion 251 of the arm 164. The configuration of the arm 164 can be selected based on the desired gripping capabilities. The arm 164 and the shoulder 170 protrude from diametrically opposed sides of the bolt body 150. The pin 160 extends transversely across the bolt body 150 and is located generally between the arm 164 and the shoulder 170.


Referring to FIG. 20, a striker screw lock 413 can be coupled to the striker screw 232. A shroud 350 can be coupled to the bolt body 150 by a shroud locking pin 420 and spring 430. A firing pin assembly 230 can include a striker bushing 399, a striker spring 402, a striker 404, and the striker screw 232. The striker screw 232 can extend through a cocking piece 412, the shroud 350, and the pin 160. The configuration of the firing pin assembly 230 can be selected based on the configuration of the bolt mechanism 110.


A bolt head member 400 can be connected to the bolt body 150 by a bolt head pin 402. This arrangement may or can allow for rotation between the bolt head member 400 and bolt body 150. Exemplary bolt heads, bolt head members, extractor assemblies, and connections are disclosed in U.S. Pat. Nos. 9,097,478 and 9,574,834, which are incorporated by reference in their entireties. In some embodiments, the bolt head can be fixedly coupled to the bolt body 150. For example, the bolt head member 400 can have one or more lugs and can be rotatably fixed to the bolt body 150. The bolt body 150 can include a one-piece or multi-piece main cylindrical body configured to surround internal components. The configuration and functionality of the bolt head can be selected based on the desired interaction with receiver and/or the cartridge.



FIG. 21 is an isometric view of the bolt handle 112 in accordance with one embodiment. FIG. 22 is a plan view of the bolt handle 112. FIG. 23 is a side view of the bolt handle 112. FIG. 24 is a cross-sectional view of the bolt handle 112 taken along line 24-24 of FIG. 23. Referring now to FIG. 21, the bolt handle 112 can include a main body 450 between the arm 164 and the shoulder 170. The main body 450 can include the firing pin assembly opening 252 and the pivot pin opening 254. The firing pin assembly opening 252 can be aligned with a firing pin passage in the bolt body (FIG. 7) to allow the firing pin assembly to extend through the entire bolt assembly. In some embodiments, the pin opening 254 can intersect with the firing pin passage 252 to allow the handle pin 160 to extend past at least a portion of the firing pin assembly.


Referring now to FIG. 22, the shoulder 170 can have a bearing surface 470 configured to bear against the receiver. The bearing surface 470 can be generally planar, curved, or have any configuration suitable for engaging the receiver. The length L of the shoulder 170 can be selected based on the dimensions of the shoulder of the receiver. In some embodiments, the length L is equal to or less than about 10 mm, 5 mm, 2 mm, or 1 mm. Other lengths L can be used.


Referring now to FIG. 23, the firing pin passage 252 can have an elliptical cross section, circular cross section, or any other suitable cross section for allowing rotation of the handle 112 with respect to the firing pin assembly. FIG. 24 shows the passageway 252 having widened ends 480, 482. This allows the handle 112 to be rotated back and forth without damaging the striker screw.



FIG. 25 is a side view of the bolt mechanism 110 in accordance with an embodiment. FIG. 26 is a cross-sectional view of the bolt mechanism 110 taken along line 26-26 of FIG. 25. Referring now to FIG. 26, the generally cylindrical bolt body 150 surrounds internal components of the firing pin assembly 230. The bolt head 400 is rotatable relative to the striker 404 via the bolt head pin 402. As the handle 112 rotates (indicated by arrow 500), the internal components of the bolt mechanism 110 can remain generally stationary with respect to one another.



FIG. 27 is a side view of the bolt mechanism 110 in accordance with an embodiment. FIG. 28 is a cross-sectional view of the bolt mechanism 110 taken along line 28-28 of FIG. 27. As shown in FIGS. 26 and 28, the striker screw 232 can be located at the opposite side of the widened ends 480, 482 when the handle 112 is in an initial position (FIG. 26) and the fully rotated position (FIG. 28).



FIG. 29 is an isometric view of a bolt mechanism 600 in accordance with another embodiment. The bolt mechanism 600 can include a bolt body 610 and a handle 612. The handle 612 includes an arm 614 and a shoulder 616. The shoulder 616 protrudes from the bolt body 610 for contacting receiver so that the bolt body 610 can be levered rearwardly to extract cartridges from a chamber. A handle pivot 620 allows rotation of the handle 612 relative to other components of the bolt assembly 600. The bolt mechanism 600 can further include a bolt shroud 626, a cocking piece 622, and a bolt head 624.



FIG. 30 is an exploded view of the bolt mechanism 600 of FIG. 29. An extractor 640 can be adjacent to the bolt head 624 and can be configured to hold the rim of a cartridge. The bolt body 610 can house and surround a thrust washer 642, a firing pin spring 644, and other components. A spring retaining washer 646 and a spring retainer 648 can be received within the passageway of the bolt head member 624. The pin 620 can extend through an opening 660 in the bolt body 610. The opening 660 can be slightly larger than the pin 620 to prevent or limit frictional forces that would inhibit fore-aft rotation of the handle 612. The bolt mechanism 600 can further include a striker pin 674. The striker pin 674 can extend through the cocking piece 672 and an opening 675 in the pin 620. The pin 620 can be positioned within an opening 690 in a main body 700 of the handle 612. The striker pin 674 can extend through a striker pin passageway 702 of the main body 700.



FIGS. 31 and 32 illustrate an assembly 800 that includes the bolt mechanism 600 and a receiver 802. Referring now to FIG. 31, the handle 612 is at a forward lowered position to lock the bolt mechanism 600. The handle 612 can be rotated upwardly about an axis of rotation 804 that can be substantially aligned with or parallel to a longitudinal axis 805 of the bolt mechanism 600. FIG. 32 shows the handle 612 in a forward raised position. As the handle 612 pivots, the shoulder (e.g., shoulder 616 of FIG. 29) can push against the receiver to utilize the mechanical advantage of leverage offered by the pivoting handle 612. In this manner, the handle 612 forcefully extracts the cartridge 640 from the chamber. The handle 612 can be pulled rearwardly through a longitudinal slot 820 of the receiver 802.



FIG. 33 shows the bolt mechanism 600. The pin 620 can be rotatably fixed with respect to one or more other components, such as the bolt body 610, striker pin 674 (FIG. 30), or other components. The configuration of the firing pin assembly and other internal components can be selected based on desired bolt action. For example, the illustrated embodiment is configured for right-handed operation. In other embodiments, the handle 612 can be located on the opposite side for left-handed operation. Additionally, the handle 612 and the shoulder 616 are located on opposite sides of the bolt body 610. This provides for a large mechanical advantage. In other embodiments, the shoulder 616 can be at other locations facing the receiver surface.



FIG. 35 is an isometric view of a firearm 1000 in accordance with one or more embodiments. The firearm 1000 can include a bolt assembly or mechanism 1110 (“bolt mechanism 1110”), a barrel 1120, a receiver 1130, a grip 1136, and a stock assembly 1138. The bolt mechanism 1110 can be used to load a cartridge into a firing chamber and can hold a shell (or casing) of a cartridge during firing. The bolt mechanism 1110 can include a spring-loaded bolt mechanism 1110 with pivoting bolt handle 1112 (“handle 1112”). After firing the projectile, the bolt mechanism 1110 can be unlocked by rotating the handle 1112 from a lowered forward locked position (illustrated in FIGS. 35-36) to a raised forward unlocked position (FIG. 37). The handle 1112 can be biased toward the forward locked position (e.g., indicated by arrow 1155 of FIG. 37) to reduce occurrences of unintended bolt openings. After unlocking the bolt mechanism 1110, handle 1112 can then be pivoted (e.g., rearwardly) about an axis 1143 (indicated by arrow 1149 of FIG. 37) by the user overcoming biasing provided by one or more springs. The handle 1112 can contact the receiver 1130 to leverage the bolt mechanism 1110 rearwardly. The bolt mechanism 1110 can be displaced along the receiver 1130 until the spent cartridge is ejected via an ejection port 1145.



FIG. 38 is an isometric view of the bolt mechanism 1110 in the rearward opened position. After expelling the cartridge, the bolt mechanism 1110 can be returned to the forward locked position to reload the firearm 1000. The handle 1112 can be biased to pivot toward the forward position (e.g., indicated by arrow 1155 of FIG. 37) with respect to the bolt body to facilitate convenient locking of the firing assembly.



FIG. 39 is a top view of the bolt mechanism 1110 with the handle 1112 in a forward position in accordance with one embodiment. The bolt mechanism 1110 can include a cylindrical bolt body 1150, a lug 1152, and the spring-loaded handle assembly 1111. The bolt body 1150 has a cutout or opening 1151 configured to receive the pin 1160. The opening 1151 can have an arcuate shape or partially cylindrical shape (as viewed from above) to slidably contact the pin 1160. In some embodiments, the handle 1112 has pins 1160 extending from opposite sides of a handle main body 1169 (FIGS. 41, 44, and 48). Each pin 1160 can be received in a respective opening 1151 of the bolt body 1150. Advantageously, when the firing pin assembly (e.g., bolt shroud, firing pin, etc.) has been removed from the bolt mechanism 1110, the handle 1112 can be separated (e.g., laterally removed) from the bolt body 1150 for cleaning or maintenance. In some embodiments, the pins 1160 can be integrally formed with the main body 1169. In some embodiments, the pins 1160 can be threadably coupled to or otherwise fixed to the main body 1169.


Advantageously, the bolt mechanism 1110 can be toollessly assembled/disassembled by removing the firing pin assembly and then pulling the handle 1112 from the bolt body 1150. For reassembly, the handle 1112 can be laterally inserted into the bolt body 1150 and the firing pin assembly can be inserted through the handle 1112 to captively couple the handle 1112 to the bolt body 1150. For example, the handle 1112 can be inserted laterally, relative to the main body 1150, into a side opening 1157 (FIG. 39) of the bolt body 1150 to establish a pivotal connection (e.g., via the pivots 1160 or other connection) between the handle 1112 and the main body 1150. After the pivots 1160 are positioned in the openings 1151, the firing pin can be installed to captively couple the handle 1112 to the bolt body 1150. In this manner, the handle 1112 is releasably coupled to the main body 1150 by the firing pin.



FIG. 40 is a back view of the bolt mechanism 1110 of FIG. 39 in the receiver 1130. FIG. 41 is a cross-sectional view of the assembly taken along line 41-41 of FIG. 40. Referring to FIG. 41, the handle 1112 extends through the bolt body 1150 and has an elongated arm 1113 (“arm 1113”) and a handle shoulder 1180. The handle shoulder 1180 and the arm 1113 are located on opposites sides of a longitudinal axis or midplane plane 1172 (FIGS. 39-41) of the bolt mechanism 1110.


Referring to FIG. 41, the spring-loaded handle assembly 1111 can include the handle pivot or pin 1160 defining the axis of rotation 1143 (FIG. 37), a bolt handle bias bushing 1139, main body 1169 (FIG. 41), and a handle biasing spring 1141. The main body 1169 can be wedge-shaped (as viewed from above), tapered in the distal direction away from the handle arm 1169, or another suitable shape for engaging the bushing 1139. The bushing 1139 can include a bearing surface 1403 that is generally parallel to a front face 1411 of the main body 1169 when the bolt mechanism 1110 is in the locked configuration. The spring 1141 is configured to bias the handle toward a closed position when the one or more springs are compressed against an internal shoulder 1181 of the receiver 1130. The bolt handle bias bushing 1139 can be driven rearwardly by a spring 1141 to pivot the handle 1112 forwardly, as indicated by arrow 1165 (FIG. 41). The spring 1141 can include one or more coil springs, helical springs, or another biasing member that allow for independent biasing of the firing pin 1404 and the handle 1112.


A user applied force can overcome the biasing force provided by the spring 1141 such that the bushing 1139 is driven forwardly by an end portion 1171 of the main body 1169, as indicated by arrow 1423. As the handle 1112 pivots rearwardly (indicated by arrow 1182) by the user, a handle shoulder 1170 pushes against the stationary receiver shoulder 1180 (FIG. 41) such that the handle 1112 leverages the bolt mechanism 1110 rearwardly. The assemblies discussed in connection with FIGS. 1-34 can also include multiple biasing members for independent biasing of individual components. This allows for customizable operational forces.



FIG. 42 is a top view of the bolt mechanism 1110 with the handle 1112 in rearward position in accordance with one embodiment. FIG. 43 is a back view of the bolt mechanism 1110 in the receiver 1130. FIG. 44 is a cross-sectional view of the assembly taken along line 44-44 of FIG. 43. Referring to FIG. 44, the handle 1112 has been rotated rearwardly to displace the bolt mechanism 1110 along the receiver 1130. The spring 1141 can bias the bushing 1139 rearwardly such that the bushing 1139 pushes against the main body 1169, thereby causing the handle 1112 to pivot (indicated by arrow 1417) back to the forward position. This facilitates closing of the bolt mechanism 1110.



FIG. 45 is an isometric view of the bolt mechanism 1110 in accordance with an embodiment. FIG. 46 is an exploded view of the bolt mechanism 1110 of FIG. 45 and a firing pin assembly. FIG. 47 is an isometric view of a bolt handle 1112 in accordance with one embodiment. The description of components with the hundred series reference numerals of FIGS. 19-21 refers to like parts with corresponding thousand series reference numerals of FIGS. 45-47. For example, the description of the shroud 350 of FIGS. 19-20 applies equally to a shroud 1350 (e.g., bolt shroud) of FIGS. 45-50. By way of another example, the main body 1169 of the handle 1112 can be positioned generally within the bolt body 1150 and can include a firing pin assembly opening 1181 configured to receive at least a portion of a firing pin assembly (e.g., bolt shroud, firing pin, etc.).



FIG. 48 is a front view of the handle 1112 in accordance with embodiments of the technology. FIG. 49 is a front view of the handle 1113. FIG. 50 is a top view of the handle 1164. The shoulder 1170, opening 1181, and arm 1113 can be generally aligned along a longitudinal axis 1165 (FIGS. 48 and 50) of the handle 1112. The features and configuration of the handle 1164 can be selected based on the desired operation of the firing mechanism.


The embodiments, features, extractors, bolt mechanisms, methods and techniques described herein may, in some embodiments, be similar to and/or include any one or more of the embodiments, features, firing components, systems, devices, materials, methods and techniques described in U.S. Pat. Nos. 7,743,543; 8,572,885; application Ser. No. 13/771,021, U.S. Provisional Patent Application No. 61/600,477; and U.S. Provisional Patent Application No. 61/602,520. U.S. Pat. No. 7,743,543, U.S. patent application Ser. No. 13/771,021, U.S. Provisional Patent Application No. 61/600,477; and U.S. Provisional Patent Application No. 61/602,520 are incorporated herein by reference in their entireties. In addition, the embodiments, features, systems, devices, materials, methods and techniques described herein may, in certain embodiments, be applied to or used in connection with any one or more of the embodiments, firearms, features, systems, devices, materials, methods and techniques disclosed in the above-mentioned U.S. Pat. No. 7,743,543; U.S. Provisional Patent Application No. 61/600,477; and U.S. Provisional Patent Application No. 61/602,520. The bolt mechanisms and other features disclosed herein can be incorporated into a wide range of different firearms (e.g., rifle, pistol, or other portable guns) to receive cartridges and removing empty cartridge shells. The following patents and applications are incorporated by reference: U.S. Pat. Nos. 7,743,543; 8,572,885; 9,097,478; 9,377,255. All patents, applications, and publications referenced herein are hereby incorporated by reference in their entireties.


From the foregoing, it will be appreciated that specific embodiments of the invention have been described herein for purposes of illustration, but well-known structures and functions have not been shown or described in detail to avoid unnecessarily obscuring the description of at least some embodiments of the invention. Where the context permits, singular or plural terms may also include the plural or singular term, respectively. Unless the word “or” is associated with an express clause indicating that the word should be limited to mean only a single item exclusive from the other items in reference to a list of two or more items, then the use of “or” in such a list shall be interpreted as including (a) any single item in the list, (b) all of the items in the list, or (c) any combination of the items in the list. The singular forms “a,” “an,” and “the” include plural referents unless the context clearly indicates otherwise. Thus, for example, reference to “a spring” refers to one or more springs, such as two or more springs, three or more springs, or four or more springs.


These and other changes can be made to the embodiments in light of the above-detailed description. In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled. Accordingly, the claims are not limited by the disclosure.

Claims
  • 1. A bolt mechanism for firearm, comprising: a cylindrical main body;a handle assembly including a handle pivotally couplable to the cylindrical main body; anda firing pin assembly configured to extend through a portion of the handle assembly within the cylindrical main body to captively couple the handle assembly to the cylindrical main body, wherein the handle is released from the cylindrical main body upon removal of the firing pin assembly from the handle assembly.
  • 2. The bolt mechanism of claim 1, wherein the handle is internally biased toward a first position, and wherein handle assembly is configured to be rotated to overcome the internal biasing to move the handle assembly toward a second position when the handle assembly is rotated rearwardly relative to a receiver of the firearm, thereby levering the bolt mechanism rearwardly along the receiver.
  • 3. The bolt mechanism of claim 1, wherein the handle is pivotable relative to the cylindrical main body via one or more protruding pivots of the handle.
  • 4. The bolt mechanism of claim 1, wherein the handle assembly includes an integral pivot configured to slidably contact arcuate openings in the cylindrical main body.
  • 5. The bolt mechanism of claim 1, wherein the handle has a short portion and a long portion, wherein the short portion protrudes from a first side of the cylindrical main body opposite the long portion and is positionable to contact a receiver of the firearm so that the bolt mechanism is levered in a rearward direction by rearward rotation of the handle.
  • 6. The bolt mechanism of claim 1, wherein the handle assembly is configured to cause displacement of the cylindrical main body along a receiver of the firearm while the cylindrical main body is substantially rotationally fixed relative to the receiver.
  • 7. The bolt mechanism of claim 1, wherein the handle is releasably coupled to the cylindrical main body by the firing pin assembly.
  • 8. The bolt mechanism of claim 1, wherein the handle is insertable, laterally relative to the cylindrical main body, into a side opening of the cylindrical main body to establish a pivotal connection between the handle and the cylindrical main body.
  • 9. The bolt mechanism of claim 1, wherein the handle assembly includes a pair of pivots configured to slidably contact open cutouts in the cylindrical main body to pivot the handle assembly relative to the cylindrical main body.
  • 10. The bolt mechanism of claim 1, further comprising one or more internal springs configured to bias the handle toward a closed position when the one or more internal springs are compressed against an internal shoulder of a receiver the firearm.
  • 11. The bolt mechanism of claim 1, wherein the handle is releasably coupled to the cylindrical main body by a bolt shroud installed in the firearm.
  • 12. An assembly for a firearm, comprising: a receiver;a bolt mechanism including: a bolt body configured to be positioned in the receiver, anda handle assembly including a handle pivot, anda handle configured to contact the receiver while the handle is rotated, via the handle pivot, relative to the bolt body to extract at least a portion of a casing from a chamber of the firearm; anda firing pin assembly extending through the handle assembly.
  • 13. The assembly of claim 12, wherein the handle has an arm and a main body between the arm and a handle shoulder configured to contact the receiver, wherein at least a portion of the main body is positioned within the bolt body and includes a firing pin assembly opening configured to receive at least a portion of the firing pin assembly.
  • 14. The assembly of claim 12, wherein a firing pin of the firing pin assembly is configured to pass through a passageway of a spring in the bolt body.
  • 15. The assembly of claim 12, wherein the handle is configured to push the bolt mechanism away from the chamber after a spring has been compressed by the handle being rotated rearwardly.
  • 16. The assembly of claim 15, wherein the bolt mechanism is configured to generate a force for displacing the bolt body rearwardly to cause extraction of the casing from the chamber of the firearm independent of a biasing force provided by a spring biasing the handle toward a closed position.
  • 17. The assembly of claim 12, wherein the bolt mechanism includes an internal spring and is configured to provide an internal bolt-closing biasing force provide by the internal bolt spring to bias the bolt mechanism toward a closed configuration.
  • 18. The assembly of claim 12, wherein the handle pivot is located in a partially cylindrical cutout in the bolt body.
  • 19. The assembly of claim 12, wherein the handle pivot is integrally connected to a main body of the handle and defines an axis of rotation spaced apart from the firing pin assembly.
  • 20. The assembly of claim 12, wherein the handle is movable from a lower forward position for firing the firearm to a raised forward position for allowing extraction of the casing, wherein the handle has a handle shoulder configured to contact the receiver when the handle is rotated rearwardly away from the raised forward position.
  • 21. The assembly of claim 20, wherein the handle shoulder and an arm of the handle are positioned on opposites sides of a midplane plane of the bolt mechanism.
  • 22. The assembly of claim 12, further comprising a bolt shroud that releasably holds the handle to the bolt body.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation-in-part of U.S. patent application Ser. No. 17/348,672, filed Jun. 15, 2021, which is a continuation of U.S. patent application Ser. No. 16/701,004, filed Dec. 2, 2019, which claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application No. 62/774,032 filed Nov. 30, 2018, which are incorporated herein by reference in their entireties. This application also claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application No. 63/245,066 filed Sep. 16, 2021, which is incorporated herein by reference in its entirety.

US Referenced Citations (448)
Number Name Date Kind
119939 Merrill Oct 1871 A
193060 Wesson et al. Jul 1877 A
467180 Mauser Jan 1892 A
477671 Mauser Jun 1892 A
592239 Davenport Oct 1897 A
652583 Baird Jun 1900 A
1331154 Johnson et al. Feb 1920 A
1544566 Eickhoff et al. Jul 1925 A
1588887 Lassen Jun 1926 A
2123111 King Jul 1938 A
2144241 Eiane Jan 1939 A
2290778 Swebilius Jul 1942 A
2341298 Sweany Feb 1944 A
2368708 Goff et al. Feb 1945 A
2484977 Wilcox Oct 1949 A
2514981 Walker et al. Jul 1950 A
2543604 Singer Feb 1951 A
2558872 Miller Jul 1951 A
2775836 Emerson Jan 1957 A
2780145 Dieudonne Feb 1957 A
2881547 Butler Apr 1959 A
3183615 Hirsch May 1965 A
3198076 Stoner Aug 1965 A
3253362 Gitchell May 1966 A
3287842 Denhoff Nov 1966 A
3341963 Seiderman Sep 1967 A
3380183 Arthur et al. Apr 1968 A
3610714 DeGaeta Oct 1971 A
3738223 Post et al. Jun 1973 A
3830000 Browning Aug 1974 A
3906651 Vesamaa Sep 1975 A
3939679 Barker et al. Feb 1976 A
3949508 Elkas Apr 1976 A
3950876 Wild et al. Apr 1976 A
3951038 Van Langenhoven Apr 1976 A
3951126 Rau Apr 1976 A
3955300 Folsom et al. May 1976 A
3955469 Conley May 1976 A
3956967 Martz May 1976 A
3958549 Johansson et al. May 1976 A
3960053 Conley Jun 1976 A
3964368 Zimeri Safie Jun 1976 A
3975982 Terstegge Aug 1976 A
3979849 Haskins Sep 1976 A
3983270 Licari et al. Sep 1976 A
3985060 Conley Oct 1976 A
3988849 Connellan et al. Nov 1976 A
3996686 Baker Dec 1976 A
3999461 Johnson et al. Dec 1976 A
4000575 Ruger et al. Jan 1977 A
4002156 Fischer Jan 1977 A
4003152 Barker et al. Jan 1977 A
4004364 Chatigny Jan 1977 A
4004496 Snodgrass et al. Jan 1977 A
4011790 Folsom et al. Mar 1977 A
4014247 Tollinger Mar 1977 A
4016668 Frazier Apr 1977 A
4016669 Gminder Apr 1977 A
4019480 Kenaio Apr 1977 A
4024792 Moller May 1977 A
4031840 Boisrayon et al. Jun 1977 A
4048901 Ghisoni Sep 1977 A
4052926 Tollinger Oct 1977 A
4054003 Wilson Oct 1977 A
4058924 Mullner Nov 1977 A
4065867 Storey Jan 1978 A
4066000 Rostocil Jan 1978 A
4069702 Hayner Jan 1978 A
4085511 Kovac Apr 1978 A
4103586 Tollinger Aug 1978 A
4105030 Kercso Aug 1978 A
4122621 Barr Oct 1978 A
4123963 Junker Nov 1978 A
4138789 Langsford Feb 1979 A
4141274 Gerber Feb 1979 A
4143636 Liepins et al. Mar 1979 A
4150656 Curran Apr 1979 A
4151670 Rath May 1979 A
4151782 Allen May 1979 A
4158926 Kordas et al. Jun 1979 A
4161904 Groen et al. Jul 1979 A
4163334 Tollinger Aug 1979 A
4164929 Liepins et al. Aug 1979 A
4173964 Curran Nov 1979 A
4185537 Hayashi Jan 1980 A
4194433 Zellweger et al. Mar 1980 A
4194846 Zerillo Mar 1980 A
4200028 Bains Apr 1980 A
4227439 Gillum Oct 1980 A
4232583 Harrison Nov 1980 A
4245418 Kennedy Jan 1981 A
4257310 Folsom et al. Mar 1981 A
4266358 Phillips et al. May 1981 A
4269386 Crowe May 1981 A
4275640 Wilhelm Jun 1981 A
4282796 Stoner et al. Aug 1981 A
4296564 Oberst Oct 1981 A
4301609 Peterson et al. Nov 1981 A
4301709 Bohorquez et al. Nov 1981 A
4305218 Godsey Dec 1981 A
4305326 Sallach et al. Dec 1981 A
4308786 Hayashi Jan 1982 A
4316341 Landry Feb 1982 A
4321764 Wilhelm Mar 1982 A
4328737 Nelson et al. May 1982 A
4329803 Johnson et al. May 1982 A
4335643 Gal Jun 1982 A
4336743 Horn et al. Jun 1982 A
4352317 Wilhelm Oct 1982 A
4357888 Phillips et al. Nov 1982 A
4358985 Hamilton Nov 1982 A
4358986 Giorgio Nov 1982 A
4358987 Wilhelm Nov 1982 A
4361975 Wilhelm Dec 1982 A
4362397 Klingenberg Dec 1982 A
4378614 McKenney Apr 1983 A
4383383 Landry May 1983 A
4387524 Brint et al. Jun 1983 A
4395938 Curtis Aug 1983 A
4400900 Hillberg et al. Aug 1983 A
4400901 Hillberg Aug 1983 A
4407085 Hillberg et al. Oct 1983 A
4416186 Sullivan Nov 1983 A
4422254 McQueen Dec 1983 A
4424735 Bacon et al. Jan 1984 A
4445292 Martin May 1984 A
4449312 Ruger et al. May 1984 A
4450751 Thevis May 1984 A
4452001 Compton Jun 1984 A
4453329 Brint et al. Jun 1984 A
4455919 Osborne et al. Jun 1984 A
4459849 Calamera Jul 1984 A
4462179 Rogak et al. Jul 1984 A
4463654 Barnes et al. Aug 1984 A
4466417 Mulot et al. Aug 1984 A
4467698 Perrine Aug 1984 A
4468876 Ghisoni Sep 1984 A
4468877 Karvonen Sep 1984 A
4469006 Teppa Sep 1984 A
4471549 Brint et al. Sep 1984 A
4475437 Sullivan Oct 1984 A
4481859 Dix Nov 1984 A
4492145 Curtis Jan 1985 A
4494439 Sawyer Jan 1985 A
4499684 Repa Feb 1985 A
4502367 Sullivan Mar 1985 A
4505182 Sullivan Mar 1985 A
4512236 Thevis et al. Apr 1985 A
4515064 Hohrein May 1985 A
4522105 Atchisson Jun 1985 A
4522106 Sullivan Jun 1985 A
4523510 Wilhelm Jun 1985 A
4531444 Jackson Jul 1985 A
4532852 Hance et al. Aug 1985 A
4547988 Nilsson Oct 1985 A
4551936 Chauvet Nov 1985 A
4553468 Castellano et al. Nov 1985 A
4553469 Atchisson Nov 1985 A
4555205 Hiroyasu et al. Nov 1985 A
4563936 Cleary et al. Jan 1986 A
4563937 White Jan 1986 A
4569145 Ruger et al. Feb 1986 A
4570369 Gerfen Feb 1986 A
4579034 Holloway Apr 1986 A
4587879 Savioli May 1986 A
4589326 Kuckens et al. May 1986 A
4589327 Smith May 1986 A
4590697 Ruger et al. May 1986 A
4597211 Miles Jul 1986 A
4648190 Allen Mar 1987 A
4653210 Poff Mar 1987 A
4654993 Atchisson Apr 1987 A
4656919 Farinacci et al. Apr 1987 A
4664015 Kennedy May 1987 A
4665793 Cleary et al. May 1987 A
4671005 Jewell Jun 1987 A
4672761 Hart Jun 1987 A
4672762 Nilsson Jun 1987 A
4677897 Barrett Jul 1987 A
4680884 Smith et al. Jul 1987 A
4693170 Atchisson Sep 1987 A
4698931 Larsson Oct 1987 A
4700608 Pettinga et al. Oct 1987 A
4709617 Anderson Dec 1987 A
4709686 Taylor et al. Dec 1987 A
4719841 Perrine Jan 1988 A
4723369 Badali Feb 1988 A
4727670 Krouse Mar 1988 A
4732074 Normand Mar 1988 A
4754567 Lehfeldt et al. Jul 1988 A
4774929 Milliman Oct 1988 A
4787288 Miller Nov 1988 A
4791851 Stoner Dec 1988 A
4791908 Pellis Dec 1988 A
4821621 Lorenzo Apr 1989 A
4856410 Anderson Aug 1989 A
4867040 Barrett Sep 1989 A
4870770 Forbes et al. Oct 1989 A
4872391 Stoner Oct 1989 A
4874367 Edwards Oct 1989 A
4879827 Gentry Nov 1989 A
4881517 Wackrow et al. Nov 1989 A
4890405 Krouse Jan 1990 A
4893545 Sanderson et al. Jan 1990 A
4893547 Atchisson Jan 1990 A
4897949 Whiteing Feb 1990 A
4908970 Bell Mar 1990 A
4920677 Schuerman May 1990 A
4926574 Rieger May 1990 A
4930238 Poff Jun 1990 A
4930399 Trevor Jun 1990 A
4937964 Crandall Jul 1990 A
4938116 Royster Jul 1990 A
4966063 Sanderson et al. Oct 1990 A
4974499 Sanderson et al. Dec 1990 A
4977815 Stephens Dec 1990 A
4987693 Brooks Jan 1991 A
4989357 Norman et al. Feb 1991 A
5012604 Rogers May 1991 A
5018292 West May 1991 A
5024138 Sanderson et al. Jun 1991 A
5024139 Knight et al. Jun 1991 A
5035692 Lyon et al. Jul 1991 A
5050480 Knight et al. Sep 1991 A
5050481 Knight et al. Sep 1991 A
5054365 Wissing Oct 1991 A
5065662 Bullis et al. Nov 1991 A
5067266 Findlay Nov 1991 A
5073165 Edwards Dec 1991 A
5078043 Stephens Jan 1992 A
5081780 Lishness et al. Jan 1992 A
5086578 Lishness et al. Feb 1992 A
5096155 Fitzgerald Mar 1992 A
5105570 Lishness et al. Apr 1992 A
5127310 Lishness et al. Jul 1992 A
5133331 Hutchinson Jul 1992 A
5155292 Rostcil et al. Oct 1992 A
5157209 Dunn Oct 1992 A
5161516 Ekstrom Nov 1992 A
5164534 Royster Nov 1992 A
5205942 Fitzgerald Apr 1993 A
5229539 Rommel Jul 1993 A
5259137 Blenk et al. Nov 1993 A
5259138 Scirica Nov 1993 A
5280778 Kotsiopoulos Jan 1994 A
5299722 Cheney Apr 1994 A
5308945 Van Handel et al. May 1994 A
5325760 Dennis Jul 1994 A
5329685 Gillespie Jul 1994 A
5349938 Farrell Sep 1994 A
5357939 Tentler et al. Oct 1994 A
5359921 Wolff et al. Nov 1994 A
5363581 Blenk et al. Nov 1994 A
5370036 Stoner Dec 1994 A
5383389 Wolff et al. Jan 1995 A
5410135 Pollart et al. Apr 1995 A
5413083 Jones May 1995 A
5440963 Szecsei Aug 1995 A
5458046 Blenk et al. Oct 1995 A
5469853 Law et al. Nov 1995 A
5484092 Cheney Jan 1996 A
5487233 Jewell Jan 1996 A
5497758 Dobbins et al. Mar 1996 A
5499569 Schuetz Mar 1996 A
5509399 Poor Apr 1996 A
5515838 Anderson May 1996 A
5522374 Clayton Jun 1996 A
5551180 Findlay et al. Sep 1996 A
5558077 Linsmeyer Sep 1996 A
5572982 Williams Nov 1996 A
5585590 Ducolon Dec 1996 A
5586545 McCaslin Dec 1996 A
5615662 Tentler et al. Apr 1997 A
5649520 Bednar Jul 1997 A
5653051 Pons et al. Aug 1997 A
5653213 Linsmeyer Aug 1997 A
5659992 Mistretta Aug 1997 A
5673505 Phillips Oct 1997 A
5673679 Walters Oct 1997 A
5680853 Clayton Oct 1997 A
5682699 Gentry Nov 1997 A
5691497 Weichert et al. Nov 1997 A
5701878 Moore et al. Dec 1997 A
5704342 Gibson et al. Jan 1998 A
5718074 Keeney Feb 1998 A
5722193 Post Mar 1998 A
5722194 Wurger et al. Mar 1998 A
5722383 Tippmann, Sr. et al. Mar 1998 A
5724759 Kilham Mar 1998 A
5726377 Harris et al. Mar 1998 A
5736667 Munostes et al. Apr 1998 A
5743039 Garrett Apr 1998 A
5770814 Ealovega Jun 1998 A
5771875 Sullivan Jun 1998 A
5783753 Kellerman Jul 1998 A
5784818 Otteson Jul 1998 A
5787629 Campbell et al. Aug 1998 A
5813158 Campbell et al. Sep 1998 A
5826362 Lyons Oct 1998 A
5827992 Harris et al. Oct 1998 A
5857280 Jewell Jan 1999 A
5878736 Lotuaco, III Mar 1999 A
5900577 Robinson et al. May 1999 A
5913303 Kotsiopoulos Jun 1999 A
5915934 Knight et al. Jun 1999 A
5926988 Casull Jul 1999 A
5939657 Morgado Aug 1999 A
5954043 Mayville et al. Sep 1999 A
5974940 Madni et al. Nov 1999 A
6024077 Kotsiopoulos Feb 2000 A
6065460 Lotuaco, III May 2000 A
6070352 Daigle Jun 2000 A
6073380 Hauser et al. Jun 2000 A
6101918 Akins Aug 2000 A
6131324 Jewell Oct 2000 A
6142058 Mayville et al. Nov 2000 A
6164001 Lee Dec 2000 A
6176169 Rostocil Jan 2001 B1
6189253 Knight et al. Feb 2001 B1
6205990 Adkins Mar 2001 B1
6209249 Borden Apr 2001 B1
6226915 Kotsiopoulos May 2001 B1
6234058 Morgado May 2001 B1
6263776 Rostocil Jul 2001 B1
6293203 Alexander et al. Sep 2001 B1
6305113 Calvete Oct 2001 B1
6345460 Hashman Feb 2002 B2
6345461 Constant et al. Feb 2002 B1
6345462 Mikuta et al. Feb 2002 B1
6345463 Baer, Sr. Feb 2002 B1
6354320 Kolacz et al. Mar 2002 B1
6360467 Knight Mar 2002 B1
6360468 Constant et al. Mar 2002 B1
6360469 Mikuta et al. Mar 2002 B1
6360470 Constant et al. Mar 2002 B1
6401378 Ockenfuss Jun 2002 B1
6401592 Rostocil Jun 2002 B1
6403602 Crooks et al. Jun 2002 B1
6412206 Strayer Jul 2002 B1
6412208 Mikuta et al. Jul 2002 B1
6425386 Adkins Jul 2002 B1
6432559 Tompkins et al. Aug 2002 B1
6460281 Schaeffer Oct 2002 B1
6470872 Tiberius et al. Oct 2002 B1
6477802 Baer, Sr. Nov 2002 B2
6508025 Du Jan 2003 B1
6516791 Perrone Feb 2003 B2
6520172 Perrone Feb 2003 B2
6530305 MacLeod et al. Mar 2003 B1
6532876 Ramirez et al. Mar 2003 B1
6553706 Gancarz et al. Apr 2003 B1
6560909 Cominolli May 2003 B2
6594938 Horton Jul 2003 B2
6604311 Laney et al. Aug 2003 B1
6625917 Murello et al. Sep 2003 B2
6631709 Carter et al. Oct 2003 B2
6634129 Freeman, Jr. Oct 2003 B1
6650669 Adkins Nov 2003 B1
6668478 Bergstrom Dec 2003 B2
6679150 Ramirez et al. Jan 2004 B1
6681511 Huber Jan 2004 B1
6698918 Durand Mar 2004 B2
6701909 Tiberius et al. Mar 2004 B2
6708685 Masse Mar 2004 B2
6718680 Roca et al. Apr 2004 B2
6722072 McCormick Apr 2004 B1
6729322 Schavone May 2004 B2
6735897 Schmitter et al. May 2004 B1
6760991 Gentry Jul 2004 B1
6782791 Moore Aug 2004 B2
6789342 Wonisch et al. Sep 2004 B2
6796067 Popikow Sep 2004 B2
6820533 Schuerman Nov 2004 B2
6820608 Schavone Nov 2004 B2
6832605 Farrell Dec 2004 B2
6874492 Schavone Apr 2005 B1
6892718 Tiberius et al. May 2005 B2
6901689 Bergstrom Jun 2005 B1
6907687 Rousseau et al. Jun 2005 B2
6907813 Gablowski Jun 2005 B2
6919111 Swoboda et al. Jul 2005 B2
6925744 Kincel Aug 2005 B2
6948273 Baker Sep 2005 B2
7051467 Huber May 2006 B1
7181680 Lin et al. Feb 2007 B2
7331135 Shimi Feb 2008 B2
7340987 Williams Mar 2008 B1
7363740 Kincel Apr 2008 B2
7430827 Huber Oct 2008 B1
7555900 Vallance et al. Jul 2009 B1
7596900 Robinson et al. Oct 2009 B2
7743543 Karagias Jun 2010 B2
7827724 Spinelli Nov 2010 B1
8069600 Rousseau et al. Dec 2011 B2
8099895 Farley et al. Jan 2012 B2
8215045 Mitchell Jul 2012 B2
8230633 Sisk Jul 2012 B1
8302340 Irwin Nov 2012 B1
8307575 Battaglia Nov 2012 B1
8474171 Simmons Jul 2013 B1
8572885 Karagias Nov 2013 B2
8769854 Battaglia Jul 2014 B1
8819976 Kellgren Sep 2014 B1
8997620 Brown Apr 2015 B2
9097478 Karagias Aug 2015 B1
9188399 Findlay et al. Nov 2015 B1
9328980 Doto May 2016 B1
9377255 Karagias Jun 2016 B2
9404694 Hochstrate et al. Aug 2016 B2
9574834 Karagias Feb 2017 B2
10082356 Karagias Sep 2018 B2
10458733 Karagias Oct 2019 B2
11067347 Karagias Jul 2021 B2
11525643 Karagias Dec 2022 B2
20020071349 Durand Jun 2002 A1
20020153982 Jones et al. Oct 2002 A1
20050011346 Wolff et al. Jan 2005 A1
20060090387 Zeh May 2006 A1
20060277810 Leitner-Wise Dec 2006 A1
20070079539 Karagias Apr 2007 A1
20070116546 Dearing May 2007 A1
20080005951 Gorzen Jan 2008 A1
20090049730 Caulley Feb 2009 A1
20100170130 Tertin Jul 2010 A1
20100229445 Patel Sep 2010 A1
20100281732 Laney et al. Nov 2010 A1
20110030261 Karagias Feb 2011 A1
20110099874 Zedrosser May 2011 A1
20120055058 Picard et al. Mar 2012 A1
20120073177 Laney et al. Mar 2012 A1
20120210859 Doll et al. Aug 2012 A1
20120297656 Langevin et al. Nov 2012 A1
20130139424 Devine Jun 2013 A1
20140013641 Warburton Jan 2014 A1
20140076144 Gomez Mar 2014 A1
20140144314 Jensen May 2014 A1
20140224114 Faxon Aug 2014 A1
20140230297 Larson et al. Aug 2014 A1
20150052794 Underwood et al. Feb 2015 A1
20150198394 Hochstrate et al. Jul 2015 A1
20150233656 Karagias Aug 2015 A1
20150276333 DiOrio Oct 2015 A1
20160033218 Folkestad et al. Feb 2016 A1
20160187082 Pizano Jun 2016 A1
20160209136 Schuetz Jul 2016 A1
20160238334 Pflaumer Aug 2016 A1
20170191773 Oz et al. Jul 2017 A1
20180195818 Schafer Jul 2018 A1
Foreign Referenced Citations (2)
Number Date Country
185453 Jul 1936 CH
4125148 Feb 1993 DE
Non-Patent Literature Citations (3)
Entry
Anschutz match-trigger, Oct. 2, 1999, 1 page. <<web.archive.org/web.19991002085043//www.championshooters.com/trigger.htm>> accessed on May 18, 2009.
Metcalf, D. “Innovative, Remarkable, Reliable . . . Getting Inside Savage's Accutrigger,” Long Gun Reviews. <<www.shootingtimes.com/longgun_reviews/savage_0813/>> accessed Jun. 6, 2005, 6 pages.
Quinn, J. “Savage Arms' New AccuTrigger,” Dec. 28, 2002, 6 pages. <<www.gunblast.com/Savage_Accutrigger.htm>>.
Related Publications (1)
Number Date Country
20230014919 A1 Jan 2023 US
Provisional Applications (2)
Number Date Country
63245066 Sep 2021 US
62774032 Nov 2018 US
Continuations (1)
Number Date Country
Parent 16701004 Dec 2019 US
Child 17348672 US
Continuation in Parts (1)
Number Date Country
Parent 17348672 Jun 2021 US
Child 17946988 US