Claims
- 1. A recoil control system for a heavy weapon comprising:
at least one inertia block for receiving a first momentum component perpendicular to the longitudinal axis of the barrel; and a bolt head configured to alternate between a forward position and a rearward position in response to the movement of at least one inertia block. whereby the reactive jerking of the firearm is reduced.
- 2. The recoil control system of claim 1, further comprising a gas injection system for applying a portion of the high-pressure gases from the firing of one or more cartridges to at least one inertia block.
- 3. The recoil control system of claim 1, further comprising a linkage connecting the bolt head to at least one inertia block.
- 4. The recoil control system of claim 1, further comprising a transporter assembly for aligning the movement of the bolt head between the forward position and the rearward position substantially with the longitudinal axis of the barrel.
- 5. The recoil control system of claim 4, wherein the transporter assembly is connected to the first inertia block.
- 6. The recoil control system of claim 1, wherein the first inertia block comprises a first slot.
- 7. The recoil control system of claim 6, wherein the first slot is oriented at an angle with respect to the longitudinal axis of the barrel when a round is chambered.
- 8. The recoil control system of claim 6, further comprising a transverse spindle for engaging the first slot.
- 9. The recoil control system of claim 1, further comprising a second inertia block for receiving a second momentum component perpendicular to the longitudinal axis of the barrel imparted by the gas injection system.
- 10. The recoil control system of claim 6, further comprising a second inertia block for receiving a second momentum component perpendicular to the longitudinal axis of the barrel imparted by the gas injection system, wherein the second inertia block comprises a second slot.
- 11. The recoil control system of claim 10, wherein the first slot is oriented at an angle to the longitudinal axis of the barrel and the second slot is oriented at an equal and opposite angle with respect to the longitudinal axis of the barrel when a round is chambered.
- 12. The recoil control system of claim 10, further comprising a transverse spindle for engaging the first slot and the second slot.
- 13. The recoil control system of claim 9, wherein the first momentum component is substantially equal in magnitude and opposite in direction to the second momentum component.
- 14. The recoil control system of claim 9, wherein imparting the first momentum component is synchronized with imparting the second momentum component.
- 15. The recoil control system of claim 1, further comprising a first recovery mechanism for countering the movement of the first inertia block.
- 16. The recoil control system of claim 15, wherein the first recovery mechanism comprises a spring.
- 17. The recoil control system of claim 9, further comprising a first recovery mechanism for countering the movement of the first inertia block and a second recovery mechanism for countering the movement of the second inertia block.
- 18. The recoil control system of claim 17, wherein the first recovery mechanism and the second recovery mechanism comprise a spring.
- 19. The recoil control system of claim 15, further comprising a triggering mechanism for selectively imparting a return impulse that permits the first recovery mechanism to return the first inertia block to a pre-firing position, thereby enabling precise, efficient control of the firing rate.
- 20. The recoil control system of claim 17, further comprising a triggering mechanism for selectively imparting a return impulse that permits the first recovery mechanism and the second recovery mechanism to return the first inertia block and the second inertia block to a pre-firing position, thereby enabling precise, efficient control of the firing rate.
- 21. The recoil control system of claim 20, wherein the return impulse is selected from an electromechanical impulse and an electropneumatic impulse.
- 22. The recoil control system of claim 1, further comprising a breech locking mechanism.
- 23. The recoil control system of claim 22, wherein the breech locking mechanism comprises a plurality of tenons.
- 24. The recoil control system of claim 22, further comprising a bolt head configured such that the breech locking mechanism restricts rearward movement of the bolt head when in a locked position and permits rearward movement of the bolt head when in an unlocked position.
- 25. The recoil control system of claim 24, wherein the breech locking mechanism is rotated about the longitudinal axis of the barrel to move between the locked and the unlocked position.
- 26. The recoil control system of claim 25, wherein the rotation of the breech locking mechanism is controlled by the movement of the first inertia block.
- 27. The recoil control system of claim 24, wherein the breech locking mechanism is rotated one-seventh of one revolution about the longitudinal axis of the barrel to move between the locked and the unlocked position.
- 28. The recoil control system of claim 24, wherein the bolt head comprises a first plurality of tenons and the breech locking mechanism comprises a second plurality of tenons.
- 29. The recoil control system of claim 28, wherein the second plurality of tenons are aligned with the first plurality of tenons to restrict rearward movement of the bolt head when the breech locking mechanism is in the locked position.
- 30. The recoil control system of claim 28, wherein the second plurality of tenons are not aligned with the first plurality of tenons, thereby permitting rearward movement of the bolt head when the breech locking mechanism is in the unlocked position.
- 31. The recoil control system of claim 22, wherein the locking and unlocking of the breech locking mechanism is controlled by the movement of the first inertia block.
- 32. The recoil control system of claim 9, further comprising a breech locking mechanism, wherein the locking and unlocking of the breech locking mechanism is controlled by the movement of the second inertia block.
- 33. A firearm with a plurality of barrels comprising:
a gas injection system for applying a portion of high-pressure gases from the firing of one or more cartridges to at least one inertia block; a first inertia block for receiving a first momentum component perpendicular to the longitudinal axis of the barrel imparted by the gas injection system; a second inertia block for receiving a second momentum component perpendicular to the longitudinal axis of the barrel imparted by the gas injection system; a first bolt head associated with a first barrel configured to alternate between a first forward position and a first rearward position in response to the movement of a least one of the first inertia block and the second inertia block; and a second bolt head associated with a second barrel configured to alternate between a second forward position and a second rearward position in response to the movement of a least one of the first inertia block and the second inertia block, whereby the reactive jerking of the firearm is reduced.
- 34. The firearm of claim 33, wherein the first momentum component is substantially equal in magnitude and opposite in direction to the second momentum component.
- 35. The firearm of claim 33, wherein imparting the first momentum component is synchronized with imparting the second momentum component.
- 36. The firearm of claim 33, further comprising a first recovery mechanism for countering movement of the first inertia block, and further comprising a second recovery mechanism for countering movement of the second inertia block.
- 37. The firearm of claim 36, wherein the first recovery mechanism and the second recovery mechanism comprise a spring.
- 38. The firearm of claim 36, further comprising a triggering mechanism for selectively imparting a first return impulse to permit the first recovery mechanism to return the first bolt head to the first forward position and the second recovery mechanism to return the second bolt head to the second forward position, thereby enabling precise, efficient control of the firing rate through the first barrel and the second barrel.
- 39. The firearm of claim 33, wherein the firing rate through the first barrel is synchronized with the firing rate through the second barrel.
- 40. The firearm of claim 33, wherein the first bolt head and the second bolt head are connected such that a single dud round in one of the plurality of barrels can be automatically ejected and fresh rounds can be chambered in each of the plurality of barrels using the high-pressure gases generated by the firing of at least one good round in at least one of the plurality of barrels.
- 41. The firearm of claim 40, wherein the first bolt head and the second bolt head are connected by a transporter assembly that aligns the movement of the first bolt head substantially with the longitudinal axis of the first barrel and the movement of the second bolt head substantially with the longitudinal axis of the second barrel.
- 42. The firearm of claim 33, further comprising a first breech locking mechanism associated with the first barrel, wherein the locking and unlocking of the first breech locking mechanism is controlled by the movement of at least one of the first inertia block and the second inertia block.
- 43. The firearm of claim 42, further comprising a second breech locking mechanism associated with the second barrel, wherein the locking and unlocking of the second breech locking mechanism is controlled by the movement of at least one of the first inertia block and the second inertia block.
- 44. The firearm of claim 33, further comprising:
a third bolt head associated with a third barrel configured to alternate between a third forward position and a third rearward position in response to the movement of a least one of the first inertia block and the second inertia block; and a fourth bolt head associated with a fourth barrel configured to alternate between a fourth forward position and a fourth rearward position in response to the movement of a least one of the first inertia block and the second inertia block, whereby the reactive jerking of the firearm is reduced.
- 45. The firearm of claim 44, wherein the firing rates through the first barrel, the second barrel, the third barrel, and the fourth barrel are synchronized.
- 46. The firearm of claim 44, wherein the first bolt head, the second bolt head, the third bolt head and the fourth bolt head are connected by a transporter assembly that aligns the movement of the first bolt head substantially with the longitudinal axis of the first barrel, the movement of the second bolt head substantially with the longitudinal axis of the second barrel, the movement of the third bolt head substantially with the longitudinal axis of the third barrel, and the movement of the fourth bolt head substantially with the longitudinal axis of the fourth barrel.
- 47. The firearm of claim 44, further comprising:
a first breech locking mechanism associated with the first barrel; a second breech locking mechanism associated with the second barrel; a third breech locking mechanism associated with the third barrel; and a fourth breech locking mechanism associated with the fourth barrel, wherein the locking and unlocking of the first breech locking mechanism, the second breech locking mechanism, the third breech locking mechanism, and the fourth breech locking mechanism are controlled by the movement of at least one of the first inertia block and the second inertia block.
- 48. The firearm of claim 47, wherein the locking and unlocking of the first breech locking mechanism, the second breech locking mechanism, the third breech locking mechanism, and the fourth breech locking mechanism are synchronized.
- 49. The firearm of claim 44, wherein the first bolt head, the second bolt head, the third bolt head, and the fourth bolt head are connected such that a single dud round in one of the plurality of barrels can be automatically ejected and fresh rounds can be chambered in each of the plurality of barrels using the high-pressure gases generated by the firing of at least one good round in at least one of the plurality of barrels.
- 50. A method of controlling recoil in a heavy weapon comprising:
firing a projectile that generates high-pressure gases; and applying a portion of the high-pressure gases to a first inertia block to impart a first momentum component perpendicular to the longitudinal axis of the barrel to the first inertia block, whereby the reactive jerking of the firearm in response to the recoil forces is reduced.
- 51. The method of claim 50, wherein the movement of the first inertia block in response to the high-pressure gases is constrained by a first oblique slot in the inertia block that slides along a fixed spindle.
- 52. The method of claim 51, wherein the first oblique slot is oriented at a 45-degree angle to the longitudinal axis of the barrel.
- 53. The method of claim 50, further comprising applying a portion of the high-pressure gases to a second inertia block to impart a second momentum component perpendicular to the longitudinal axis of the barrel to the second inertia block.
- 54. The method of claim 53, wherein the first momentum component is substantially equal in magnitude and opposite in direction to the second momentum component.
- 55. The method of claim 53, wherein imparting the first momentum component is synchronized with imparting the second momentum component.
- 56. The method of claim 53, wherein the movement of the second inertia block in response to the high-pressure gases is constrained by a second oblique slot in the inertia block that slides along a fixed spindle.
- 57. The method of claim 56, wherein the second oblique slot is oriented at a 45-degree angle to the longitudinal axis of the barrel.
- 58. The method of claim 50, wherein the high-pressure gases are applied to the first inertia block by a gas injection system.
- 59. The method of claim 50, further comprising:
locking the breech of the weapon to prevent the movement of a bolt head under the influence of the high pressure gases; and unlocking the breech of the weapon to allow the backward movement of the bolt head to eject a spent cartridge and to feed a new cartridge.
- 60. The method of claim 59, wherein the locking and unlocking of the breech of the weapon is controlled by the movement of the first inertia block.
- 61. The method of claim 59, wherein the locking and unlocking of the breech of the weapon is controlled by the movement of a second inertia block.
Priority Claims (3)
Number |
Date |
Country |
Kind |
0975/02 |
Jun 2002 |
CH |
|
1343/02 |
Jul 2002 |
CH |
|
0679/03 |
Apr 2003 |
CH |
|
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 60/459,969, filed Apr. 4, 2003, which is incorporated by reference in its entirety. This application also claims priority to Swiss Application Nos. 0975/02, filed Jun. 7, 2002, 1343/02, filed Jul. 31, 2002, and 0679/03, filed Apr. 15, 2003, which are incorporated by reference in their entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60459969 |
Apr 2003 |
US |