Compressed gas gun
11639838 · 2023-05-02
Assignee
Inventors
Cpc classification
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/721
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41A19/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compressed gas gun having a bolt and piston movable by the application of compressed gas, and a removable inline cylinder, are provided.
Claims
1. A compressed gas gun comprising: a body, the body comprising a generally cylindrical passage, the body having a forward portion and a rearward portion; a generally cylindrical housing for housing pneumatic components of a firing mechanism of the gun, the generally cylindrical housing formed as a separate unit insertable into the body and receivable within the generally cylindrical passage, the generally cylindrical housing comprising: a compressed gas area; a stationary housing projection; a bolt slidable relative to the stationary housing projection within the generally cylindrical housing from a rearward position to a firing position, the bolt having an increased diameter area, at least a portion of the bolt comprising the increased diameter area received coaxially on the stationary housing projection, a compressed gas communication passage for communicating a compressed gas to the increased diameter area of the bolt, the compressed gas communication passage having an opening positioned forward of the increased diameter area of the bolt, and a spring providing a forward biasing force on the bolt when the bolt is in the rearward position; wherein the bolt is configured to be movable to the rearward position under a pressure exerted by the compressed gas in communication with the increased diameter area of the bolt, and wherein movement of the bolt to the firing position opens a flow path allowing compressed gas compressed gas from the area to act upon and fire a projectile from the gun.
2. The compressed gas gun of claim 1, wherein compressed gas is delivered to the compressed gas communication passage at a first pressure, and compressed gas is delivered to the compressed gas area at a second pressure, and the first pressure and second pressure are different pressures.
3. The compressed gas gun of claim 1, wherein the bolt is configured to move relative to the stationary housing projection to open the flow path.
4. The compressed gas gun of claim 1, further comprising a valve in communication with the generally cylindrical housing.
5. The compressed gas gun of claim 4, wherein the valve is configured to supply compressed gas to the compressed gas communication passage.
6. The compressed gas gun of claim 4, wherein the valve is configured to allow transmission of compressed gas through the flow path when the bolt is in the firing position.
7. The compressed gas gun of claim 4, wherein the valve is positioned further toward the rearward portion of the body than the bolt when the generally cylindrical housing is positioned within the body.
8. The compressed gas gun of claim 1, wherein the stationary housing projection comprises at least one opening allowing for a flow of compressed gas from the compressed gas area to an opening in the bolt.
9. The compressed gas gun of claim 1, wherein the generally cylindrical housing further comprises an opening for receiving compressed gas from a source of compressed gas.
10. The compressed gas gun of claim 1, wherein the spring is positioned between the bolt and the rearward portion of the body.
11. A compressed gas gun comprising: a body, the body comprising a passage, the body having a forward portion and a rearward portion, the body comprising a compressed gas area and a stationary housing projection; a bolt slidable relative to the stationary housing projection from a rearward position to a firing position, the bolt having an increased diameter area, at least a portion of the bolt comprising the increased diameter area received by the stationary housing projection, a compressed gas communication passage for communicating a compressed gas to the increased diameter area of the bolt, and a spring providing a forward biasing force on the bolt when the bolt is in the rearward position; wherein the bolt is configured to be movable to the rearward position under a pressure exerted by the compressed gas in communication with the increased diameter area of the bolt, and wherein movement of the bolt to the firing position opens a flow path allowing compressed gas compressed gas from the area to act upon and fire a projectile from the gun.
12. The compressed gas gun of claim 11, wherein compressed gas is delivered to the compressed gas communication passage at a first pressure, and compressed gas is delivered to the compressed gas area at a second pressure, and the first pressure and second pressure are different pressures.
13. The compressed gas gun of claim 11, wherein the bolt is configured to move relative to the stationary housing projection to open the flow path.
14. The compressed gas gun of claim 11, further comprising a valve configured to control a flow of compressed gas to the passage or to the compressed gas communication passage.
15. The compressed gas gun of claim 11, wherein the stationary housing projection comprises at least one opening allowing for a flow of compressed gas from the compressed gas area to an opening in the bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other objects of the invention will be more readily apparent upon reading the following description of embodiments of the invention and upon reference to the accompanying drawings wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(13)
(14) Hereinafter, the term forward shall indicate being towards the direction of the barrel 10 and rearward shall indicate the direction away from the barrel 10 and towards the rear of main body 3. Preferably forward of the grip portion 45, and also attached to main body 3, the regulator mount 2 houses both the low-pressure regulator 21 and the high-pressure regulator 50. Compressed gas is fed from preferably a compressed gas tank into the input port 49 on high-pressure regulator 50 to be directed to tube 7 to launch a projectile and to be directed to low pressure regulator 21 to cock the bolt tip 38 for loading. Both regulators 21, 50 are constructed from principles generally known to those skilled in the art, and have adjustable means for regulating compressed gas pressure.
(15) Referring more particularly to
(16) The variable pneumatic sear 29 of the compressed gas gun of the present invention preferably consists of a control valve 30, a piston 32, residing in preferably sealed cylinder housing 31 as shown in
(17) Control valve 30 is preferably controlled by an electrical signal sent from circuit board 63. The electronic control circuit consists of on/off switch 87, power source 64, circuit board 63, and micro-switch 86. When the gun is turned on by on/off switch 87, the electronic control circuit is enabled. For convenience, the on/off switch 87 (and an optional additional switches, such as that for adjacent anti-chop eye that prevents the bolt's advance when a paintball 100 is not seated within the breech) is located on the rear of the marker, within a recess 88 shielded on its sides by protective walls 89. This location protects the switch 87 from inadvertent activation during play. The switch 87 is preferably illuminated by LEDs.
(18) When actuating switch 86 by manually depressing trigger 24, an electrical signal is sent by circuit board 63 to the control valve 30 to actuate and close the primary port, thereby releasing valve pin 33 and launching a projectile. Once the momentary pulse to the control valve 30 is stopped by circuit board 63, the electronic circuit is reset to wait for another signal from switch 86 and the gun will load its next projectile. In this manner, the electrical control circuit controls a firing operation of the compressed gas gun.
(19) A description of the gun's operation is now illustrated. The function of the pneumatic sear is best illustrated with reference to
(20) This allows bolt tip 38 to clear the breech area of the body 3, in which stage a projectile 100 moves from the feed tube 6 and rests directly in front of bolt tip 38. The projectile is now chambered and prepared for firing from the breech. The high-pressure compressed gas, which has passed into the valve chamber 36 via high pressure passage 37, is now pushing against valve pin 33 on the rear of piston 32. The seal created by o-ring 70 on valve pin 33 is not broken because the force of the low-pressure gas on the first side of cylinder 31 is sufficient to hold the valve pin 33 rearward.
(21) When trigger 24 is depressed, electro-pneumatic valve 30 is actuated (preferably using a solenoid housed within the manifold 41, shutting off the flow of low-pressure gas to housing 31 and venting the housing 31 via manifold 41. This allows the higher pressure gas, which is already pushing against valve tip 33 from the rear, to drive valve tip 33 forward to the firing position and break the seal 70 against the housing 35. Bolt tip 38, which is connected to piston 32, pushes a projectile forward in the breech and seals the feed tube 6 from compressed gas during the first stage of launch because the valve pin 33 is still passing through valve housing tip 35 during this stage. This prevents gas leakage up the tube 6 and positions the projectile for accurate launch. Once the valve pin 33 clears the housing tip 35, a flow passage D is opened, and the higher pressure gas flows through ports 32a, 38a drilled through the interior of piston 32 and bolt tip 38 and propels the paintball from barrel 10. Note that the piston's 32 movement in the forward direction is limited by contact between the first surface 72 and a shoulder 73 within the cylinder 31.
(22) The signal sent to electro-pneumatic valve 30 is a momentary pulse, so when the pulse ceases, the valve 30 is de-actuated. This allows low-pressure gas to enter cylinder housing 31 and drive valve piston 32 rearwards against the force exerted by high-pressure gas to the seated position and allow loading of the next projectile.
(23) Since piston 32 has a larger surface area on its outside diameter than the surface area on the valve pin 33, low-pressure gas is able to hold high-pressure gas within the valve chamber 36 during the loading cycle of the gun. This is more advantageous than a design where a separate piston is used to actuate a separate valve, because the step of actuating and de-actuating the piston is removed from the launch cycle.
(24) In addition, the pressures of the low pressure gas and high pressure gas may be varied according to user preference, thereby allowing for many variable pneumatic configurations of the gun and reducing problems with erratic cycling caused by using the same gas to control both the recock and launch functions of the gun. Because the mechanical sear is eliminated, the gun is also extremely lightweight and recoil is significantly reduced. The gun is also significantly faster than existing designs because the independent piston operation is eliminated.
(25) In an alternate embodiment, the compressed gas gun can operate at one operating pressure instead of having a high-pressure velocity circuit and a low-pressure recock circuit. This is easily accomplished by adjusting the ratio of the surface sizes of the first surface 72 and the valve pin 33. In this manner, the size of the gun is reduced even more because low-pressure regulator 21 is no longer needed.
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(27) The marker of
(28) When a user removes the mechanical linkage 400 from within the bores 302, 402 as shown in
(29) The locking pin 406 extends through the bores 302, 402 to lock the inline cylinder 314 within the marker bore 300, and prevent motion between the inline cylinder 314 and the marker. As best seen in
(30) It should be appreciated, from
(31) The operation of the inline cylinder 314 during the firing cycle will now be described. The control valve 30 directs low pressure compressed gas from low pressure regulator 21 through manifold 41 through the low pressure passages 374 to bolt chamber 331 allowing gas to contact first surface 332a of piston 332, driving the piston 332 rearward. Rearward movement of the piston 332 moves the valve pin 333 rearwards, which results in a seal between the seal 370 and the valve housing 360. This is considered the loading position because the piston's tip 338 clears the breech 101 and allows a paintball 100 to drop into the breech 101. (This loading position corresponds to the bolt position in
(32) Meanwhile, high pressure gas from the high pressure regulator flows through high pressure passage 341, then through cylinder channels 339, through governor channels 382, into the governor chamber 380, through firing chamber channels 384, and into the firing chamber 308. The low pressure compressed gas drives the piston 332 rearward, overcoming high-pressure gas pressure on valve pin 333 because the surface area of first surface 332a of piston 332 is larger than that of the surface area 333a of valve pin 333. In this loading position shown in
(33) As with the embodiment of
(34) The function of the inline cylinder 314 and gas governor 380 can best be appreciated in
(35) This high pressure cutoff results in a faster loading cycle, which begins when the normally open valve low pressure valve reopens and low pressure gas acts on the forward surface 332a of bolt 332. The cycle is faster because it does not have to overcome high pressure gas in the firing chamber 308 as the low pressure gas drives bolt 332 rearward, since there is no or little high pressure gas in the firing chamber 308. As the low pressure gas drives the bolt 332 rearward, the valve 333 engages the gas governor pin 386 and drives it backwards to its position in
(36) The length of the governor pin 386 can also be manipulated to change the timing of the opening and closing of the governor without affecting the firing cycle.
(37) While the present invention is described as a variable pneumatic sear for a paintball gun, it will be readily apparent that the teachings of the present invention can also be applied to other fields of invention, including pneumatically operated projectile launching devices of other types. In addition, the gun may be modified to incorporate a mechanical or pneumatic control circuit instead of an electronic control circuit, for instance a pulse valve or manually operated valve, or any other means of actuating the pneumatic sear.
(38) It will be thus seen that the objects set forth above, and those made apparent from the preceding description, are attained. It will also be apparent to those skilled in the art that changes may be made to the construction of the invention without departing from the spirit of it. It is intended, therefore, that the description and drawings be interpreted as illustrative and that the following claims are to be interpreted in keeping with the spirit of the invention, rather than the specific details. set forth.
(39) It is also to be understood that the following claims are intended to cover all the generic and specific features of the invention herein described and all statements of the scope of the invention that, as a matter of language, might be said to fall therebetween.