GAS POWERED GUN AND A PRESSURE TUBE FOR A GAS POWERED GUN
20170336169 · 2017-11-23
Inventors
Cpc classification
F41B11/723
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41B11/723
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/724
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gas powered gun and a pressure tube for a gas powered gun each comprises a gas regulator between a pressure chamber and a source of compressed gas. The gas regulator comprises a body forming first and second cylindrical portions connected to each other. The first cylindrical portion is in fluid connection with the pressure chamber. A piston is mounted for sliding movement in the first and second cylindrical portions. A valve seat is in the second cylindrical portion. An intermediate chamber is in the second cylindrical portion between the piston and the valve seat and in fluid connection with the source of compressed gas. A passageway through the piston connects the pressure chamber with the intermediate chamber. A biasing member presses the piston resiliently away from the valve seat. A valve seat adjusting mechanism is accessible to a user for adjusting a position of the valve seat.
Claims
1. A gas powered gun comprising: a pressure chamber; and a gas regulator, which is arranged between said pressure chamber and a source of compressed gas; said gas regulator comprising: a body, forming a first cylindrical portion and a second cylindrical portion, which are connected to each other, a diameter of said first cylindrical portion being greater than a diameter of said second cylindrical portion, said first cylindrical portion being in fluid connection with said pressure chamber; a piston mounted for sliding movement in said first and said second cylindrical portions; a first sealing member, which seals between a large diameter portion of said piston and said first cylindrical portion; a second sealing member which seals between a small diameter portion of said piston and said second cylindrical portion; a valve seat sealingly arranged in said second cylindrical portion, wherein the valve seat is sealed against the inner wall of the body by two axially displaced sealing elements; an intermediate chamber formed in said second cylindrical portion between said piston and said valve seat; a fluid connection between said intermediate chamber and said source of compressed gas, said fluid connection including: a channel through the valve seat which channel has a first opening facing the piston and a second opening between the two sealing elements, and a channel through the body having an opening between the two sealing elements; a passageway extending through said piston and connecting said pressure chamber with said intermediate chamber; a biasing member pressing said piston resiliently away from said valve seat; and a valve seat adjusting mechanism which adjusts a position of the valve seat, wherein said valve seat adjusting mechanism is accessible to a user without removing said regulator from said gas powered gun; wherein said piston is subject to a first force created by pressure in said pressure chamber, and a second force created by pressure in said source of compressed gas, and said piston is movable against the action of the biasing member from a first position, in which said piston is separated from said valve seat so that said passageway is open to allow gas to flow from said source of compressed gas via said intermediate chamber into said pressure chamber, to a second position, in which said piston abuts said valve seat so that said passageway is closed, so that, when said piston is in its first position, pressure increases in said pressure chamber until said first force exceeds a sum of said second force and a spring force of said biasing member, to thereby move said piston to its second position, said spring force being dependant on the position of the valve seat.
2. The gas powered gun of claim 1, wherein said valve seat adjusting mechanism is arranged in said second cylindrical portion.
3. The gas powered gun of claim 1, wherein said valve pressure adjusting mechanism comprises a threaded portion and said second cylindrical portion comprises a matching threaded portion and said valve pressure adjusting mechanism is adapted to be screwed into and out of said threaded portion in said second cylindrical portion.
4. The gas powered gun of claim 3, wherein said threaded portion of said valve pressure adjusting mechanism comprises a tool engaging part, which is accessible to a user without removing the regulator from said gas powered gun.
5. The gas powered gun of claim 2, wherein said valve seat moves to at least a first position when said valve pressure adjusting mechanism is moved in a direction into said second cylinder portion and said valve seat is adapted to move to at least a second position when said valve pressure adjusting mechanism is moved in an opposite direction.
6. The gas powered gun of claim 1, wherein said valve seat comprises a piston abutting portion and a valve seat adjusting mechanism connection part.
7. The gas powered gun of claim 6, wherein said piston abutting portion is made of plastic.
8. The gas powered gun of claim 1, wherein said biasing member is arranged in said first cylindrical portion between said large diameter portion of said piston and an annular portion between said first and said second cylindrical portions.
9. The gas powered gun of claim 1, wherein said biasing member comprises one or more spring discs.
10. The gas powered gun of claim 1, wherein said body further comprises an atmospheric passage extending between an opening to the atmosphere and said first and said second cylindrical portions between said first and said second sealing members.
11. The gas powered gun of claim 1, wherein said source of compressed gas is a bottle or a tube comprising compressed gas.
12. The gas powered gun of claim 1, wherein said gas powered gun further comprises a barrel adapted to receive a projectile and an open-close valve for exhausting compressed gas from said pressure chamber to discharge a projectile in the barrel.
13. (canceled)
14. The gas powered gun of claim 1, wherein the first opening is centrally located on an upper surface of the valve seat, and said passage-way has an opening into the chamber at a distance from a central axis of the piston.
15. A pressure tube for a gas powered gun comprising: a volume adapted to be connected to a pressure chamber; and a gas regulator, which is arranged between said volume and a source of compressed gas; said gas regulator comprising: a body, forming a first cylindrical portion and a second cylindrical portion, which are connected to each other, a diameter of said first cylindrical portion being greater than a diameter of said second cylindrical portion, said first cylindrical portion being in fluid connection with said pressure chamber; a piston mounted for sliding movement in said first and said second cylindrical portions; a first sealing member, which seals between a large diameter portion of said piston and said first cylindrical portion; a second sealing member which seals between a small diameter portion of said piston and said second cylindrical portion; a valve seat sealingly arranged in said second cylindrical portion, wherein the valve seat is sealed against the inner wall of the body by two axially displaced sealing elements; an intermediate chamber formed in said second cylindrical portion between said piston and said valve seat; a fluid connection between said intermediate chamber and said source of compressed gas, said fluid connection including: a channel through the valve seat which channel has a first opening facing the piston and a second opening between the two sealing elements, and a channel through the body having an opening between the two sealing elements; a passageway extending through said piston and connecting said pressure chamber with said intermediate chamber; a biasing member pressing said piston resiliently away from said valve seat; and a valve seat adjusting mechanism which adjusts a position of the valve seat, wherein said valve seat adjusting mechanism is accessible to a user without removing said regulator from said pressure tube; wherein said piston is subject to a first force created by pressure in said pressure chamber, and a second force created by pressure in said source of compressed gas, and said piston is movable against the action of the biasing member from a first position, in which said piston is separated from said valve seat so that said passageway is open to allow gas to flow from said source of compressed gas via said intermediate chamber into said pressure chamber, to a second position, in which said piston abuts said valve seat so that said passageway is closed, so that, when said piston is in its first position, pressure increases in said pressure chamber until said first force exceeds a sum of said second force and a spring force of said biasing member, to thereby move said piston to its second position, said spring force being dependant on the position of the valve seat.
16. The pressure tube of claim 15, wherein said valve seat adjusting mechanism is arranged in said second cylindrical portion.
17. The pressure tube of claim 15, wherein said valve pressure adjusting mechanism comprises a threaded portion and said second cylindrical portion comprises a matching threaded portion and said valve pressure adjusting mechanism is adapted to be screwed into and out of said threaded portion in said second cylindrical portion.
18. The pressure tube of claim 17, wherein said threaded portion of said valve pressure adjusting mechanism comprises a tool engaging part, which is accessible to a user without removing the regulator from said pressure tube.
19. The pressure tube of claim 16, wherein said valve seat moves to at least a first position when said valve pressure adjusting mechanism is moved in a direction into said second cylinder portion and said valve seat is adaptive to move to at least a second position when said valve pressure adjusting mechanism is moved in an opposite direction.
20. The pressure tube of claim 15, wherein said valve seat comprises of a piston abutting portion and a valve seat adjusting mechanism connection part.
21. The pressure tube of claim 20, wherein said piston abutting portion is made of plastic.
22. The pressure tube of claim 15, wherein said biasing member is arranged in said first cylindrical portion between said large diameter portion of said piston and an annular portion between said first and said second cylindrical portions.
23. The pressure tube of claim 15, wherein said biasing member comprises one or more spring discs.
24. The pressure tube of claim 15, wherein said body further comprises an atmospheric passage extending between an opening to the atmosphere and said first and said second cylindrical portions between said first and said second sealing members.
25. (canceled)
26. The pressure tube of claim 15, wherein the first opening is centrally located on an upper surface of the valve seat, and said passage-way has an opening into the chamber at a distance from a central axis of the piston.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0049] The above, as well as additional objects, features and advantages of the present disclosure, will be better understood through the following illustrative and non-limiting detailed description of exemplary embodiments of the present disclosure, with reference to the appended drawings, where the same reference numerals will be used for similar elements, wherein:
[0050]
[0051]
[0052]
[0053]
[0054]
[0055]
[0056] All the figures are highly schematic, not necessarily to scale, and they show only parts which are necessary in order to elucidate the invention, other parts being omitted or merely suggested.
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0057] Embodiments of the present disclosure will be described in more detail in the following with reference to the accompanying drawings.
[0058]
[0059] The gun 1 further comprises an open-close valve 8, which is arranged in the pressure chamber 11 for allowing passage of compressed gas from the bottle 2 to the space 10 immediately behind the bullet 12 in the barrel 4, and a sliding hammer 9, which actuates the open-close valve 8 at the moment of firing. When the gun is in a loaded position the hammer 9 is biased towards the valve 8 by a biasing spring 13, and is held in a loaded position, against the force of the biasing spring 13, by a catch 14 (see
[0060] In the illustrated example, the open-close valve 8 has a main body oriented essentially in the longitudinal direction of the gun 1, and comprises a valve head 8a adapted to cooperate with an opening of the pressure chamber 11 in front of the valve 8, the opening thus acting as a valve seat 8b. The pressure inside the pressure chamber 11 keeps the valve head 8a in place against the valve seat 8b, thus effectively sealing the pressure chamber 11. The valve head 8a is additionally biased against the valve seat 8b by a biasing spring 18. Another channel 19 connects a passage 16 behind the valve seat 8b with the space 10 behind a bullet 12 in the barrel 4. When the hammer 9 is released it is forced by the spring 13 into contact with a portion 96, to which said valve head 8a is a part of. This is shown in
[0061]
[0062]
[0063] The body 21 has an outer cylindrically stepped shaped form. The body 21 is provided with an externally threaded portion 22, which allows the regulator 20 to be screwed into the gas powered gun 1 until it reaches an annular flange 71 on the regulator body 21, since the gun 1 is provided with a corresponding bore with which the externally threaded portion 42 engages. Part of the regulator is arranged inside the body 3 of the gun, and part of the regulator is arranged outside the body 3. However, this is not necessary. The body 21 comprises a first cylindrical portion 24 with a first opening 23 and a second cylindrical portion 25, which is arranged coaxial with the first cylindrical portion, which together define an inner cylinder in which the piston 30 is mounted for sliding movement. The first cylindrical portion 24 extends from said first opening 23 in a predetermined distance into said body 21 and the second cylindrical portion 25 extends from the bottom of the first cylindrical portion into said body 21 and through to the other end of the regulator body 21, forming a second opening 73. It is noted that part of the body 21 may be formed directly in the material of the body 3 of the gun. For example, the first cylindrical portion 24 may be formed in the gun body 3, and the second cylindrical portion 25 in the regulator body 21, as shown e.g. in the embodiment in
[0064] The first cylindrical portion 24, which is in connection with the pressure chamber 11 in
[0065] A bore 90 in the body 21 is connected to a passage in the regulator body (not shown) which affords communication between the ambient atmosphere (or any other external reference pressure) and the cylinder portion, at a point between the 0-rings 41, 42.
[0066] The regulator 20 also comprises a valve seat 50, which is arranged in the second cylindrical portion 25. The valve seat 50 comprises an end surface 55 which will abut the piston 30 and its end surface 34. In
[0067] The piston 30 is mounted for sliding movement in the two cylinder portions 24, 25, and the passageway 33 in the piston connects the first opening 23 and the third opening 28 in the body 21. At the same time it connects the pressure chamber 11 with the intermediate chamber 51 in the regulator 20. The function of the spring discs 40 are to bias the piston 30 resiliently into the intermediate chamber 51 and towards the valve seat 50. The valve seat 50 is made of two parts connected to each other. The first part 52 is a piston abutting portion, which comprises the end surface 55. The piston abutting portion is made of plastic, which the piston 30 will abut. The second part 53 is a valve seat adjusting mechanism connection part. These two parts may be fixedly connected to each other, for example screwed together, or loosely connected to each other. The valve seat 50 is provided with an O-ring 54, which seals between the valve seat 50 and the second cylindrical portion 25. The O-ring 54 is arranged to the valve seat adjusting mechanism connection part 53. A valve pressure adjusting mechanism 60 is connected to the valve seat 50. The valve pressure adjusting mechanism 60 comprises a threaded portion 61 which is screwed into a threaded portion 29 in the second cylindrical portion 25 of the regulator 20. The threaded portion 61 is at the end facing the valve seat 50 provided with a valve seat contacting protrusion 62. On the other end the threaded portion has a tool engaging portion 63 of type: slot, bolt, pozidriv, square, Robertson, torx or secure torx, hex socket or allen key, security hex, Phillips, square double, triple double, polydrive, spline drive, double hex, Bristol or pentalobular or any other possible design, which allows, for example, a screw driver to connect to the tool engaging portion. The screwdriver is then inserted into the second opening 73 of the regulator 20.
[0068] The regulator 20 operates as follows. The forces acting on the piston to urge it upwards are the spring force of the spring discs 40 and the high pressure gas from the bottle 2 in
[0069] When the shot is fired the air pressure in the pressure chamber 11 drops and the biasing springs 40 lift the piston 30 off its seat allowing high pressure air to flow into the pressure chamber 11 once again and the cycle is repeated.
[0070] In order to change the force on the piston 30 created by the pressure inside the pressure chamber 11 the valve seat 50 is movable by using the valve seat adjusting mechanism 60. When the valve seat adjusting mechanism 60 is screwed into the second cylinder portion 25, the valve seat 50 is pushed and hence moved closer to the piston 30 and its piston end 34.
[0071]
[0072] The regulator 20′ has a slightly different design and is connected to the tube 80 a bit differently than to the body of the gun 1 as explained and shown in
[0073] The regulator body 21′ also comprises the passage 27 and the bore 90 (not shown in
[0074] A piston 30 having the same design as the piston shown in
[0075] The valve seat 50 and the valve seat adjusting mechanism 60 are made in one single part 64, however the function is the same as the valve seat 50 and the valve seat adjusting mechanism 60 shown in
[0076] Further, an insert 91 is arranged in the opening 93 in the gun 1 and seals the opening. A pressure gauge 92 is arranged in order to check the pressure in the pressure chamber 11. The pressure gauge 92 is used to check the pressure inside the pressure chamber 11, for example, when the regulator is being adjusted.
[0077]
[0078] The regulator 20″ is here illustrated as arranged in the body 3 of the gun and connected to the pressure chamber and the source of compressed gas in the same way as the regulator in
[0079] The regulator 20″ in
[0080] The regulator body 21′ comprises the passage 27, which connects the intermediate chamber 51 with the passage 16, which connects with the gas source. The body 3 also comprises the bore 90 (not shown in
[0081] A piston 30′ having a similar design as the piston shown in
[0082] Also like the piston 30 in
[0083] The diameter of the second portion 33b is here smaller than the diameter of the first central portion 33a. By way of example, first central portion 33a may have a diameter D1 of 1.5 mm+/−0.5 mm.
[0084] The regulator 20″ has a valve seat 50′ arranged in the second cylindrical portion 25, which valve seat is adjustable by means of a adjusting mechanism 60. Similar to the embodiment in
[0085] In this embodiment, however, the valve seat has a channel 56 having a first opening 56a centrally in the upper end surface, and a second opening 56b in the side wall. The channel 56 is here L-shaped, but may have any suitable shape. The channel 56 ensures a fluid connection between the with the passage 27 (leading to the passage 16 in the gun body 3) and the channel 100.
[0086] Sealing elements, here in the form of O-rings 54a, 54b, are arranged above and below the second opening 56b, so as to seal a section of the valve seat 50 against the inner walls of the body 21′. This ensures a pressure tight connection from the channel 27, via the channel 56, to the intermediate chamber 51. It should be noted that this connection is ensured as long as the channel 27 meets the valve seat 50′ at a position between the two O-rings 54a, 54b. In particular, it is not necessary that the opening 56b faces the channel 27, as indicated in
[0087] In use, when the pressure in the high pressure chamber (not shown in
[0088] As the opening 56a is much smaller than the total cross section of the intermediate chamber 51, the force required to be applied to the piston in order to close the fluid connection is smaller, and the biasing arrangement 40 may be less powerful.
[0089] On the opposite end to the end surface 55 of the valve seat a tool engaging portion 63″ is arranged. The tool engaging portion 63″ may be of the type: slot, bolt, pozidriv, square, Robertson, torx or secure torx, hex socket or allen key, security hex, Phillips, square double, triple double, polydrive, spline drive, double hex, Bristol or pentalobular or any other possible design, which allows, for example, a screw driver to connect to the tool engaging portion. In order to move the valve seat 50′, i.e. to regulate the gun in a similar way as described in connection with
[0090] The disclosure has mainly been described above with reference to a few embodiments. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the present disclosure, as defined by the appended patent claims.