Air gun control assembly and air gun thereof

By adding cylinder, piston and air chamber components to the air gun, the air pressure in the cylinder is used to continuously drive high-pressure gas into the barrel, the problems of slow shooting speed and inconsistent accuracy of existing air guns are solved, and the consistency of multiple shooting accuracy and improvement of shooting speed are achieved.

CN119983932APending Publication Date: 2025-05-13ZHUHAI QIANGYUAN SPORTSGOODS CO LTD
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Patent Information

Application Number
CN202510209251.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

The existing air guns require manual compression hammer to be loaded again, resulting in a slow shooting speed; and the opening time of the high-pressure air valve changes with the gas pressure in the cylinder, resulting in a difference in the air pressure in the barrel during each shot, and the shooting accuracy is inconsistent.

Method used

By adding cylinder, piston and air chamber components, the piston and hammer are driven by the air pressure in the cylinder, the high-pressure gas enters the barrel constantly, ensuring the constant air pressure in the barrel, thereby improving the shooting accuracy.

Benefits of technology

The consistency of the multiple shooting accuracy of the air gun is achieved, the shooting speed and accuracy are improved, and the air pressure in the barrel is constant during each shooting.

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Abstract

The invention provides an air gun control assembly and an air gun thereof.The air gun control assembly comprises an air cylinder located on one side of a gun barrel, the gun barrel is provided with a first through hole, and the side face of the air cylinder is provided with a second through hole communicating with the first through hole; the piston is connected to the inner wall of the air cylinder through a first spring, is sealed on the lower side of the second through hole, and is driven by the compressed gas to compress the first spring and release the sealing state of the second through hole; the air chamber assembly is located on the front side of the piston, comprises an air supply bottle used for providing compressed air, an air chamber valve and a second spring and is provided with a third through hole communicated with the air cylinder, and the air chamber valve is sealed in the third through hole under the action of the second spring and the compressed air; the driving hammer is located on the rear side of the air cylinder, and a third spring is arranged on the rear side and can drive the air chamber valve to compress the second spring to relieve the sealing state of the third through hole. According to the technical scheme of the embodiment, the accuracy of multiple times of shooting can be kept consistent, automatic loading of the driving hammer is achieved, and multiple times of shooting operation is executed.
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Description

Technical Field

[0001] The invention belongs to the technical field of sports equipment, and in particular relates to an air gun control component and an air gun thereof. Background Art

[0002] In the prior art, an airgun includes a trigger, a hammer, a barrel, a high-pressure gas cylinder, and a high-pressure gas valve. The trigger is located below the hammer, the hammer is located on one side of the high-pressure gas valve, and the high-pressure gas valve is located between the high-pressure gas cylinder and the barrel. When the trigger is pulled, the trigger drives the hammer, and the hammer moves to drive the high-pressure valve to open, so that the high-pressure gas in the high-pressure gas cylinder directly enters the barrel, and the high-pressure gas pushes the projectile in the barrel to be fired from the barrel. At the same time as the projectile is fired, the high-pressure valve is closed, completing an airgun shooting process. Before the next firing, the hammer needs to be manually compressed again.

[0003] However, since the hammer needs to be manually compressed to reload the gun, the overall shooting speed is slow; and as the gas pressure in the gas cylinder changes, the time it takes to open the high-pressure gas valve through the hammer also changes, resulting in differences in the gas pressure in the barrel each time the gun is shot, and the shooting accuracy of the air gun is inconsistent each time the gun is shot. Summary of the invention

[0004] The embodiment of the present invention provides an air gun control component and an air gun thereof. By adding a cylinder, a piston and an air chamber component, after the trigger is pulled, when the air pressure in the cylinder is greater than the elastic force of the first spring, the piston moves backward to allow high-pressure gas to enter the barrel, and the air pressure in the cylinder is reduced. When the air pressure in the cylinder is less than the elastic force of the first spring, the first spring drives the piston to move until the piston is sealed in the second through hole, and the high-pressure gas cannot enter the barrel. When executing the shooting operation, the air pressure inside the barrel is constant, thereby ensuring that the air gun has the same accuracy in multiple shootings. In addition, the air pressure in the cylinder will act on the hammer at the same time, and the hammer will release the sealing state of the third through hole by driving the air chamber valve to move. In the process of compressed gas entering the cylinder, the hammer is moved backward by the gas pressure, compressing the third spring, and the hammer returns to the loaded state.

[0005] In a first aspect, an embodiment of the present invention provides an air gun control assembly, the air gun control assembly comprising a gun barrel, and further comprising:

[0006] A cylinder, wherein the cylinder is located at one side of the gun barrel, the gun barrel is provided with a first through hole, a side surface of the cylinder is provided with a second through hole, and the second through hole is connected to the first through hole;

[0007] A piston, the piston is connected to the inner wall of the cylinder through a first spring, the piston is sealed at the lower side of the second through hole, and the piston compresses the first spring and releases the sealing state of the second through hole when driven by compressed gas;

[0008] An air chamber assembly, the air chamber assembly is located at the front side of the piston, the air chamber assembly includes an air supply bottle, an air chamber valve and a second spring, the air chamber assembly is provided with a third through hole, the third through hole is connected to the cylinder, the air chamber valve is sealed to the third through hole under the elastic action of the second spring and the pressure of the compressed gas, and the air supply bottle is used to provide the compressed gas;

[0009] A hammer, wherein the hammer is located at the rear side of the cylinder, a third spring is arranged at the rear side of the hammer, and the hammer can drive the air chamber valve to compress the second spring, and the hammer is used to release the sealing state of the third through hole.

[0010] According to some embodiments of the present invention, the air chamber assembly includes a first fixed block and a second fixed block, the second fixed block is fixed to the cylinder, the first fixed block is fixed between the gas supply bottle and the second fixed block, the second fixed block is provided with the third through hole, the first fixed block and the second fixed block form an air chamber, and the air chamber is connected to the cylinder through the third through hole.

[0011] According to some embodiments of the present invention, a first transmission rod integrally formed with the air chamber valve is provided at one end of the air chamber valve close to the hammer, one end of the second spring is fixed to the first fixed block, and the other end is fixed to the air chamber valve, and the hammer releases the sealing state of the third through hole through the first transmission rod.

[0012] According to some embodiments of the present invention, the first fixed block is provided with a fourth through hole, the fourth through hole is connected to the gas supply bottle, and the end of the air chamber valve away from the hammer is provided with a second transmission rod integrally formed with the air chamber valve, and the second transmission rod can move in the fourth through hole.

[0013] According to some embodiments of the present invention, it also includes: a trigger assembly, wherein the trigger assembly is located below the hammer, a groove is provided on the lower side of the hammer, the trigger assembly includes a first protrusion, and when the first protrusion abuts against the groove, the third spring is in a compressed state.

[0014] According to some embodiments of the present invention, the trigger assembly includes a first transmission block and a second transmission block, the first transmission block is located below the second transmission block, and when the first transmission block rotates, the first protrusion moves in a direction away from the groove.

[0015] According to some embodiments of the present invention, a fourth spring is disposed below one end of the second transmission block where the first protrusion is disposed, and when the second transmission block is rotating, the fourth spring is in a compressed state.

[0016] According to some embodiments of the present invention, a second protrusion is provided at one end of the first transmission block close to the second transmission block, and the first transmission block drives the second transmission block to rotate via the second protrusion.

[0017] According to some embodiments of the present invention, the number of the pistons is two, and the pistons are located on both sides of the hammer.

[0018] In a second aspect, an embodiment of the present invention further provides an air gun, comprising the air gun control assembly as described in the first aspect.

[0019] The embodiment of the present invention includes: a cylinder, the cylinder is located at one side of the barrel, the barrel is provided with a first through hole, the side of the cylinder is provided with a second through hole, and the second through hole is connected to the first through hole; a piston, the piston is connected to the inner wall of the cylinder through a first spring, the piston is sealed at the lower side of the second through hole, and the piston compresses the first spring and releases the sealing state of the second through hole when driven by compressed gas; an air chamber assembly, the air chamber assembly is located at the front side of the piston, the air chamber assembly includes a gas supply bottle, an air chamber valve and a second spring, the air chamber assembly is provided with a third through hole, the third through hole is connected to the cylinder, the air chamber valve is sealed to the third through hole under the elastic action of the second spring and the pressure of the compressed gas, and the gas supply bottle is used to provide the compressed gas; a hammer, the hammer is located at the rear side of the cylinder, the rear side of the hammer is provided with a third spring, the hammer can drive the air chamber valve to compress the second spring, and the hammer is used to release the sealing state of the third through hole. According to the technical solution of this embodiment, by adding a cylinder, a piston and an air chamber assembly, after pulling the trigger, when the air pressure in the cylinder is greater than the elastic force of the first spring, the piston moves backward to allow high-pressure gas to enter the barrel, and the air pressure in the cylinder decreases. When the air pressure in the cylinder is less than the elastic force of the first spring, the first spring drives the piston to move until the piston is sealed in the second through hole, and the high-pressure gas cannot enter the barrel. When performing a shooting operation, the air pressure inside the barrel is constant, thereby ensuring that the accuracy of multiple shots of the air gun is the same. In addition, the air pressure in the cylinder will act on the hammer at the same time, and the hammer drives the air chamber valve to move to release the sealing state of the third through hole. In the process of compressed gas entering the cylinder, the hammer is moved backward by the gas pressure, compressing the third spring, and the hammer returns to the loaded state. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a cross-sectional schematic diagram of an air gun control assembly provided by one embodiment of the present invention;

[0021] Figure 2 It is a cross-sectional schematic diagram of an air chamber assembly provided by another embodiment of the present invention. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical solution and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0023] It should be noted that, although the functional modules are divided in the device schematic diagram and the logical order is shown in the flowchart, in some cases, the steps shown or described may be performed in a different order than the module division in the device or the order in the flowchart. The terms "first", "target" and the like in the specification, claims or the above drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence.

[0024] The embodiment of the present invention includes: a cylinder, the cylinder is located at one side of the barrel, the barrel is provided with a first through hole, the side of the cylinder is provided with a second through hole, and the second through hole is connected to the first through hole; a piston, the piston is connected to the inner wall of the cylinder through a first spring, the piston is sealed at the lower side of the second through hole, and the piston compresses the first spring and releases the sealing state of the second through hole when driven by compressed gas; an air chamber assembly, the air chamber assembly is located at the front side of the piston, the air chamber assembly includes a gas supply bottle, an air chamber valve and a second spring, the air chamber assembly is provided with a third through hole, the third through hole is connected to the cylinder, the air chamber valve is sealed to the third through hole under the elastic action of the second spring and the pressure of the compressed gas, and the gas supply bottle is used to provide the compressed gas; a hammer, the hammer is located at the rear side of the cylinder, the rear side of the hammer is provided with a third spring, the hammer can drive the air chamber valve to compress the second spring, and the hammer is used to release the sealing state of the third through hole. According to the technical solution of this embodiment, by adding a cylinder, a piston and an air chamber assembly, after pulling the trigger, when the air pressure in the cylinder is greater than the elastic force of the first spring, the piston moves backward to allow high-pressure gas to enter the barrel, and the air pressure in the cylinder decreases. When the air pressure in the cylinder is less than the elastic force of the first spring, the first spring drives the piston to move until the piston is sealed in the second through hole, and the high-pressure gas cannot enter the barrel. When performing a shooting operation, the air pressure inside the barrel is constant, thereby ensuring that the accuracy of multiple shots of the air gun is the same. In addition, the air pressure in the cylinder will act on the hammer at the same time, and the hammer drives the air chamber valve to move to release the sealing state of the third through hole. In the process of compressed gas entering the cylinder, the hammer is moved backward by the gas pressure, compressing the third spring, and the hammer returns to the loaded state.

[0025] Reference Figure 1 and Figure 2 , the air gun control assembly provided in this embodiment includes:

[0026] The cylinder 21 is located at one side of the barrel 10. The barrel 10 is provided with a first through hole 11. The side of the cylinder 21 is provided with a second through hole 21. The second through hole 21 is connected to the first through hole 11.

[0027] The piston 30 is connected to the inner wall of the cylinder 21 through the first spring 31. The piston 30 is sealed at the lower side of the second through hole 21. The piston 30 compresses the first spring 31 and releases the sealing state of the second through hole 21 when driven by the compressed gas.

[0028] The air chamber assembly is located at the front side of the piston 30. The air chamber assembly includes a gas supply bottle 40, a gas chamber valve 51 and a second spring 52. The gas chamber assembly is provided with a third through hole 53. The third through hole 53 is connected to the cylinder 21. The gas chamber valve 51 is sealed in the third through hole 53 under the elastic action of the second spring 52 and the pressure of the compressed gas. The gas supply bottle 40 is used to provide compressed gas.

[0029] The hammer 60 is located at the rear side of the cylinder 21 . A third spring 62 is provided at the rear side of the hammer 60 . The hammer 60 can drive the air chamber valve 51 to compress the second spring 52 . The hammer 60 is used to release the sealing state of the third through hole 53 .

[0030] It should be noted that, in order to launch the projectile in the barrel 10 through gas, the gas in the gas supply bottle 40 is high-pressure compressed gas, and the gas supply bottle 40 provides gas to the gas chamber assembly, and the gas enters the cylinder 21 when the seal of the third through hole 53 is released, and the gas enters the barrel 10 from the cylinder 21 when the barrel 10 is connected to the cylinder 21. In order to achieve a better shooting effect, the gas supply bottle 40 provides compressed gas at a constant pressure, and the force of the constant-pressure gas on the bullet in the barrel is more stable, further improving the shooting accuracy of the air gun.

[0031] It should be noted that a third spring 62 is provided on the rear side of the hammer 60. Before the air gun is fired, the third spring 62 is in a compressed state. When the air gun is fired, the elastic force generated by the third spring 62 in the compressed state drives the hammer 60 to move forward, thereby applying a forward force to the air chamber valve 51, so that the hammer 60 drives the air chamber valve 51 to move forward, thereby releasing the sealing state of the third through hole 53. When the air chamber valve 51 moves forward, the second spring 52 is in a compressed state, and the second spring 52 generates an elastic force on the air chamber valve 51; when the hammer 60 has no force on the air chamber valve 51, under the elastic action of the second spring 52 and the pressure of the compressed gas, the air chamber valve 51 is reset, and the air chamber valve 51 is sealed in the third through hole 53.

[0032] It should be noted that when the air chamber valve 51 moves forward, the gas enters the cylinder 21 from the air chamber assembly, the air pressure in the cylinder 21 increases, pushing the hammer 60 to move backward, and under the action of the air pressure in the cylinder 21, the hammer 60 is reset and the third spring 62 is in a compressed state.

[0033] It should be noted that, when the air chamber valve 51 moves forward, the gas enters the cylinder 21 from the air chamber assembly, the gas pressure in the cylinder 21 increases, pushing the piston 30 to move backward, the first spring 31 is in a compressed state, and the first spring 31 generates a forward elastic force on the piston 30; when the gas pressure is greater than the elastic force of the first spring 31, the piston 30 moves backward, and after the piston 30 moves backward for a distance, the piston 30 releases the sealing state of the second through hole 21 under the action of the gas pressure, and the gas enters the barrel 10 from the cylinder 21, and the gas pressure in the cylinder 21 decreases. When the gas pressure in the cylinder 21 is less than the elastic force of the first spring 31, the piston 30 moves forward, and when the piston 30 is re-sealed at the lower side of the second through hole 21, the cylinder 21 is not connected to the barrel 10, and the gas cannot enter the barrel 10. By providing the piston 30 and the first spring 31 , the air pressure entering the barrel 10 is equal to the elastic force of the first spring 31 when the sealing state of the second through hole 21 is released, thereby ensuring that the air pressure in the barrel 10 is constant during multiple shootings.

[0034] It should be noted that the gas enters the gun barrel 10 from the gas cylinder 21 , the gas pressure in the gun barrel 10 increases, and the projectile in the gun barrel 10 is launched by the high gas pressure in the gun barrel 10 .

[0035] It should be noted that sealing rubber rings are provided on the inner and outer sides of the piston 30 to ensure the sealing of the piston 30 and prevent the gas pressure in the cylinder 21 from entering the barrel 10 when the gas pressure does not reach the pressure balanced with the first spring 31, resulting in inaccurate shooting accuracy of the barrel 10.

[0036] It should be noted that the gas supply bottle 40 replenishes gas to the gas chamber assembly, and there is gas in the gas chamber assembly; the third spring 62 drives the hammer 60 to move, the hammer 60 drives the gas chamber valve 51 to move, the second spring 52 is compressed, the gas chamber assembly is connected to the cylinder 21 through the third through hole 53, and the gas enters the cylinder 21; the air pressure in the cylinder 21 pushes the hammer 60 to move, so that the hammer 60 is reset, and the third spring 62 is in a compressed state; the second spring 52 drives the gas chamber valve 51 to move, so that the gas chamber valve 51 is reset, and the gas chamber valve 51 is sealed in the third through hole 53; the gas inside the cylinder 21 The pressure is greater than the elastic force generated by the first spring 31 in the compressed state, and the gas pressure in the cylinder 21 pushes the piston 30 to move, compressing the first spring 31 and releasing the sealing state of the second through hole 21, so that the gas enters the barrel 10, and the projectile in the barrel 10 is fired by the gas; after the gas enters the barrel 10 from the cylinder 21, the gas pressure inside the cylinder 21 is less than the elastic force generated by the first spring 31 in the compressed state, and the first spring 31 drives the piston 30 to move forward. Under the action of the first spring 31, the piston 30 is sealed at the lower side of the second through hole 21, and the piston 30 is reset. Through the present application, when the gas pressure in the cylinder 21 is equal to the elastic force generated by the first spring 31 when the piston 30 releases the sealing state of the second through hole 21, the gas can enter the barrel 10, thereby achieving a constant gas pressure in the barrel 10 when multiple shooting operations are performed through the air gun, thereby maintaining consistent accuracy of multiple shootings. In addition, the gas pressure in the cylinder 21 will act on the hammer 60 at the same time, and the hammer 60 drives the air chamber valve 51 to move to release the sealing state of the third through hole 53. In the process of compressed gas entering the cylinder 21, the hammer 60 is moved backward by the gas pressure, compressing the third spring 62, and the hammer 60 returns to the loaded state.

[0037] In addition, in one embodiment, referring to Figure 1 and Figure 2 The air chamber assembly includes a first fixed block 55 and a second fixed block 56, the second fixed block 56 is fixed to the cylinder 21, the first fixed block 55 is fixed between the gas supply bottle 40 and the second fixed block 56, the second fixed block 56 is provided with a third through hole 53, the first fixed block 55 and the second fixed block 56 form an air chamber 57, and the air chamber 57 is connected to the cylinder 21 through the third through hole 53.

[0038] It should be noted that the gas entering the air chamber assembly from the gas supply bottle 40 is stored in the air chamber 57, and the third through hole 53 of the air chamber 57 is connected to the cylinder 21, so that when the air chamber valve 51 is released from the seal of the third through hole 53, the gas in the air chamber 57 enters the cylinder 21.

[0039] It should be noted that the gas supply bottle 40 and the second fixing block 56 together form a groove 61, and the first fixing block 55 is clamped in the groove 61. Because the gas is high-pressure gas, the gas supply bottle 40 is prevented from entering the gas chamber 57 when the gas chamber assembly moves backward, causing the gas chamber assembly to push the piston 30 to move, thereby affecting the gas pressure entering the barrel 10.

[0040] In addition, in one embodiment, referring to Figure 1 and Figure 2 A first transmission rod 511 integrally formed with the air chamber valve 51 is provided at one end of the air chamber valve 51 close to the hammer 60. One end of the second spring 52 is fixed to the first fixed block 55, and the other end is fixed to the air chamber valve 51. The hammer 60 releases the sealing state of the third through hole 53 through the first transmission rod 511.

[0041] It should be noted that the air chamber valve 51 is located inside the air chamber 57. When the air chamber valve 51 is sealed in the third through hole 53, the first transmission rod 511 passes through the third through hole 53, so that the hammer 60 moves forward and applies a forward thrust to the first transmission rod 511, thereby moving the air chamber valve 51 forward, releasing the sealing state of the third through hole 53, and the second spring 52 is in a compressed state.

[0042] In addition, in one embodiment, referring to Figure 1 and Figure 2 The first fixed block 55 is provided with a fourth through hole 54, and the fourth through hole 54 is connected to the gas supply bottle 40. The end of the air chamber valve 51 away from the hammer 60 is provided with a second transmission rod 512 integrally formed with the air chamber valve 51, and the second transmission rod 512 can move in the fourth through hole 54.

[0043] It should be noted that the hammer 60 drives the air chamber valve 51 to move through the first transmission rod 511, and the second spring 52 is compressed. The second spring 52 is not sufficient to support the horizontal movement of the air chamber valve 51. In order to make the air chamber valve 51 reset when the second spring 52 drives the air chamber valve 51, a second transmission rod 512 is set. The second transmission rod 512 is a fixed path for the movement of the air chamber valve 51, so that the air chamber valve 51 can only move in the horizontal direction, so that the movement process of the air chamber valve 51 is fast and convenient, and it is ensured that the air chamber valve 51 is sealed in the third through hole 53.

[0044] It should be noted that, in this embodiment, the fourth through hole 54 enables the gas supply bottle 40 to be connected to the air chamber 57, allowing the gas to enter the air chamber 57 from the gas supply bottle 40. At the same time, it provides support force for the second transmission rod 512, so that the air chamber valve 51 can move back and forth in a horizontal direction.

[0045] In addition, in one embodiment, referring to Figure 1 , also includes:

[0046] The trigger assembly is located below the hammer 60. A groove 61 is provided on the lower side of the hammer 60. The trigger assembly includes a first protrusion 71. When the first protrusion 71 abuts against the groove 61, the third spring 62 is in a compressed state.

[0047] It should be noted that, when the first protrusion 71 is in contact with the groove 61, the trigger assembly is clamped on the hammer 60 by the first protrusion 71 being clamped on the groove 61, the hammer 60 is stationary, and the third spring 62 is in a compressed state; the first protrusion 71 moves away from the groove 61, and the third spring 62 drives the hammer 60 to move forward, so that the hammer 60 drives the air chamber valve 51 to move.

[0048] It should be noted that when the air pressure of the cylinder 21 drives the hammer 60 to move backward, the third spring 62 is compressed, and the first protrusion 71 of the trigger assembly abuts against the groove 61, so that the trigger assembly is clamped on the hammer 60, thereby returning the hammer 60 to rest and putting the third spring 62 in a compressed state.

[0049] In addition, in one embodiment, referring to Figure 1 The trigger assembly includes a first transmission block 72 and a second transmission block 73 . The first transmission block 72 is located below the second transmission block 73 . When the first transmission block 72 rotates, the first protrusion 71 moves in a direction away from the groove 61 .

[0050] It should be noted that one end of the second transmission block 73 can abut against the first transmission block 72, and the other end of the second transmission block 73 is provided with a first protrusion 71. Exemplarily, the first transmission block 72 is provided with a trigger, and when the trigger is pulled, the first transmission block 72 rotates counterclockwise, and the first transmission block 72 drives the second transmission block 73 to rotate clockwise, so that the first protrusion 71 moves away from the groove 61, and the third spring 62 drives the hammer 60 to move forward.

[0051] In addition, in one embodiment, referring to Figure 1 A fourth spring 74 is provided below one end of the second transmission block 73 where the first protrusion 71 is provided. When the second transmission block 73 is rotating, the fourth spring 74 is in a compressed state.

[0052] It should be noted that the first transmission block 72 is provided with a trigger. For example, when the trigger is pulled, the third spring 62 drives the hammer 60 to move forward, and the second transmission block 73 rotates clockwise, so that the fourth spring 74 is in a compressed state; the hammer 60 moves backward under the action of the air pressure of the cylinder 21, and the second transmission block 73 rotates counterclockwise under the drive of the fourth spring 74, and the first protrusion 71 moves in the direction close to the hammer 60, so that the first protrusion 71 abuts against the groove 61, and the hammer 60 is reset.

[0053] In addition, in one embodiment, referring to Figure 1 A second protrusion 75 is provided at one end of the first transmission block 72 close to the second transmission block 73 , and the first transmission block 72 drives the second transmission block 73 to rotate through the second protrusion 75 .

[0054] It should be noted that, by providing the second protrusion 75, the first transmission block 72 only needs to rotate a small angle to drive the second transmission block 73 to rotate. When the trigger is pressed, the first transmission block 72 drives the second transmission block 73 through the second protrusion 75, so that the first protrusion 71 is away from the groove 61, so that the hammer 60 can release the sealing state of the third through hole 53 through the air chamber valve 51 at a faster speed, thereby reducing the time error during the shooting process and saving shooting time.

[0055] In addition, in one embodiment, referring to Figure 1 and Figure 2 The number of the pistons 30 is two, and the pistons 30 are located on both sides of the hammer 60.

[0056] It should be noted that by increasing the number of pistons 30 and first springs 31, when the gas enters the cylinder 21, the spring will not be instantly compressed to the inner wall of the cylinder 21, so that the gas pressure entering the barrel 10 is equal to the elastic force of the first spring 31 when the sealing state of the second through hole 21 is released, thereby achieving consistent pressure in the barrel 10 during multiple shootings.

[0057] It should be noted that the first transmission block 72 is provided with a trigger. When the trigger is pulled, the first transmission block 72 rotates counterclockwise, and the first transmission block 72 drives the second transmission block 73 to rotate clockwise through the second protrusion 75, so that the first protrusion 71 leaves the groove 61 and compresses the fourth spring 74; when the first protrusion 71 leaves the groove 61, the third spring 62 drives the hammer 60 to move forward, and the hammer 60 applies a forward force to the first transmission rod 511, and drives the air chamber valve 51 to move through the hammer 60 and the first transmission rod 511, thereby releasing the sealing state of the third through hole 53, and compressing the second spring 52, so that the gas in the air chamber 57 enters the cylinder 21; the air pressure in the cylinder 21 increases, and the air pressure is greater than the elastic force applied by the third spring 62 to the hammer 60, so the hammer 60 moves backward and resets, and the third The spring 62 is in a compressed state, and the fourth spring 74 drives the second transmission block 73 to move counterclockwise, so that the first protrusion 71 abuts against the groove 61, and the hammer 60 is reset; the hammer 60 does not abut against the first transmission rod 511, and the air chamber valve 51 is re-sealed to the third through hole 53 under the action of the second spring 52; the air pressure is greater than the elastic force of the first spring 31 on the piston 30, the piston 30 moves backward, and the sealing state of the second through hole 21 is released, and the gas enters the barrel 10, and the projectile in the barrel 10 is fired by the gas; when the gas enters the barrel 10 from the cylinder 21, the air pressure in the cylinder 21 decreases, and when the air pressure is less than the elastic force of the first spring 31 on the piston 30, under the action of the first spring 31, the piston 30 is sealed to the lower side of the second through hole 21, and a shooting operation is completed.

[0058] In addition, an embodiment of the present invention further provides an air gun, comprising the air gun control assembly as described above.

[0059] It should be noted that the air gun can be the air gun control component itself, or can be other equipment using the air gun control component. This embodiment does not limit the specific type of the air gun, and any air gun that can use the above-mentioned air gun control component can be used.

[0060] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the embodiments disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application, which follow the general principles of the present application and include common knowledge or customary technical means in the art that are not disclosed in the present application.

[0061] It should be understood that the present application is not limited to the precise structures that have been described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.

[0062] The above is a specific description of the preferred implementation of the present invention, but the present invention is not limited to the above-mentioned implementation mode. Technical personnel familiar with the field can also make various equivalent deformations or substitutions without violating the spirit of the present invention. These equivalent deformations or substitutions are all included in the scope defined by the claims of the present invention.

Claims

1. An airgun control assembly, comprising a gun barrel, characterized in that: Also includes: A cylinder, wherein the cylinder is located at one side of the gun barrel, the gun barrel is provided with a first through hole, a side surface of the cylinder is provided with a second through hole, and the second through hole is connected to the first through hole; A piston, the piston is connected to the inner wall of the cylinder through a first spring, the piston is sealed at the lower side of the second through hole, and the piston compresses the first spring and releases the sealing state of the second through hole when driven by compressed gas; An air chamber assembly, the air chamber assembly is located at the front side of the piston, the air chamber assembly includes an air supply bottle, an air chamber valve and a second spring, the air chamber assembly is provided with a third through hole, the third through hole is connected to the cylinder, the air chamber valve is sealed to the third through hole under the elastic action of the second spring and the pressure of the compressed gas, and the air supply bottle is used to provide the compressed gas; A hammer, wherein the hammer is located at the rear side of the cylinder, a third spring is arranged at the rear side of the hammer, and the hammer can drive the air chamber valve to compress the second spring, and the hammer is used to release the sealing state of the third through hole.

2. The airgun control assembly according to claim 1, characterized in that: The air chamber assembly includes a first fixed block and a second fixed block, the second fixed block is fixed to the cylinder, the first fixed block is fixed between the gas supply bottle and the second fixed block, the second fixed block is provided with the third through hole, the first fixed block and the second fixed block form an air chamber, and the air chamber is connected to the cylinder through the third through hole.

3. The airgun control assembly according to claim 2, characterized in that: A first transmission rod integrally formed with the air chamber valve is provided at one end of the air chamber valve close to the hammer, one end of the second spring is fixed to the first fixed block, and the other end is fixed to the air chamber valve, and the hammer releases the sealing state of the third through hole through the first transmission rod.

4. The airgun control assembly according to claim 3, characterized in that: The first fixing block is provided with a fourth through hole, and the fourth through hole is connected to the gas supply bottle. The end of the gas chamber valve away from the hammer is provided with a second transmission rod integrally formed with the gas chamber valve, and the second transmission rod is located inside the fourth through hole.

5. The airgun control assembly according to claim 1, characterized in that: Also includes: A trigger assembly is located below the hammer, a groove is provided on the lower side of the hammer, and the trigger assembly includes a first protrusion. When the first protrusion abuts against the groove, the third spring is in a compressed state.

6. The airgun control assembly according to claim 5, characterized in that: The trigger assembly includes a first transmission block and a second transmission block, wherein the first transmission block is located below the second transmission block, and when the first transmission block rotates, the first protrusion moves in a direction away from the groove.

7. The airgun control assembly according to claim 6, characterized in that A fourth spring is arranged below one end of the second transmission block where the first protrusion is arranged. When the second transmission block is rotating, the fourth spring is in a compressed state.

8. The airgun control assembly according to claim 6, characterized in that: A second convex block is disposed at one end of the first transmission block close to the second transmission block, and the first transmission block drives the second transmission block to rotate via the second convex block.

9. The airgun control assembly according to claim 1, characterized in that: The number of the pistons is two, and the pistons are located on both sides of the hammer.

10. An air gun, characterized in that: Comprising an airgun control assembly as claimed in any one of claims 1 to 9.