Toy long gun
By incorporating a sliding component and a solenoid valve system within the toy gun, high-pressure gas is used to drive the sliding body to generate recoil after firing, thus solving the problem of the lack of dynamic effects in existing toy guns and enhancing their realism.
Patent Information
- Application Number
- CN202520183371.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Existing toy guns lack the dynamic effect of recoil after firing, and there is a large market demand for them.
A toy gun was designed. By setting a sliding component inside the barrel, including a slider, a sealing ring, a sliding tube, and a first spring, a trigger assembly is used to trigger a solenoid valve to generate high-pressure gas, which pushes the slider to move inside the barrel. Combined with the reset effect of the first spring, a dynamic effect of recoil after firing is achieved.
It achieves the dynamic recoil effect of a toy gun after firing, enhancing the realism and user experience of the toy gun.
Smart Images

Figure CN223741337U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a toy gun technical field, in particular to a toy long gun. BACKGROUND
[0002] The current toy gun types are as follows: water gun, its principle is same as needle cylinder, and the launching body is water; water bomb launcher, using water bomb, and the launching power is spring; NERF launcher, using foam soft bomb; sound and light gun, it is composed of various sounds, such as fire-fighting sound, alarm sound, loudspeaker sound, etc., and the sound emitted according to the time sequence is different. It can be seen that there is no toy gun with dynamic effect of recoil after shooting at present, and this type of toy gun has great market prospect. SUMMARY
[0003] The utility model aims at providing a toy long gun, which can produce dynamic effect of recoil after shooting.
[0004] In order to realize the above-mentioned purpose, the utility model provides a toy long gun, which comprises:
[0005] A gun barrel hole is arranged in the gun shell, a baffle ring is arranged in the middle of the gun barrel hole, the first end of the gun barrel hole is arranged in the gun shell, and the second end of the gun barrel hole penetrates the gun shell;
[0006] A gas nozzle is arranged at the first end of the gun barrel hole, the gas nozzle has an inlet and an outlet, and the inlet of the gas nozzle is connected with an air compressor through an electromagnetic valve;
[0007] A trigger assembly is arranged in the gun shell, and the trigger assembly is used for controlling the opening and closing of the electromagnetic valve; and
[0008] A sliding assembly is arranged in the gun barrel hole, and the sliding assembly comprises a sliding body, a sealing ring, a sliding tube and a first spring; the sliding body is arranged on the side of the baffle ring close to the gas nozzle; the side of the sliding body away from the baffle ring is provided with a thimble; the sealing ring is arranged in the thimble; the gas nozzle is slidably inserted into the thimble and abuts against the inner wall of the sealing ring; the sliding tube is connected to the side of the sliding body close to the baffle ring; one end of the sliding tube penetrates the baffle ring and is arranged in the second end of the gun barrel hole; the first spring is sleeved on the outer periphery of the sliding tube; the first end of the first spring abuts against the sliding body, and the second end of the first spring abuts against the baffle ring.
[0009] In some embodiments, the trigger assembly comprises a trigger, a second spring and a microswitch; the gun shell is provided with a sliding groove; the trigger is installed in the sliding groove; the second spring and the microswitch are arranged at one end of the sliding groove; the trigger abuts against the microswitch after moving along the sliding groove and compressing the second spring; and the microswitch is electrically connected with the electromagnetic valve.
[0010] In some embodiments, the sliding body has a first threaded hole, and the end of the barrel has external threads, and the barrel is screwed into the first threaded hole.
[0011] In some embodiments, the sliding body comprises a body and an externally threaded sleeve, the insertion hole is provided in the body, the body has a second threaded hole at one end close to the air nozzle, the externally threaded sleeve is mounted in the second threaded hole, the inner wall of the insertion hole is provided with a sealing ring groove, the sealing ring is provided in the sealing ring groove, and the sealing ring groove is communicated with the second threaded hole.
[0012] In some embodiments, the sealing ring is interference fit with the sealing ring groove.
[0013] In some embodiments, the sealing ring is clearance fit with the sealing ring groove.
[0014] In some embodiments, two sealing rings are provided, and both of the two sealing rings are provided in the sealing ring groove.
[0015] In some embodiments, the sealing ring is a conical sealing ring.
[0016] In some embodiments, the sliding assembly comprises a linear bearing, the linear bearing is mounted in the barrel hole and located on the side of the blocking ring away from the sliding body, and the sliding barrel is mounted in the linear bearing.
[0017] In some embodiments, the sliding assembly comprises a buffer pad, the buffer pad is mounted on the air nozzle, and when the air nozzle is inserted into the insertion hole, the buffer pad abuts against the end of the sliding body.
[0018] The utility model provides a kind of toy long gun, compared with prior art, it has beneficial effects in that:
[0019] By setting the sliding assembly in the barrel hole, the sliding assembly comprises a sliding body, a sealing ring, a sliding tube and a first spring, the sliding body is set on the side of the blocking ring close to the air nozzle, the side of the sliding body away from the blocking ring is provided with a insertion hole, the sealing ring is set in the insertion hole, the air nozzle is slidably inserted into the insertion hole and abuts against the inner wall of the sealing ring, the sliding tube is connected to the side of the sliding body close to the blocking ring, one end of the sliding tube penetrates through the blocking ring and is set in the second end of the barrel hole, the first spring is sleeved on the outer periphery of the sliding tube, the first end of the first spring abuts against the sliding body, and the second end of the first spring abuts against the blocking ring, the air nozzle generates high-pressure gas to push the sliding body and the sliding tube to move forward in the barrel hole until the sliding body is separated from the air nozzle, at this time, the first spring pushes the sliding body to move backward to reset, so that the dynamic effect of the shooting recoil force can be generated. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 A three-dimensional structure schematic diagram of the toy long gun is provided.
[0021] Figure 2 A cross-sectional structure schematic diagram of the toy long gun is provided.
[0022] Figure 3 An explosion structure schematic diagram of the sliding assembly of the toy long gun is provided.
[0023] Figure 4 For Figure 2 A first structure schematic diagram of the sliding body cross section is enlarged locally.
[0024] Figure 5 For Figure 2 A second structure schematic diagram of the sliding body cross section is enlarged locally.
[0025] Figure 6 For Figure 2 A third structure schematic diagram of the sliding body cross section is enlarged locally.
[0026] Figure 7 For Figure 2 A fourth structure schematic diagram of the sliding body cross section is enlarged locally.
[0027] In the figure: 1, gun shell; 11, barrel hole; 12, blocking ring; 2, air nozzle; 3, trigger assembly; 31, trigger; 32, second spring; 33, micro switch; 4, sliding assembly; 41, sliding body; 411, insertion hole; 412, first threaded hole; 413, body; 414, external threaded sleeve; 415, second threaded hole; 416, sealing ring groove; 42, sealing ring; 43, sliding tube; 44, first spring; 45, linear bearing; 46, buffer pad. DETAILED DESCRIPTION
[0028] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application.
[0029] It should be understood that, in the description of the present application, the terms "upper", "lower", "vertical", "horizontal", "top", "bottom", "inner", "outer", and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element indicated must be in a particular orientation, constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. The terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. That is, the features with "first", "second" can explicitly or implicitly include one or more of the features. In addition, unless otherwise stated, the meaning of "multiple" is two or more.
[0030] In addition, the technical features involved in different embodiments of the present application described below can be combined with each other as long as there is no conflict between them.
[0031] As Figures 1-7 The toy rifle of the present application embodiment, as shown in the drawings, comprises a rifle shell 1, an air nozzle 2, a trigger assembly 3 and a sliding assembly 4. By cocking the trigger assembly 3 to trigger the air nozzle 2 to generate high-pressure gas to drive the sliding assembly 4 to reciprocate in the rifle shell 1, a dynamic effect of shooting recoil force is generated.
[0032] The rifle shell 1 has a barrel hole 11, the middle part of the barrel hole 11 is provided with a retaining ring 12, the first end of the barrel hole 11 is arranged in the rifle shell 1, and the second end of the barrel hole 11 penetrates the rifle shell 1.
[0033] The air nozzle 2 is arranged at the first end of the barrel hole 11, the air nozzle 2 has an inlet and an outlet, and the inlet of the air nozzle 2 is configured to communicate with an air compressor through a solenoid valve 21. Specifically, the air pipe is connected through the air pipe, and the corresponding position of the rifle shell 1 is bored to enable the air pipe to pass through the installation.
[0034] The trigger assembly 3 is arranged in the rifle shell 1, and the trigger assembly 3 is used to control the opening and closing of the solenoid valve 21.
[0035] The sliding assembly 4 is located inside the barrel hole 11. The sliding assembly 4 includes a sliding body 41, a sealing ring 42, a sliding tube 43, and a first spring 44. The sliding body 41 is located on the side of the retaining ring 12 near the gas nozzle 3. The side of the sliding body 41 away from the retaining ring 12 has an insertion hole 411. The sealing ring 42 is located in the insertion hole 411. The gas nozzle 3 is slidably inserted into the insertion hole 411 and abuts against the inner wall of the sealing ring 42. The sliding tube 43 is connected to the side of the sliding body 41 near the retaining ring 12. One end of the sliding tube 43 passes through the retaining ring 12 and is located inside the second end of the barrel hole 11. The first spring 44 is sleeved on the outer periphery of the sliding tube 43. The first end of the first spring 44 abuts against the sliding body 41, and the second end of the first spring 44 abuts against the retaining ring 12.
[0036] Based on the above structural setup, the trigger assembly 3 triggers the solenoid valve 21 to generate high-pressure gas in the gas nozzle 2, which pushes the slider 41 and the sliding tube 42 forward in the barrel hole until the slider 41 disengages from the gas nozzle 2. At this time, the first spring 44 pushes the slider 41 to move backward and reset, thereby generating a dynamic effect of recoil after firing.
[0037] like Figure 2 As shown, in some embodiments, the trigger assembly 3 includes a trigger 31, a second spring 32, and a micro switch 33. The gun housing 1 has a groove, in which the trigger 31 is installed. The second spring 32 and the micro switch 33 are located at one end of the groove. The trigger 31 moves along the groove, compressing the second spring 32 and then abutting against the micro switch 33. The micro switch 33 is electrically connected to the solenoid valve 21. Thus, pressing the trigger 31 compresses the second spring 32 and causes the trigger 31 to abut against the micro switch 33. The micro switch 33 controls the solenoid valve 21 to open. Releasing the trigger 31 causes the second spring 32 to apply elastic force, resetting the trigger 31. The trigger 31 can then be pressed again.
[0038] like Figures 4-7 As shown, in some embodiments, the slider 41 has a first threaded hole 412, and the end of the barrel 43 has an external thread, with the barrel 43 threaded into the first threaded hole 412. This facilitates the installation and removal of the slider 41 and the barrel 43.
[0039] like Figures 4-7 As shown, in some embodiments, the sliding body 41 includes a body 413 and an external threaded sleeve 414. An insertion hole 411 is provided in the body 413. The end of the body 413 near the air nozzle 2 has a second threaded hole 415. The external threaded sleeve 414 is installed in the second threaded hole 415. A sealing ring groove 416 is provided around the inner wall of the insertion hole 411. A sealing ring 42 is provided in the sealing ring groove 416, and the sealing ring groove 416 communicates with the second threaded hole 415. The sealing ring 42 is used to maintain the airtightness of the relative sliding between the air nozzle 2 and the sliding body 41, so as to ensure sufficient driving force on the sliding body 41.
[0040] like Figure 6 As shown, in some embodiments, the sealing ring 42 is interference-fitted with the sealing ring groove 416. Thus, the sealing ring 42 is compressed and installed in the sealing ring groove 416, causing the inner wall of the sealing ring 42 to contact the outer peripheral wall of the air nozzle 2 to produce a sealing effect.
[0041] like Figure 7 As shown, in some embodiments, the sealing ring 42 is clearance-fitted with the sealing ring groove 416. Thus, the inner wall of the sealing ring 42 is compressed by the outer peripheral wall of the air nozzle 2, causing the outer peripheral wall of the sealing ring 42 to fill the entire sealing ring groove 416. This allows the sealing ring 42 to operate in an elastically contracted state, exhibiting wear self-adaptability and significantly increasing its service life.
[0042] like Figure 5 As shown, in some embodiments, two sealing rings 42 are provided, both of which are disposed in the sealing ring groove 416. Thus, even after the first sealing ring 42 wears out, there is still a second sealing ring 42, increasing the wear resistance time. Even after both sealing rings 42 wear out, the sealing effect of two worn sealing rings 42 is better than that of a single worn sealing ring 42, extending the service life.
[0043] like Figure 4 As shown, in some embodiments, the sealing ring 42 is a conical sealing ring. Thus, when the air nozzle 2 injects compressed gas into the insertion hole 411, the compressed gas enters the sealing ring groove 416. The gas compresses the outer inclined surface of the sealing ring 42, causing the conical ring edge of the seal 42 to contract inward, achieving a self-sealing effect. This sealing structure does not rely entirely on the elasticity of the sealing ring 42 for sealing; a portion also relies on the pressure of the inflated gas to seal the ring 42, causing the inner wall of the sealing ring to contact the air nozzle 2 for sealing, thus increasing the sealing life.
[0044] like Figure 2 As shown, in some embodiments, the sliding assembly 4 includes a linear bearing 45, which is installed in the barrel bore 11 and located on the side of the retaining ring 12 away from the sliding body 41. The sliding tube 43 is installed in the linear bearing 45. This allows the sliding tube 43 to slide smoothly.
[0045] like Figure 3 As shown, in some embodiments, the sliding assembly 4 includes a buffer pad 46, which is mounted on the air nozzle 2. When the air nozzle 2 is inserted into the insertion hole 411, the buffer pad 46 abuts against the end of the sliding body 41. The buffer pad 46 can buffer the impact force between the sliding body 41 and the air nozzle 2.
[0046] Based on the above embodiments, the air nozzle 2 and sliding assembly 4 have a simple structure. The air nozzle 2 is controlled by a solenoid valve 21 to generate compressed gas, achieving both single-fire and continuous-fire sensations. The air nozzle 2 drives the sliding body 41, causing it to first compress the first spring 43 forward. When the sliding body 41 disengages from the air nozzle 2, it loses power and is then pushed backward by the first spring 43 to return to its original position. Since the air nozzle 2 is constantly supplying air, the smaller the leakage, the greater the force of the compressed gas on the sliding body 41, which can compress the first spring 43. When the sliding body 41 disengages from the air nozzle 2 and loses the driving force of the compressed gas, the first spring 44 pushes the sliding body 41 backward to return to its original position. This repeated motion creates an oscillating motion, achieving a realistic gun-firing sensation. A linear bearing 45 guides the sliding tube 43, ensuring smooth movement.
[0047] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and substitutions can be made without departing from the technical principles of the present utility model, and these improvements and substitutions should also be considered within the protection scope of the present utility model.
Claims
1. A toy lance, characterized in that, The application relates to a gun barrel assembly. The gun barrel assembly comprises a gun barrel, a gas nozzle, a trigger assembly and a sliding assembly. The gun barrel has a barrel hole, the middle part of the barrel hole is provided with a retaining ring, the first end of the barrel hole is arranged in the gun barrel, and the second end of the barrel hole penetrates through the gun barrel. The gas nozzle is arranged at the first end of the barrel hole, the gas nozzle has an inlet and an outlet, and the inlet of the gas nozzle is connected with an air compressor through an electromagnetic valve. The trigger assembly is arranged in the gun barrel and is used for controlling the opening and closing of the electromagnetic valve.
2. The toy lance according to claim 1, characterized in that The sliding assembly is arranged in the barrel hole and comprises a sliding body, a sealing ring, a sliding tube and a first spring.
3. The toy lance of claim 1, wherein, The sliding body is arranged on the side of the retaining ring close to the gas nozzle.
4. The toy lance of claim 1, wherein, The side of the sliding body away from the retaining ring is provided with a socket.
5. The toy lance according to claim 4, characterized in that The sealing ring is arranged in the socket.
6. The toy lance of claim 4, wherein, The gas nozzle is slidably inserted into the socket and abuts against the inner wall of the sealing ring.
7. The toy lance according to claim 5 or 6, characterized in that The sliding tube is connected to the side of the sliding body close to the retaining ring.
8. The toy lance of claim 6, wherein, One end of the sliding tube penetrates through the retaining ring and is arranged in the second end of the barrel hole.
9. The toy lance of claim 1, wherein, The first spring is sleeved on the outer periphery of the sliding tube.
10. The toy lance of claim 1, wherein, The first end of the first spring abuts against the sliding body, and the second end of the first spring abuts against the retaining ring. The trigger assembly comprises a trigger, a second spring and a microswitch. The gun barrel has a sliding groove. The trigger is mounted in the sliding groove. The second spring and the microswitch are arranged at one end of the sliding groove. The trigger abuts against the microswitch after the trigger is moved along the sliding groove to compress the second spring. The microswitch is electrically connected with the electromagnetic valve. The sliding body has a first threaded hole. The end of the barrel has an external thread. The barrel is threadedly connected in the first threaded hole. The sliding body comprises a body and an external thread sleeve. The socket is arranged on the body. The body is provided with a second threaded hole at the end close to the gas nozzle. The external thread sleeve is mounted in the second threaded hole. The inner wall of the socket is provided with a sealing ring groove. The sealing ring is arranged in the sealing ring groove. The sealing ring groove is connected with the second threaded hole. The sealing ring is in interference fit with the sealing ring groove. The sealing ring is in clearance fit with the sealing ring groove. Two sealing rings are arranged in the sealing ring groove. The sealing ring is a conical sealing ring. The sliding assembly comprises a linear bearing. The linear bearing is mounted in the barrel hole and is arranged on the side of the retaining ring away from the sliding body. The sliding tube is mounted in the linear bearing. The sliding assembly comprises a buffer pad. The buffer pad is mounted on the gas nozzle. When the gas nozzle is inserted into the socket, the buffer pad abuts against the end of the sliding body.