Toy shooting long gun
By setting up a simulated recoil device in the toy shooting rifle and using the drive mechanism to drive the vibrator to impact the cylinder block, the problem that existing toy guns cannot simulate recoil is solved, improving the play experience.
Patent Information
- Application Number
- CN202422436525.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-09
AI Technical Summary
Existing toy shooting guns cannot simulate the recoil after real gun shooting, affecting the gaming experience.
A simulated recoil device is provided in the toy shooting rifle, and a vibration block is driven to generate impact between the cylinder block and the fixed seat through the driving mechanism, simulating gunfire and recoil.
Improves the play experience of toy shooting rifles, enhancing the sense of reality by simulating gunfire and recoil.
Smart Images

Figure CN223138479U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of amusement equipment, in particular to a toy shooting long gun. Background Art
[0002] A toy gun is a children's toy based on a gun model and is a kind of model toy. Toy guns are divided into water guns, scaled-down model guns, sound and light gun toys, etc. Among them, the scaled-down model gun is the closest to a real gun and is loved by many children.
[0003] Currently, the toy shooting guns on the market emit simulated real gunshots by electronic components, but they cannot simulate the recoil force after a real gun is fired, which affects the playing experience of players. Summary of the Utility Model
[0004] The purpose of the utility model is to overcome the deficiencies of the prior art. The utility model provides a toy shooting long gun. By setting a simulated recoil force device, the driving mechanism drives the vibration block to collide between the cylinder block and the fixed seat, so as to generate a simulated gunshot and a simulated recoil force on the toy shooting long gun, and improve the playing experience of players.
[0005] Correspondingly, the utility model provides a toy shooting long gun, which comprises: a gun body and a simulated recoil force device arranged inside the gun body;
[0006] The simulated recoil force device comprises: a vibration block, a driving mechanism and a fixed seat. A moving area is formed between the driving mechanism and the fixed seat. The vibration block is located in the moving area. The vibration block is connected with the driving mechanism and moves in the moving area under the drive of the driving mechanism.
[0007] The driving mechanism comprises: an air inlet nozzle, a first guide sleeve, a cylinder block and a connecting rod inserted into the cylinder block. The air inlet nozzle is installed at one end of the cylinder block far away from the moving area, and the first guide sleeve is installed inside the cylinder block and at one end far away from the air inlet nozzle.
[0008] The connecting rod is inserted into the first guide sleeve, and the connecting rod moves inside the cylinder block under the drive of air pressure.
[0009] Preferably, one end of the vibration block close to the driving mechanism is fixedly connected with the connecting rod. The vibration block is driven by the connecting rod to move close to the cylinder block in the moving area or the vibration block is driven by the connecting rod to move away from the cylinder block in the moving area.
[0010] Preferably, a first return spring is arranged on the connecting rod, and the first return spring is sleeved on the connecting rod.
[0011] Preferably, a piston is disposed within the cylinder block. The piston is connected to the connecting rod, and the piston is driven by the air pressure entering through the air inlet nozzle to drive the connecting rod to move within the cylinder.
[0012] Preferably, a sealing ring is provided on the piston, and the sealing ring is sleeved on the piston.
[0013] Preferably, an air outlet is provided on the end face of the first guide sleeve.
[0014] Preferably, a sliding mechanism is provided on the side of the vibration block away from the cylinder block. The sliding mechanism includes: a telescopic rod, a second guide sleeve, and a connecting block;
[0015] One end of the telescopic rod is connected to the vibration block, and the other end of the telescopic rod is fixedly connected to the connecting block. The telescopic rod is sleeved within the second guide sleeve, and the second guide sleeve is inserted into the fixed seat.
[0016] The telescopic rod is driven by the vibration block to move within the fixed seat.
[0017] Preferably, the toy shooting long gun is provided with a sliding sleeve, and the sliding sleeve is fixedly connected to the connecting block. The sliding sleeve is driven by the connecting block to move.
[0018] Preferably, the toy shooting long gun is further provided with a trigger mechanism. The trigger mechanism includes: a trigger and a second return spring, and the second return spring is fixedly connected to the trigger.
[0019] Preferably, a micro switch is disposed within the toy shooting long gun. The micro switch is driven by the trigger to switch between an open state and a closed state;
[0020] The micro switch is signal-connected to the simulated recoil force device, and the micro switch is signal-connected to the trigger mechanism.
[0021] Advantages of the present utility model:
[0022] By providing a driving mechanism, the driving mechanism drives the vibration block to move within the moving area. During the movement of the vibration block, it will impact the cylinder block, the fixed seat, etc. During this process, the vibration block has sufficient kinetic energy to impact the cylinder block and / or the fixed seat, thereby generating a simulated gun sound and a simulated recoil force, improving the playing experience of the toy shooting long gun; the present utility model is also provided with an air inlet nozzle and a cylinder block. The air inlet nozzle inflates into the cylinder block, pushing the connecting rod inserted into the cylinder block to move to the farthest stroke, enabling the vibration block to have sufficient kinetic energy to impact the cylinder block, thereby generating a simulated gun sound and a simulated recoil force, improving the playing experience of the toy shooting long gun. Description of the Drawings
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0024] Figure 1 is the front view of the toy shooting long gun in the present invention;
[0025] Figure 2 is the cross-sectional view of the toy shooting long gun in the present invention;
[0026] Figure 3 is in the present invention Figure 2 the enlarged view of part A;
[0027] Figure 4 is the structural schematic diagram of the simulated recoil device in the present invention;
[0028] Figure 5 is the exploded view of the simulated recoil device in the present invention;
[0029] Figure 6 is the cross-sectional view of the simulated recoil device in the present invention.
[0030] In the drawings, 1, gun body; 2, simulated recoil device; 21, vibration block; 22, driving mechanism; 221, air inlet nozzle; 222, first guide sleeve; 2221, air outlet; 223, cylinder block; 2231, piston; 2232, sealing ring; 2233, connection channel; 224, connecting rod; 225, first return spring; 23, fixed seat; 24, guide plate; 25, sliding mechanism; 251, telescopic rod; 252, second guide sleeve; 253, connection block; 26, moving groove; 3, trigger mechanism; 31, trigger; 32, second return spring; 4, gunstock; 5, sighting mechanism; 6, sliding sleeve; 7, micro switch. Detailed implementation manners
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0032] Figure 1 shows the front view of the toy shooting long gun in the present invention, Figure 2A cross-sectional view of a toy shooting rifle in the utility model is shown. Figure 3 The utility model shows Figure 2 A in the enlarged view, Figure 4 The schematic diagram of the structure of the recoil simulation device in the utility model is shown. Figure 5 An exploded view of the simulated recoil device of the utility model is shown. Figure 6 A cross-sectional view of a simulated recoil device in the utility model is shown, wherein the toy shooting rifle comprises a gun body 1 and a simulated recoil device 2 arranged inside the gun body 1; a buttstock 4 and a sighting mechanism 5 are also arranged on the gun body 1, wherein the buttstock 4 is located at the end of the gun body 1, and the sighting mechanism 5 is located at the top of the gun body 1.
[0033] The simulated recoil device 2 comprises: a vibration block 21, a driving mechanism 22 and a fixed seat 23, a moving area is formed between the driving mechanism 22 and the fixed seat 23, the vibration block 21 is located in the moving area, the vibration block 21 is connected to the driving mechanism 22, and the vibration block 21 is driven by the driving mechanism 22 to move in the moving area. The driving mechanism 22 is connected to the fixed seat 23 based on two guide plates 24, and one of the guide plates 24 connects the upper end of the driving mechanism 22 and the upper end of the fixed seat 23, and the other guide plate 24 connects the upper end of the driving mechanism 22 and the lower end of the fixed seat 23, the two guide plates 24, the driving mechanism 22 and the fixed seat 23 surround the moving area into a moving groove 26, and the vibration block 21 is located between the two guide plates 24, that is, the vibration block 21 moves in the moving groove 26. The driving mechanism 22 is used to drive the vibration block 21, and the vibration block 21 is used to impact and emit a vibration feeling simulating a gunshot sound and simulating a recoil force.
[0034] The driving mechanism 22 includes: an air inlet nozzle 221, a first guide sleeve 222, a cylinder body 223, and a connecting rod 224 inserted in the cylinder body 223. The air inlet nozzle 221 is installed at one end of the cylinder body 223 away from the moving area, and the first guide sleeve 222 is installed in the cylinder body 223 and at one end away from the air inlet nozzle 221; the connecting rod 224 is inserted in the first guide sleeve 222, and the connecting rod 224 is driven by air pressure to move in the cylinder body 223. The first guide sleeve 222 is used to support the connecting rod 224 to ensure that they remain stable during movement, avoid deviation or shaking due to gravity or other external forces, and facilitate the stable operation of the driving mechanism 22.
[0035] Further, one end of the vibration block 21 close to the driving mechanism 22 is fixedly connected to the connecting rod 224. The vibration block 21 is driven by the connecting rod 224 to approach and impact the cylinder block 223 in the moving area or the vibration block 21 is driven by the connecting rod 224 to move away from the cylinder block 223 in the moving area. When the vibration block 21 is driven by the connecting rod 224 to approach and impact the cylinder block 223 in the moving area, the vibration block will generate a simulated gunshot sound, and when the vibration block 21 and the cylinder block 223 collide, vibrations are generated, which drives the gun body to shake slightly to generate a simulated recoil force, improving the playing experience of the player. When the vibration block 21 is driven by the connecting rod 224 to move away from the cylinder block 223 in the moving area, there is a certain distance between the vibration block 21 and the cylinder block 223, ensuring that the vibration block 21 increases its speed to a certain extent and has sufficient kinetic energy to impact the cylinder block 223 before hitting it, thereby generating a simulated recoil force and improving the playing experience of the player.
[0036] Further, a first return spring 225 is provided on the connecting rod 224, and the first return spring 225 is sleeved on the connecting rod 224. The first return spring 225 is used to return the connecting rod 224 to its initial position. When the connecting rod 224 is driven by the air pressure to move away from the air inlet nozzle 221, the first return spring 225 is subjected to the force of the end of the connecting rod 224 on it, causing the first return spring 225 to undergo elastic deformation, that is, the first return spring 225 is compressed. After the first return spring 225 is compressed, the first return spring 225 has a reaction force on the end of the connecting rod 224. When the force of the air pressure on the connecting rod 224 decreases or disappears, the first return spring 225 has a reaction force on the end of the connecting rod 224, causing the connecting rod 224 to return to its initial position, which is beneficial to ensuring that the connecting rod 224 can return to its initial position, enabling the driving mechanism 22 to repeatedly drive the vibration block 21 to move, providing multiple simulated gunshot sounds and simulated recoil forces, and improving the playing experience of the toy shooting long gun.
[0037] Further, a piston 2231 is disposed within the cylinder block 223, that is, the cylinder block 223 has a cavity inside, and the piston 2231 is disposed within the cavity. The piston 2231 is connected to the connecting rod 224, and the piston 2231 divides the cavity into a first cavity near the air inlet 221 and a second cavity having the connecting rod 224. When the piston 2231 moves driven by air pressure, the volumes of the first cavity and the second cavity change. When the air inlet 221 inflates the first cavity, the air pressure in the first cavity increases, exerting a force on the piston 2231, pushing the piston 2231 to move away from the air inlet direction, increasing the volume of the first cavity and decreasing the volume of the second cavity. At the same time, the gas in the second cavity flows to the outside, preventing the gas from staying in the second cavity, shortening the moving stroke of the piston 2231, reducing the energy storage of the first return spring 225, facilitating the piston 2231 to drive the connecting rod 224 to move to the end of the stroke, enabling the first return spring 225 to store energy to the maximum extent, converting the elastic potential energy into the kinetic energy of the connecting rod 224 and the vibration block 21, and ensuring that the vibration block 21 has sufficient kinetic energy to impact the cylinder block 223, generating simulated gunshots and simulated recoil forces.
[0038] Furthermore, the piston 2241 is provided with a sealing ring 2232. The sealing ring 2232 is sleeved on the piston 2231. The sealing ring 2232 is used to isolate the first cavity and the second cavity, preventing the gas inside the first cavity from flowing into the second cavity, so that the air pressure in the first cavity cannot be enhanced when the air inlet 221 inflates, resulting in the force exerted on the piston 2231 by the air pressure in the first cavity being the same as the force exerted on the piston 2231 by the air pressure in the second cavity, facilitating the non - flow of the gas between the first cavity and the second cavity, enhancing the air pressure inside the first cavity, increasing the force exerted on the piston 2231, and further pushing the piston 2231 to move, ensuring the operation stability of the driving mechanism 22.
[0039] Further, an air outlet 2221 is provided on the end face of the first guide sleeve 222. The air outlet 2221 is used to discharge the gas in the second cavity to the external environment, so that the air pressure in the second cavity is maintained at atmospheric pressure, preventing the gas in the second cavity from being unable to be discharged, resulting in the air pressure in the second cavity being greater than that in the first cavity, and preventing the piston 2241 from moving to the end of the stroke. Ensure that the piston 2241 moves to the end of the stroke, so that the first return spring 225 in the second cavity can be compressed to the shortest. The first return spring 225 has the maximum elastic potential energy, which is conducive to transferring the maximum elastic potential energy into the momentum of the connecting rod 224 and the vibration block 21, so that the vibration block has enough momentum to impact the cylinder block 223, generating a simulated gunshot and a simulated recoil force.
[0040] Further, a sliding mechanism 25 is provided on the side of the vibration block 21 away from the air chamber. The sliding mechanism 25 includes: a telescopic rod 251, a second guide sleeve 252 and a connecting block 253; one end of the telescopic rod 251 is connected to the vibration block 21, the other end of the telescopic rod 251 is fixedly connected to the connecting block 253, and the telescopic rod 251 is sleeved in the second guide sleeve 252. The second guide sleeve 252 is inserted into the fixed seat 23, and the telescopic rod 251 is driven by the vibration block 21 to move in the fixed seat 23. The sliding mechanism 25 is used to increase the intensity of the simulated recoil force. The telescopic rod 251 is used to drive the connecting block 253 to move, and the second guide sleeve 252 is used to guide the moving direction of the telescopic rod 251. The connecting block 253 and the vibration block 21 are connected based on the telescopic rod 251. When the vibration block 21 is driven by the connecting rod 224 to move forward, the vibration block 21 drives the telescopic rod 251 to move forward, and finally the telescopic rod 251 drives the connecting block 253 to move. When the vibration block 21 impacts the cylinder block 223, the kinetic energy of the vibration block 21, the connecting block 253 and the telescopic rod 251 is transferred to the body of the toy shooting long gun, and the body of the gun shakes by a certain amplitude to simulate the recoil force of a real gun.
[0041] Further, the toy shooting long gun is provided with a sliding sleeve 6, and the sliding sleeve 6 is fixedly connected to the connecting block 253. The sliding sleeve 6 is driven to move by the connecting block 253. When the connecting block 253 moves, it drives the sliding sleeve 6 to move. During this movement, the sliding sleeve 6 provides sufficient kinetic energy to drive the entire toy shooting long gun to shake by a certain amplitude, so as to increase the simulated recoil force of a real gun.
[0042] Further, the toy shooting long gun is further provided with a trigger mechanism 3, and the trigger mechanism 3 includes: a trigger 31 and a second return spring 32. The second return spring 32 is fixedly connected to the trigger 31. One end of the second return spring 32 is fixedly connected to the trigger 31, and the other end of the second return spring 32 is fixedly connected to the inside of the toy shooting long gun. When a player pulls the trigger 31, the trigger 31 is driven by the force to move backward, thereby compressing the second return spring 32. At this time, the second return spring 32 has a reaction force on the trigger 31. When the player releases the trigger 31, the trigger 31 receives a reaction force from the second return spring 32, causing the trigger 31 to return to the initial position without manual reset, greatly improving the convenience of playing.
[0043] Further, a micro switch 7 is arranged inside the toy shooting long gun. The micro switch 7 is driven by the trigger 31 to switch between an open state and a closed state; the micro switch 7 is signal-connected to the simulated recoil device 2 and the trigger mechanism 3. When the micro switch 7 is driven by the trigger 31 to switch from the closed state to the open state, the circuit inside the micro switch 7 is connected to send a corresponding electrical signal to the simulated recoil device 2; when the micro switch 7 is driven by the trigger 31 to switch from the open state to the closed state, the internal circuit of the micro switch 7 is disconnected, and the signal sending to the corresponding device is stopped, which is beneficial to ensuring that the toy shooting long gun can work in a timely manner according to the instructions.
[0044] The working principle of the present utility model:
[0045] The player pulls the trigger 31, and the trigger 31 drives the microswitch 7 to switch from the closed state to the open state. The microswitch 7 sends a first electrical signal to the simulated recoil device 2. After receiving this first electrical signal, the air inlet 221 of the simulated recoil device 2 starts to extract the external air source and fills the air source into the first cavity. The air pressure in the first cavity increases, and then pushes the piston 2231 to move away from the air inlet 221, driving the connecting rod 224 to move away from the air inlet 221 until the vibration block 21 abuts against the end face of the moving groove away from the cylinder block 223. At the same time, the gas in the second cavity flows out of the external environment through the air outlet 2221 and the connecting channel 2233. The first return spring 225 is compressed to the shortest, and the first return spring 225 has a reaction force on the connecting rod 224. Then the air inlet 221 sucks out the gas in the first cavity, reducing the air pressure in the first cavity. The piston 2231 is pushed by the air pressure in the second cavity to move towards the air inlet 221. At the same time, the first return spring 225 has a reaction force on the connecting rod 224, pushing the connecting rod 224 to move towards the air inlet, so that the vibration block 21 has enough kinetic energy to impact the cylinder block 223, emitting a simulated gunshot and a simulated recoil force.
[0046] In summary, the present utility model improves the playing experience of the toy shooting long gun by setting a driving mechanism. The driving mechanism drives the vibration block to move within the moving area and impact the cylinder block. During this process, the vibration block has enough kinetic energy to impact the cylinder block, thereby emitting a simulated gunshot and a simulated recoil force. The present utility model also has an air inlet and a cylinder block. The air inlet fills the air into the cylinder block, pushing the connecting rod inserted into the cylinder block to move to the farthest stroke, so that the vibration block has enough kinetic energy to impact the cylinder block, thereby emitting a simulated gunshot and a simulated recoil force, improving the playing experience of the toy shooting long gun.
[0047] In addition, the above has introduced in detail a toy shooting long gun provided by an embodiment of the present utility model. Specific examples are used in this article to elaborate on the principle and implementation manner of the present utility model. The description of the above embodiments is only used to help understand the method and its core idea of the present utility model. At the same time, for those of ordinary skill in the art, according to the idea of the present utility model, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation of the present utility model.
Claims
1. A toy shooting long gun, characterized in that, The toy shooting long gun includes: a gun body and a simulated recoil device arranged inside the gun body; The simulated recoil device includes: a vibration block, a driving mechanism and a fixed seat. A moving area is formed between the driving mechanism and the fixed seat. The vibration block is located in the moving area. The vibration block is connected to the driving mechanism and is driven by the driving mechanism to move in the moving area; The driving mechanism includes: an air inlet nozzle, a first guide sleeve, a cylinder block and a connecting rod inserted into the cylinder block. The air inlet nozzle is installed at one end of the cylinder block away from the moving area, and the first guide sleeve is installed inside the cylinder block and at the end away from the air inlet nozzle; The connecting rod is inserted into the first guide sleeve, and the connecting rod is driven by air pressure to move inside the cylinder block.
2. The toy shooting long gun according to claim 1, characterized in that, One end of the vibration block close to the driving mechanism is fixedly connected to the connecting rod. The vibration block is driven by the connecting rod to move close to the cylinder block in the moving area or the vibration block is driven by the connecting rod to move away from the cylinder block in the moving area.
3. The toy shooting long gun according to claim 1, characterized in that, A first return spring is arranged on the connecting rod, and the first return spring is sleeved on the connecting rod.
4. The toy shooting long gun according to claim 1, characterized in that, A piston is arranged inside the cylinder block. The piston is connected to the connecting rod, and the piston is driven by the air pressure entering from the air inlet nozzle to drive the connecting rod to move inside the cylinder.
5. The toy shooting long gun according to claim 4, wherein The piston is provided with a sealing ring, and the sealing ring is sleeved on the piston.
6. The toy shooting long gun according to claim 1, characterized in that, An air outlet is arranged on the end face of the first guide sleeve.
7. The toy shooting long gun according to claim 1, characterized in that, A sliding mechanism is arranged on the side of the vibration block away from the cylinder block. The sliding mechanism includes: a telescopic rod, a second guide sleeve and a connecting block; One end of the telescopic rod is connected to the vibration block, the other end of the telescopic rod is fixedly connected to the connecting block, and the telescopic rod is sleeved inside the second guide sleeve. The second guide sleeve is inserted into the fixed seat, The telescopic rod is driven by the vibration block to move inside the fixed seat.
8. The toy shooting long gun according to claim 7, wherein The toy shooting long gun is provided with a sliding sleeve, and the sliding sleeve is fixedly connected to the connecting block. The sliding sleeve is driven by the connecting block to move.
9. The toy shooting long gun according to claim 1, characterized in that, The toy shooting long gun is also provided with a trigger mechanism. The trigger mechanism includes: a trigger and a second return spring. The second return spring is fixedly connected to the trigger.
10. The toy shooting long gun according to claim 9, characterized in that, A micro switch is arranged inside the toy shooting long gun. The micro switch is driven by the trigger to switch between an open state and a closed state; The micro switch is signal-connected to the simulated recoil device and the micro switch is signal-connected to the trigger mechanism.