Laser toy gun

By setting air outlets at the end of the sleeve, the problem of sliding components blocking the air outlets is solved, and the laser toy gun is better simulated and recoil experience is achieved.

CN223138476UActive Publication Date: 2025-07-22GUANGZHOU XIONGZHIYE ANIMATION TECH CO LTD
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Patent Information

Application Number
CN202421874187.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-07-22
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

The sliding components of existing laser toy guns are prone to clogging the exhaust holes, causing the sliding components to fail to fall back smoothly, affecting the recoil simulation effect.

Method used

A vent hole is provided at the end of the sleeve to keep the internal air pressure of the sleeve the same as the external air pressure, avoiding the driving cylinder from blocking the air outlet, ensuring that the driving cylinder can perform smooth reciprocating movement, and the driving sound-generating vibrating block moves in the sliding groove and hits the fixed block, emitting simulated gunshots and recoil forces.

Benefits of technology

The simulation gun sound and recoil experience effect of the laser toy gun is improved, making the simulation process more realistic and smooth.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a laser toy gun. The laser toy gun comprises a gun body and a recoil simulating mechanism arranged in the gun body. The recoil simulation mechanism comprises a driving structure, a sounding vibration block and a fixed seat, the driving structure is located at one end of the fixed seat, and the driving structure is connected with the sounding vibration block; the driving structure comprises a sleeve and a driving air cylinder, the driving air cylinder is inserted into the sleeve, an air outlet is formed in the tail end of the sleeve, the interior of the sleeve communicates with the external environment through the air outlet, and an air nozzle is arranged at the tail end of the driving air cylinder; the fixed seat is provided with a sliding groove, the sounding vibration block is located in the sliding groove, and the other end of the fixed seat is provided with a fixed block; the sounding vibration block is driven by the driving structure to move in the sliding groove. The tail end of the sleeve is provided with the air outlet hole, so that the internal air pressure and the external air pressure of the sleeve are kept the same, the movement smoothness of the driving air cylinder in the sleeve is ensured, and the whole simulated gunshot and simulated recoil experience effect is better.
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Description

Technical Field

[0001] The utility model relates to the technical field of amusement equipment, in particular to a laser toy 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 types such as water guns, scaled-down model guns, sound and light guns, etc. Among them, the scaled-down model gun is the closest to a real gun and is loved by many children.

[0003] For a front-sliding rifle with the application number 202322470089.5, it drives the sliding component to move. When the sliding component moves, a reaction force is generated, thereby forming a recoil force, and the recoil force is feedback to the player. However, when the sliding component slides past the air nozzle exhaust hole provided on the side of the air nozzle, there is a phenomenon that the sliding component blocks the exhaust hole, resulting in the inability of the sliding component to smoothly retract, so that the sliding component cannot move to the corresponding position, reducing the intensity of the formed recoil force, and the experience during the simulated shooting process is poor, affecting the use effect of the toy gun. 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 laser toy gun. By providing an air outlet hole at the end of the sleeve, it is avoided that the driving cylinder blocks the air outlet hole, so that the air pressure inside the sleeve is the same as the external air pressure, ensuring the smooth movement of the driving cylinder inside the sleeve, and making the recoil simulation effect of the laser toy gun better.

[0005] Correspondingly, the utility model proposes a laser toy gun, which includes: a gun body and a simulated recoil force mechanism arranged inside the gun body;

[0006] The simulated recoil force mechanism includes: a driving structure, a sound-generating vibration block and a fixing seat. The driving structure is located at one end of the fixing seat, and the driving structure is connected to the sound-generating vibration block;

[0007] The driving structure includes: a sleeve and a driving cylinder. The driving cylinder is inserted into the sleeve. An air outlet hole is provided at the end of the sleeve, and an air nozzle is provided at the end of the driving cylinder;

[0008] The fixing seat has a sliding groove. The sound-generating vibration block is located inside the sliding groove, and a fixing block is provided at the other end of the fixing seat;

[0009] The sound-generating vibration block is driven by the driving structure to move inside the sliding groove.

[0010] Preferably, the sleeve has a cavity, and the cavity is communicated with the external environment based on the air outlet hole. The driving cylinder is located inside the cavity.

[0011] Preferably, the driving cylinder is connected to the sound - generating vibration block based on a linkage rod, and a sealing ring is provided at one end of the linkage rod connected to the driving cylinder.

[0012] Preferably, a first return spring is provided inside the driving cylinder. One end of the first return spring is connected to the end of the driving cylinder away from the air nozzle, and the other end of the first return spring is connected to the end of the driving cylinder close to the air nozzle.

[0013] Preferably, the air nozzle is used to fill external gas into the driving cylinder or the air nozzle is used to extract the gas inside the driving cylinder to the external environment.

[0014] Preferably, a connecting block is provided at one end of the fixed seat. A reciprocating movement block is provided at the top of the connecting block. The reciprocating movement block is fixedly connected to the connecting block, and the side of the connecting block is connected to the sound - generating vibration block;

[0015] The connecting block is driven to move by the sound - generating vibration block, and the reciprocating movement block is driven to move by the connecting block.

[0016] Preferably, the laser toy gun is further provided with a trigger mechanism, which includes: a trigger and a second return spring, and the second return spring is connected to the trigger;

[0017] The trigger is driven by an external force to rotate around the return spring as the center.

[0018] Preferably, a micro - switch is provided on one side of the trigger mechanism, and the input end of the micro - switch faces the trigger;

[0019] The input end of the micro - switch is driven by the trigger to switch between the open state and the closed state.

[0020] Preferably, a control module is provided inside the laser shooting toy gun. The control module is signal - connected to the micro - switch, and the control module is signal - connected to the driving cylinder.

[0021] Preferably, a telescopic sight is provided at the top of the laser shooting toy gun. The telescopic sight includes an eyepiece group, an objective lens group and an adjusting mechanism. The eyepiece group is located behind the adjusting mechanism, and the objective lens group is located in front of the adjusting mechanism.

[0022] Advantages of the present utility model:

[0023] In the present utility model, air outlets are provided on the end face of the fixed seat, and the gas inside the sleeve is discharged through the air outlets. Moreover, the air outlets make the air pressure inside and outside the sleeve the same, avoiding the situation where the air pressure inside the sleeve increases to hinder the forward movement of the driving cylinder or the driving cylinder blocks the corresponding air outlets, resulting in the abnormal operation of the driving cylinder. This ensures that the driving cylinder can smoothly perform reciprocating motion, enabling the driving cylinder to drive the sound - generating vibration block to move within the sliding groove and strike the fixed block, thereby emitting simulated gunshots and simulated recoil, making the overall experience effect of the simulated gunshots and simulated recoil better. Brief Description of the Drawings

[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model 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 following - described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0025] Figure 1 is the front view of the laser toy gun in the present utility model;

[0026] Figure 2 is the exploded view of the laser toy gun in the present utility model;

[0027] Figure 3 is the exploded view of the simulated recoil mechanism in the present utility model;

[0028] Figure 4 is the cross - sectional view of the laser toy gun in the present utility model;

[0029] Figure 5 is the enlarged view at A in the present utility model.

[0030] In the drawings: 1, gun body; 2, simulated recoil mechanism; 21, driving structure; 211, sleeve; 2110, cavity; 2111, air outlet; 212, driving cylinder; 2121, first return spring; 22, sound - generating vibration block; 23, fixed seat; 24, air nozzle; 25, linkage rod; 26, connecting block; 27, reciprocating motion block; 3, trigger mechanism; 31, trigger; 32, second return spring; 4, micro - switch; 5, sight; 51, eyepiece group; 52, objective lens group; 53, adjustment mechanism. Detailed Embodiment

[0031] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts belong to the scope of protection of the present utility model.

[0032] Figure 1 Shows a front view of the laser toy gun in the present utility model, Figure 2 Shows an exploded view of the laser toy gun in the present utility model, Figure 3 Shows an exploded view of the simulated recoil mechanism in the present utility model, Figure 4 Shows a cross-sectional view of the laser toy gun in the present utility model, Figure 5 Shows an enlarged view of part A in the present utility model. The laser toy gun includes: a gun body 1 and a simulated recoil mechanism 2 provided in the gun body 1; the simulated recoil mechanism 2 makes a reciprocating motion inside the gun body 1 to simulate the recoil force after a real gun fires a bullet. The simulated recoil mechanism 2 includes: a driving structure 21, a sound-generating vibration block 22 and a fixing seat 23. The driving structure 21 is located at one end of the fixing seat 23, and the driving structure 21 is connected to the sound-generating vibration block 22; the driving structure 21 includes: a sleeve 211 and a driving cylinder 212. The driving cylinder 212 is inserted into the sleeve 211. An air outlet hole 2111 is provided at the end of the sleeve 211, and a nozzle 24 is provided at the end of the driving cylinder 212; the fixing seat 23 has a sliding groove, the sound-generating vibration block 22 is located in the sliding groove, and a fixing block is provided at the other end of the fixing seat 23; the sound-generating vibration block 22 is driven by the driving structure 21 to move in the sliding groove. The driving mechanism is used to drive the sound-generating vibration block 22 to move in the sliding groove and hit the fixing block, generating a simulated gunfire sound and a simulated recoil force.

[0033] It should be noted that the air outlet 2111 is located on the end face of the sleeve 211 near the fixed seat 23 or on the side surface of the sleeve 211, that is, the end of the sleeve 211 is close to the fixed seat 23. Arranging the air outlet 2111 at the end of the sleeve 211 is beneficial for the gas inside the sleeve 211 to be discharged through the air outlet 2111, and the air outlet 2111 makes the air pressure inside and outside the sleeve 211 the same, avoiding the increase of the air pressure inside the sleeve 211 from hindering the forward movement of the driving cylinder 212 or blocking the corresponding air outlet 2111 by the driving cylinder 212, resulting in the abnormal operation of the driving cylinder 212. This ensures that the driving cylinder 212 can smoothly perform reciprocating motion, enabling the driving cylinder to drive the sound - generating vibration block 22 to move in the sliding groove and strike the fixed block, emitting simulated gunshots and simulated recoil forces, thus making the overall experience effect of the simulated gunshots and simulated recoil forces better.

[0034] Furthermore, the sleeve 211 has a cavity 2110, and the cavity 2110 communicates with the external environment based on the air outlet 2111. The driving cylinder 212 is located inside the cavity 2110. The air outlet 2111 connects the inside of the sleeve 211 with the external environment, making the air pressure inside the sleeve 211 the same as that of the external environment, avoiding too small air pressure inside the sleeve 211 and increasing the difficulty of moving the driving cylinder 212. This is beneficial for the driving cylinder 212 to smoothly move back and forth inside the sleeve 211, ensuring that the sound - generating vibration block 22 has sufficient momentum to strike the fixed block, thereby emitting simulated gunshots and simulated recoil forces, and making the overall experience effect of the simulated gunshots and simulated recoil forces better.

[0035] Furthermore, the driving cylinder 212 is connected to the sound - generating vibration block 22 based on a linkage rod 25, and a sealing ring is provided at one end of the linkage rod 25 connecting the driving cylinder 212. One end of the linkage rod 25 is fixedly connected to the sound - generating vibration block 22, and the other end of the linkage rod 25 is fixedly connected to the driving cylinder 212. When the driving cylinder 212 moves towards the fixed seat 23, it drives the sound - generating vibration block 22 to move towards the fixed block on the fixed seat 23, so that the sound - generating vibration block 22 strikes the fixed block, ensuring that the sound - generating vibration block can strike the fixed block and emit simulated gunshots and simulated recoil forces.

[0036] Further, a first return spring 2121 is provided inside the driving cylinder 212. One end of the first return spring 2121 is connected to the end of the driving cylinder 212 away from the air nozzle 24, and the other end of the first return spring 2121 is connected to the end of the driving cylinder 212 close to the air nozzle 24. The first return spring 2121 is used to pull the driving cylinder 212 back to its initial position. After the sounding vibration block 22 collides with the fixed block to produce sound, the air nozzle 24 extracts the gas inside the driving cylinder 212, reducing the air pressure inside the driving cylinder 212. At this time, the first return spring 2121 inside the driving cylinder 212 exerts a reaction force on the output end of the driving cylinder 212, pulling the output end of the driving cylinder 212 back to its original position. At the same time, the air pressure inside the sleeve 211 exerts a force on the output end of the driving cylinder 212, pushing the output end of the driving cylinder 212 backward to reset the output end of the driving cylinder 212.

[0037] Further, the air nozzle 24 is used to fill the driving cylinder 212 with external gas or extract the gas inside the driving cylinder 212 to the external environment. When the air nozzle 24 fills the driving cylinder 212 with external gas, the air pressure inside the driving cylinder 212 increases, and the force exerted by the gas on the linkage rod 25 increases, causing the linkage rod 25 to move toward the fixed seat 23, thereby driving the sounding vibration block to collide with the fixed block and simulate real gunshots and recoil. At the same time, the gas inside the sleeve 211 is discharged through the air outlet hole 2111, and the air outlet hole 2111 equalizes the air pressure inside and outside the sleeve 211, preventing the increase in air pressure inside the sleeve 211 from hindering the forward movement of the driving cylinder 212, which is beneficial for the driving cylinder 212 to smoothly perform reciprocating motion, driving the sounding vibration block 22 to move in the sliding groove and collide with the fixed block to produce simulated gunshots and recoil. When the air nozzle 24 extracts the gas inside the driving cylinder 212 to the external environment, the air pressure inside the driving cylinder 212 decreases, and the force exerted by the gas on the linkage rod 25 decreases. The gas outside the sleeve 211 enters the sleeve 211 through the air outlet hole 2111 and exerts a force on the linkage rod 25, pushing the driving cylinder 212 backward, which helps the driving cylinder 212 to smoothly perform reciprocating motion.

[0038] Furthermore, a connecting block 26 is provided at one end of the fixing seat 23, and a reciprocating block 27 is provided at the top of the connecting block 26. The reciprocating block 27 is fixedly connected to the connecting block 26, and the side of the connecting block 26 is connected to the sound-generating vibration block 22; the connecting block 26 is moved by the vibration-generating block, and the reciprocating block 27 is moved by the connecting block 26, and the connecting block 26 is connected to the sound-generating vibration block 22 based on a connecting rod. When the connecting block 26 is driven by the connecting rod to reciprocate, the reciprocating block 27 is also driven by the connecting block 26 to reciprocate, and when the connecting block 26 moves backward, a recoil force is generated due to inertia, and at the same time, the muzzle and the gun body 1 of the laser shooting toy gun will shake slightly. Since the larger the mass, the greater the inertia, when the connecting block 26 drives the reciprocating block 27 to move backward together, the inertia of the two is greater, making the shaking of the muzzle and the gun body 1 of the laser shooting toy gun more obvious, and can better simulate the use of a real gun, thereby improving the player's gaming experience.

[0039] Furthermore, the laser toy gun is also provided with a trigger mechanism 3, which includes: a trigger 31 and a second return spring 32, wherein the second return spring 32 is connected to the trigger 31; the trigger 31 is driven by an external force to rotate with the return spring as the center. The second return spring 32 is used to reset the trigger 31. When the trigger 31 is pressed by an external force, the trigger 31 rotates in the pressing direction with the second return spring 32 as the center. The trigger 31 has an action force on the second return spring 32 to deform the second return spring 32, and at this time, the second return spring 32 has a reaction force on the trigger 31. When the external force disappears, the action force of the trigger 31 on the second return spring 32 also disappears, and the second return spring 32 still has a reaction force on the trigger 31. After receiving this reaction force, the trigger 31 returns along the original path until the second return spring 32 has no action force on the trigger 31, that is, the second return spring 32 is reset to the original position, that is, the trigger 31 also returns to the initial position.

[0040] Further, a microswitch 4 is provided on one side of the trigger mechanism 3, and the input end of the microswitch 4 faces the trigger 31; the input end of the microswitch 4 is driven by the trigger 31 to switch between an open state and a closed state. When the trigger 31 is driven by an external force to rotate around the second return spring 32, and the trigger 31 exerts a force on the input end of the microswitch 4, causing the input end of the microswitch 4 to move towards the body of the microswitch 4, and the input end of the microswitch 4 contacts the body of the microswitch 4, the circuit inside the microswitch 4 is connected, thereby generating a corresponding electrical signal and transmitting this electrical signal to the corresponding component.

[0041] Further, a control module is provided inside the laser toy gun. The control module is signal-connected to the microswitch 4 and the control module is signal-connected to the driving cylinder 212. When the microswitch 4 is driven by the trigger 31 to switch from the closed state to the open state, the circuit inside the microswitch 4 is connected, and the microswitch 4 generates an electrical signal and sends it to the control module. The control module generates a first control signal and sends it to the corresponding component. The air nozzle 24 fills the driving cylinder 212 with gas from an external air source, causing the inside of the driving cylinder 212 to be filled with gas, and then pushing the linkage rod 25 forward, causing the sound and vibration block 22 to strike the fixed seat 23 once. After the sound and vibration block 22 strikes the fixed block, the air nozzle 24 extracts the gas inside the driving cylinder 212, and the sound and vibration block 22 is driven by the driving cylinder 212 to move to the initial position. When the microswitch 4 is driven by the trigger 31 to switch from the open state to the closed state, the circuit inside the microswitch 4 is disconnected, and the microswitch 4 does not send any electrical signal to the control module. The control module generates a second control signal and sends it to the corresponding component. The air nozzle 24 maintains a resting state under this second control signal, and the driving cylinder 212 stops working, ensuring that the driving cylinder 212 drives the linkage rod 25 to make a reciprocating motion only after being driven by the trigger 31 once, so that the simulated recoil mechanism 2 emits a real simulated gunshot and a real simulated recoil only after being driven by the trigger 31 once.

[0042] Further, a sight 5 is provided on the top of the laser toy gun. The sight 5 includes an eyepiece group 51, an objective lens group 52, and an adjustment mechanism 53. The eyepiece group 51 is located behind the adjustment mechanism 53, and the objective lens group 52 is located in front of the adjustment mechanism 53. The player can use the adjustment mechanism 53 to adjust the focal length of the eyepiece group 51 or the objective lens group 52 according to their actual vision, so that the player can more clearly see the shooting hit point projected by the laser toy gun and improve the fun of playing.

[0043] In summary, in the present utility model, air outlet holes are provided on the end face of the fixed seat, and the gas inside the sleeve is discharged through the air outlet holes. The air outlet holes make the air pressure inside and outside the sleeve the same, avoiding the increase in air pressure inside the sleeve from hindering the forward movement of the driving cylinder or the driving cylinder blocking the corresponding air outlet holes, resulting in the abnormal operation of the driving cylinder. This ensures that the driving cylinder can smoothly reciprocate, driving the sound-generating vibration block to move in the sliding groove and strike the fixed block, causing the driving cylinder to emit simulated gunshots and simulated recoil forces, making the overall experience of simulated gunshots and simulated recoil forces better.

[0044] In addition, the above has introduced in detail a laser toy 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 to the present utility model.

Claims

1. A laser toy gun, characterized in that, The laser toy gun includes: a gun body and a simulated recoil mechanism disposed within the gun body; The simulated recoil mechanism includes: a drive structure, a sound - generating vibration block, and a fixed seat. The drive structure is located at one end of the fixed seat, and the drive structure is connected to the sound - generating vibration block; The drive structure includes: a sleeve and a drive cylinder. The drive cylinder is inserted into the sleeve. An air outlet is provided at the end of the sleeve, and a nozzle is provided at the end of the drive cylinder; The fixed seat has a sliding groove. The sound - generating vibration block is located within the sliding groove, and a fixed block is provided at the other end of the fixed seat; The sound - generating vibration block is driven by the drive structure to move within the sliding groove.

2. The laser toy gun according to claim 1, wherein The sleeve has a cavity. The cavity communicates with the external environment based on the air outlet, and the drive cylinder is located within the cavity.

3. The laser toy gun according to claim 1, wherein The drive cylinder is connected to the sound - generating vibration block based on a linkage rod. A sealing ring is provided on one end of the linkage rod connecting the drive cylinder.

4. The laser toy gun according to claim 1, characterized in that, A first return spring is provided within the drive cylinder. One end of the first return spring is connected to the output end of the drive cylinder, and the other end of the first return spring is connected to the end of the drive cylinder near the nozzle.

5. The laser toy gun according to claim 1, characterized in that, The air outlet is located on the end face or the side face of the sleeve near the fixed - seat side.

6. The laser toy gun according to claim 1, characterized in that, One end of the fixed seat is provided with a connecting block. A reciprocating motion block is provided on the top of the connecting block. The reciprocating motion block is fixedly connected to the connecting block, and the side face of the connecting block is connected to the sound - generating vibration block; The connecting block is driven to move by the sound - generating vibration block, and the reciprocating motion block is driven to move by the connecting block.

7. The laser toy gun according to claim 1, characterized in that, The laser toy gun is further provided with a trigger mechanism. The trigger mechanism includes: a trigger and a second return spring. The second return spring is connected to the trigger; The trigger is driven by an external force to rotate with the second return spring as the center.

8. The laser toy gun according to claim 7, characterized in that, A micro - switch is provided on one side of the trigger mechanism. The input end of the micro - switch is located on one side of the trigger; The input end of the micro - switch is driven by the trigger to switch between an open state and a closed state.

9. The laser toy gun according to claim 8, characterized in that, A control module is further provided within the laser toy gun. The control module is signal - connected to the micro - switch, and the control module is signal - connected to the simulated recoil mechanism.

10. The laser toy gun according to claim 1, characterized in that, A sight is provided on the top of the laser toy gun. The sight includes an eyepiece group, an objective lens group, and an adjustment mechanism. The eyepiece group is located behind the adjustment mechanism, and the objective lens group is located in front of the adjustment mechanism.

Citation Information

Patent Citations

  • Front sliding type toy gun

    CN220689905U