Shooting water gun

By introducing a water delivery device and a flow control mechanism into the shooting water gun, switching between multiple water outlet modes can be achieved, solving the problem of the single mode of existing water guns and improving user experience and equipment life.

CN223346023UActive Publication Date: 2025-09-16GUANGZHOU XIONGZHIYE ANIMATION TECH CO LTD
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Patent Information

Application Number
CN202422409717.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-09-16
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

Existing toy water guns have a single water discharge mode and cannot be changed according to different play scenarios, resulting in a low user experience.

Method used

A shooting water gun is designed, which adopts a water delivery device and a flow control mechanism. By extracting water from an external source and controlling the water flow with a solenoid valve, it can realize switching between multiple water discharge modes.

Benefits of technology

It improves the playability and usage experience of the shooting water gun, extends the service life of the water pipe, and enhances the stability and fun of the equipment.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223346023U_ABST
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Abstract

The utility model discloses a shooting water gun. The shooting water gun comprises a gun body and a water delivery device, the water conveying device comprises a water jetting opening, a water conveying pipe and a water pumping mechanism; the water jetting opening is located in the position, corresponding to a muzzle, of the gun body, the water conveying pipe comprises a water inlet pipe and a water outlet pipe, and a flow control mechanism is arranged at the joint of the water inlet pipe and the water outlet pipe. One end of the water inlet pipe is connected with the water pumping mechanism, the other end of the water inlet pipe is connected with the flow control mechanism, one end of the water outlet pipe is connected with the water jetting port, and the other end of the water outlet pipe is connected with the flow control mechanism. The water delivery device and the flow control mechanism are arranged, the water delivery device directly pumps an external water source, the flow control mechanism controls the water outlet mode of the water delivery device, the modes of ejected water columns are controlled to be different according to different game scenes, and the playability of the shooting water gun is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of amusement equipment, in particular to a shooting water gun. Background Art

[0002] Existing toy water guns primarily compress the air in a rubber tube inside the gun when the user pulls the trigger, thereby applying pressure to the water inside the gun, increasing the pressure inside the gun and causing the water to be ejected from the gun muzzle under high pressure. This design results in a single pattern of water ejected each time during use, resulting in a toy water gun with only one water discharge mode. It cannot be changed to different modes based on the intended play scenario, resulting in a poor user experience. Utility Model Content

[0003] The purpose of the utility model is to overcome the shortcomings of the existing technology. The utility model provides a shooting water gun. By setting a water delivery device and a flow control mechanism, the water delivery device directly draws water from an external source, and the flow control mechanism controls the water discharge mode of the water delivery device. Different water column modes are ejected according to different control modes according to different game scenes, thereby improving the playability of the shooting water gun.

[0004] Accordingly, the present invention provides a shooting water gun, which comprises: a gun body and a water delivery device;

[0005] The water delivery device includes a water ejector, a water delivery pipe and a water pumping mechanism;

[0006] The water jet is located at a position of the gun body corresponding to the muzzle, and the water delivery pipe includes a water inlet pipe and a water outlet pipe, wherein a flow control mechanism is provided at the connection between the water inlet pipe and the water outlet pipe;

[0007] One end of the water inlet pipe is connected to the pumping mechanism, the other end of the water inlet pipe is connected to the flow control mechanism, one end of the water outlet pipe is connected to the water ejection port, and the other end of the water outlet pipe is connected to the flow control mechanism.

[0008] Preferably, the water inlet pipe includes a first sub-water inlet pipe, a second sub-water inlet pipe and a third sub-water inlet pipe, and the first sub-water inlet pipe, the second sub-water inlet pipe and the third sub-water inlet pipe are connected through a three-way connector.

[0009] Preferably, the water outlet pipe includes a first sub-water outlet pipe and a second sub-water outlet pipe, the first sub-water outlet pipe is connected to the second sub-water inlet pipe, and the second sub-water outlet pipe is connected to the third sub-water inlet pipe.

[0010] Preferably, the flow control mechanism includes a first solenoid valve and a second solenoid valve;

[0011] The first sub-water outlet pipe is connected to the second sub-water inlet pipe based on a first solenoid valve, and the second sub-water outlet pipe is connected to the third sub-water inlet pipe based on a second solenoid valve.

[0012] Preferably, the gun body comprises two symmetrical gun body shells, and the two symmetrical gun body shells form the gun body;

[0013] A plurality of reinforcing ribs are provided in each of the gun body shells, and any of the reinforcing ribs is recessed to form a limiting groove;

[0014] The reinforcing ribs on one of the two symmetrical gun body shells abut against the corresponding reinforcing ribs on the other gun body shell, and the limiting grooves of the corresponding reinforcing ribs of the two gun body shells cooperate to form a limiting hole, and the water delivery pipe is clamped in the corresponding limiting hole.

[0015] Preferably, the dynamic device comprises: a mounting frame, a reciprocating motion mechanism and a driving motor;

[0016] A movable guide rail is provided in the installation frame, the reciprocating motion mechanism is installed on the movable guide rail, a first return spring is provided at one end of the reciprocating motion mechanism, and the reciprocating motion mechanism is driven by the drive motor and the first return spring to perform reciprocating motion on the movable guide rail.

[0017] Preferably, the reciprocating motion mechanism comprises: a motion bracket, a rotating bearing and a rotating paddle arranged at the output end of the driving motor;

[0018] The rotary bearing is mounted on the motion bracket, and the rotary bearing is tangent to the rotary paddle.

[0019] Preferably, the shooting water gun further comprises a trigger mechanism, wherein the trigger mechanism comprises a trigger and a second return spring, one end of the second return spring is connected to the trigger, and the other end of the return spring is connected to the inner wall of the gun body.

[0020] Preferably, a micro switch is provided in the gun body, and the micro switch is located at the rear end of the trigger, and the micro switch is driven by the trigger to switch between connecting the internal circuit and disconnecting the internal circuit;

[0021] The micro switch is connected to the water delivery device by signal, and the micro switch is connected to the motion sensing device by signal.

[0022] Beneficial effects of the utility model:

[0023] The utility model is provided with a water delivery device, which uses a water pumping motor to directly draw water from an external source, and then transports the water along the water delivery pipe and shoots it out of the water outlet, thereby reducing the steps of water delivery by the internal structure of the gun body, reducing the risk of internal structure wear, and improving the user experience of players; the utility model is also provided with a flow control mechanism to control the water flow rate shot out of the shooting pistol, relieve the pressure inside the water pipe, and thus protect the service life of the water pipe. This flow control structure can adaptively adjust the water flow rate in combination with the role in the water gun application scenario, which can enhance the experience and fun of shooting water guns. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0025] Figure 1 This is a schematic structural diagram of the shooting water gun in the utility model;

[0026] Figure 2 It is an exploded view of the shooting water gun in the utility model;

[0027] Figure 3 This utility model Figure 2 A magnified view of point A in the figure;

[0028] Figure 4 This is a schematic structural diagram of the gun body shell in the utility model;

[0029] Figure 5 It is an exploded view of the dynamic device in the utility model.

[0030] In the accompanying drawings, 1, gun body; 10, gun body shell; 11, reinforcing rib; 111, limiting groove; 2, water delivery device; 21, water ejection port; 211, water outlet; 22, water delivery pipe; 221, water inlet pipe; 2211, first sub-water inlet pipe; 2212, second sub-water inlet pipe; 2213, third sub-water inlet pipe; 222, flow control mechanism; 2221, first solenoid valve; 2222, second solenoid valve; 223, water outlet pipe; 2231, first sub-water inlet pipe; 2232, second sub-water inlet pipe; 2233, third sub-water inlet pipe; 2234, third sub-water inlet pipe; 2235, third sub-water inlet pipe; 2236, third sub-water inlet pipe; 2237, third sub-water inlet pipe; 2238, third sub-water inlet pipe; 2239, third sub-water inlet pipe; 2240, third sub-water inlet pipe; 2241, third sub-water inlet pipe; 2242, third sub-water inlet pipe; 2243, third sub-water inlet pipe; 2244, third sub-water inlet pipe; 2245, third sub-water inlet pipe; 2246, third sub-water inlet pipe; 2247, third sub-water inlet pipe; 2248, third sub-water inlet pipe; 2249, third sub-water inlet pipe; 2250, third sub-water inlet pipe; 2251, third sub-water inlet pipe; 2252, third sub-water inlet pipe; 2253, third sub-water inlet pipe; 2254, third sub-water inlet pipe; 2255, third sub-water inlet First sub-outlet pipe; 2232, second sub-outlet pipe; 23, pumping mechanism; 3, dynamic device; 31, mounting frame; 32, reciprocating motion mechanism; 321, motion bracket; 3211, fixing frame; 322, rotating bearing; 323, rotating paddle; 33, driving motor; 34, moving guide rail; 35, first return spring; 4, sliding sleeve; 5, infrared light eye; 6, trigger mechanism; 61, trigger; 62, second return spring; 7, micro switch. DETAILED DESCRIPTION

[0031] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] Figure 1 The structure diagram of the shooting water gun in the utility model is shown. Figure 2 Shows an exploded view of the shooting water gun in the utility model, Figure 3 Shown in the utility model Figure 2 A magnified view of point A in the figure, Figure 4 It shows the structural diagram of the gun body shell in the utility model. Figure 5 An exploded view of the dynamic device in the present invention is shown, and the shooting water gun includes: a gun body 1 and a water delivery device 2; the water delivery device 2 includes a water ejection port 21, a water delivery pipe 22 and a pumping mechanism 23; the water ejection port 21 is located at a position corresponding to the muzzle of the gun body 1, and the water delivery pipe 22 includes an inlet pipe 221 and an outlet pipe 223, and a flow control mechanism 222 is provided at the connection between the inlet pipe 221 and the outlet pipe 223; one end of the inlet pipe 221 is connected to the pumping mechanism 23, and the other end of the inlet pipe 221 is connected to the flow control mechanism 222, one end of the outlet pipe 223 is connected to the water ejection port 21, and the other end of the outlet pipe 223 is connected to the flow control mechanism 222. The pumping mechanism 23 is used to draw water from an external source into the water delivery pipe 22. The water delivery pipe 22 is used to transport the external water source to the water ejection port 21. The water ejection port 21 is used to eject the water source from the interior of the gun body 1. The flow control mechanism 222 is used to control the flow of water from the water inlet pipe 221 into the water outlet pipe 223, thereby relieving the pressure inside the water pipe and thus protecting the service life of the water pipe. In this embodiment, the water ejection port 22 is provided with four water outlets 221.

[0033] Furthermore, the water inlet pipe 221 includes a first sub-water inlet pipe 2211, a second sub-water inlet pipe 2212, and a third sub-water inlet pipe 2213. The first sub-water inlet pipe 2211, the second sub-water inlet pipe 2212, and the third sub-water inlet pipe 2213 are connected via a three-way connector. The three-way connector tightly connects the first sub-water inlet pipe 2211, the second sub-water inlet pipe 2212, and the third sub-water inlet pipe 2213 to form a stable integral structure, thereby enhancing the overall strength of the water delivery pipe, preventing the water delivery pipe from loosening or falling off due to external forces or internal pressure changes, and effectively dissipating and reducing such vibrations, thereby protecting the stability and safety of the pipeline system.

[0034] Furthermore, the water outlet pipe 223 includes a first sub-water outlet pipe 2231 and a second sub-water outlet pipe 2232. The first sub-water outlet pipe 2231 is connected to the second sub-water inlet pipe 2212, and the second sub-water outlet pipe 2232 is connected to the third sub-water inlet pipe 2213. Fluctuations in water flow may cause certain impacts on the equipment. By connecting the water inlet pipe 221 and the water outlet pipe 223, the speed of water flow changes can be slowed down, reducing the impact on the equipment and thus extending the service life of the equipment.

[0035] Furthermore, the flow control mechanism includes a first solenoid valve 2221 and a second solenoid valve 2222. The first sub-water outlet pipe 2231 is connected to the second sub-water inlet pipe 2212 via the first solenoid valve 2221, and the second sub-water outlet pipe 2232 is connected to the third sub-water inlet pipe 2213 via the second solenoid valve 2222. The first solenoid valve 2221 and the second solenoid valve 2222 are used to control the flow in the corresponding pipes, preventing changes in water flow from impacting the equipment. This helps slow the rate of water flow changes, reduces the impact on the equipment, and thus extends the service life of the equipment. Specifically, the first solenoid valve 2221 reduces the change in water flow between the first sub-water outlet pipe 2231 and the second sub-water outlet pipe 2232 and controls the flow between the two pipes. Similarly, the second solenoid valve 2222 reduces the change in water flow between the second sub-water outlet pipe 2232 and the third sub-water outlet pipe 223 and controls the flow between the two pipes.

[0036] Specifically, the pumping mechanism 23 delivers external water through the first sub-water inlet pipe 2211 to the second sub-water inlet pipe 2212, and then the first solenoid valve 2221 controls the water flow of the first sub-water outlet pipe 2231, causing the water to be ejected from the water outlet connected to the first sub-water outlet pipe 2231. Alternatively, the pumping mechanism 23 delivers external water through the first sub-water inlet pipe 2211 to the third sub-water inlet pipe 2213, and then the second solenoid valve 2222 controls the water flow of the second sub-water outlet pipe 2232, causing the water to be ejected from the water outlet connected to the second sub-water outlet pipe 2232. The first sub-water inlet pipe 2211 simultaneously delivers water to the second sub-water inlet pipe 2212 and the third sub-water inlet pipe 2213, and the two solenoid valves simultaneously control the corresponding water outlet pipes 223, causing the water to be ejected from the corresponding water outlets.

[0037] It should be noted that the flow control mechanism 222 here can be combined with the structure of the water gun to set one or more solenoid valves, that is, when the shooting water gun only needs one water outlet to cooperate with shooting in the application scenario, it can use a solenoid valve to control the water flow control of the water supply device, that is, only one solenoid valve needs to be set between the water inlet pipe and the water outlet pipe; when the shooting water gun needs multiple water outlets to cooperate with shooting in the application scenario, it can use multiple solenoid valves to control the water flow control of the water supply device, that is, only multiple solenoid valves need to be set between the water inlet pipe and the water outlet pipe, for example, four water outlets can be controlled by two solenoid valves, three solenoid valves, or four solenoid valves. This control allows the shooting water gun to adaptively configure the corresponding water outlet mode in combination with different application scenarios or game characters, which can enhance the experience and fun of the shooting water gun.

[0038] It should be noted that the pumping mechanism 23 includes a pumping motor and a pumping pump. The pumping motor provides power for the pumping pump; and the pumping pump converts the mechanical energy of the motor into kinetic energy and potential energy of water to achieve the function of pumping water.

[0039] Furthermore, the water delivery pipe 22 extends from the bottom of the handle of the gun body 1 along the inner wall of the gun body 1 near the muzzle to the barrel of the gun body 1, and then extends directly from the barrel of the gun body 1 to the muzzle of the gun body 1, avoiding the water delivery pipe from being bent when distributed inside the gun body 1, resulting in a reduction in the inner diameter of the water delivery pipe 22, which is conducive to ensuring the smoothness of the water delivery pipe 22 when delivering water.

[0040] Furthermore, the gun body 1 includes two symmetrical gun body shells 10, and the two symmetrical gun body shells 10 form the gun body 1; each of the gun body shells 10 is provided with a plurality of reinforcing ribs 11, and any of the reinforcing ribs 11 is recessed to form a limiting groove 111; the reinforcing rib 111 on one of the two symmetrical gun body shells 10 abuts against the corresponding reinforcing rib 111 on the other gun body shell 10, and the limiting grooves 111 of the corresponding reinforcing ribs of the two gun body shells 10 cooperate to form a limiting hole, and the water delivery pipe 22 is clamped in the corresponding limiting hole. The reinforcing ribs 11 are used to strengthen the structural strength inside the gun body 1, effectively reducing the twisting and deformation during use. The limiting grooves 111 are used to limit the moving range of the water delivery pipe 22, avoiding the water delivery pipe 22 from swinging when transporting water, which affects the use status of other components inside the shooting water gun. It is beneficial to limit the water delivery pipe 22 to move slightly in the limiting grooves 111 when transporting water, reducing the risk of the water delivery pipe 22 touching other components and causing failure of other components, thereby increasing the service life of other components.

[0041] Furthermore, the shooting water gun is also equipped with a dynamic device 3 and a slide 4. The dynamic device 3 is located at the breech of the shooting water gun, and the slide 4 is located above the dynamic device, covering and connected to the dynamic device 3. The slide 4 is driven by the dynamic device 3 to reciprocate on the gun body 1. The dynamic device 3 drives the slide 4 to reciprocate on the gun body to simulate the recoil of the gun. The dynamic device 3 is used to simulate the recoil generated by the gun after the gun is fired, and the slide 4 is used to simulate the movement of the gun barrel after the gun is fired, thereby enhancing the player's gaming experience.

[0042] Furthermore, the dynamic device 3 includes a mounting frame 31, a reciprocating mechanism 32, and a drive motor 33. A movable rail 34 is disposed within the mounting frame 31, on which the reciprocating mechanism 32 is mounted. A first return spring 35 is disposed at one end of the reciprocating mechanism 32. Driven by the drive motor 33 and the first return spring 35, the reciprocating mechanism 32 reciprocates along the movable rail 34. The movable rail 34 is mounted at the bottom of the mounting frame 31, meaning that the reciprocating mechanism 32 is mounted within the mounting frame 31. One end of the first return spring 35 is connected to the reciprocating mechanism 32, while the other end is connected to a sidewall of the mounting frame 31. This prevents the reciprocating mechanism 32 from colliding with the sidewall during use and provides a reaction force to the reciprocating mechanism 32, causing it to return to its original position. This ensures that the dynamic device 3 can continuously output dynamic motion, enhancing the gameplay experience of the water gun.

[0043] Furthermore, the reciprocating motion mechanism 32 includes a motion bracket 321, a rotating bearing 322, and a rotating paddle 323 disposed at the output end of the drive motor 33. The rotating bearing 322 is mounted on the motion bracket 321 and is tangential to the rotating paddle 323. The rotating paddle 323 remains tangential to the rotating bearing 322. When the rotating paddle 323 rotates, the rotating bearing 322 rotates along the sidewall of the rotating paddle 323. Specifically, the rotating bearing 322 moves from the top of one blade of the rotating paddle 323 to the root of one blade of the rotating paddle 323, and then from the root of one blade of the rotating paddle 323 to the top of the next blade of the rotating paddle 323. During this movement, the rotating bearing 322 drives the motion bracket 321 to move, causing the motion bracket 321 to reciprocate on the movable guide rail 34, thereby generating a sense of movement and enhancing the gaming experience of the shooting water gun.

[0044] Furthermore, a fixing bracket 3211 is provided on the motion bracket 321. The fixing bracket 3211 covers the rotating bearing 322 and the rotating paddle 323, and the drive motor 33 is mounted on the upper end surface of the fixing bracket 3211. The fixing bracket 3211 limits the range of motion of the rotating bearing 322 and the rotating paddle 323, preventing the rotating bearing 322 or the rotating paddle 323 from contacting other components during operation, which could cause wear or damage to the rotating shaft or the rotating paddle 323, shorten the motion stroke of the reciprocating motion mechanism 32, and reduce the dynamic effect provided. This helps protect the integrity of the components of the rotating bearing 322 or the rotating paddle 323 and ensure that the reciprocating motion mechanism 32 provides sufficient dynamic effect.

[0045] Specifically, when the drive motor 33 rotates, it drives the paddle 323 to rotate. As the paddle 323 rotates, the bearing moves along the side of the paddle 323 from the top of one blade to the root of that blade, and then from the root of one blade to the top of the next blade. As it moves from the top of one blade to the root of that blade, the paddle 323 exerts a force on the bearing, pushing it toward the first return spring 35. This in turn drives the movable seat to move toward the return spring on the movable guide rail 34. As the movable seat moves toward the return spring, it exerts a force on the return spring, compressing the first return spring 35. When the paddle 323 moves from the root of a blade to the top of the next blade, it continues to rotate. At this time, the paddle 323 has no force on the bearing, and the force of the moving seat on the first return spring 35 disappears. The first return spring 35 has a reaction on the moving seat, causing the moving seat to move on the moving guide rail 34 away from the first return spring 35, thereby causing the bearing to move toward the paddle 323, so that the bearing remains in contact with the paddle 323. In other words, when the paddle 323 rotates, it can drive the moving seat to reciprocate in the fixed frame, providing the player with a recoil force that simulates a real gun and enhancing the player's experience.

[0046] Furthermore, the shooting water gun also includes a trigger mechanism 6, which includes a trigger 61 and a second return spring 62. One end of the second return spring 62 is connected to the trigger 61, and the other end of the second return spring 62 is connected to the inner wall of the gun body 1. The second return spring 62 is used to reset the trigger 61. When the trigger 61 is driven to move backward by an external force, the second return spring 62 is compressed by the force of the trigger 61. When the external force on the trigger 61 disappears, the second return spring 62 exerts a reaction force on the trigger 61. The trigger 61 moves forward under this reaction force and moves to its initial position. This helps the trigger mechanism 6 shorten the operation cycle and improve the gaming experience.

[0047] Furthermore, a microswitch 7 is provided within the gun body 1 and is located at the rear end of the trigger 61. The microswitch 7 is driven by the trigger 61 to switch between connecting and disconnecting the internal circuit. When the trigger 61 is pulled, the trigger 61 exerts a backward force on the output end of the microswitch 7, connecting the internal circuit of the microswitch 7 and causing the microswitch 7 to generate and transmit an electrical signal to the motion-sensing device 3 or the water delivery device 2. When the force exerted by the trigger 61 disappears and the trigger 61 moves forward, the force exerted on the output end of the microswitch 7 disappears, disconnecting the internal circuit of the microswitch 7 and causing the microswitch 7 to stop generating and transmitting electrical signals to the motion-sensing device 3 or the water delivery device 2. This facilitates precise control of the motion-sensing device 3 outputting motion and the water delivery device 2 ejecting water from the shooting water gun.

[0048] Furthermore, the micro switch 7 is connected to the water delivery device 2 by signal, and the micro switch 7 is connected to the dynamic device 3 by signal. When the microswitch 7 is driven by the trigger 61 to connect the internal circuit, the microswitch 7 generates and sends a first electrical signal to the water supply device 2. After the water supply device 2 receives the first electrical signal, the external water pumping motor 23 starts to extract external water source and supply water to the water supply pipe 22, and transports the water along the water supply pipe 22 to the water ejection port 21. The water ejection port 21 ejects the water to simulate the shooting of a bullet by a gun. At the same time, the microswitch 7 generates and sends a second electrical signal to the dynamic device 3. After the dynamic device 3 receives the second electrical signal, the drive motor 33 starts to rotate, causing the rotating paddle 323 to rotate 120°, that is, the rotating bearing 322 moves from the top of one blade of the rotating paddle 323 along the side wall of the rotating paddle 323 to the top of the next blade, causing the reciprocating motion mechanism 32 to perform a reciprocating motion to simulate the dynamic feeling after the gun is shot.

[0049] To sum up, the present invention sets a water delivery device, which uses a water pumping motor to directly draw water from an external source, and then transports the water along the water delivery pipe and shoots it out at the water outlet, reducing the steps of water delivery by the internal structure of the gun body, reducing the risk of internal structure wear, and improving the user experience of players; the present invention is also provided with a flow control mechanism to control the water flow rate shot out of the shooting pistol, relieve the pressure inside the water pipe, and thus protect the service life of the water pipe. This flow control structure can adaptively adjust the water flow rate in combination with the role in the water gun application scenario, which can enhance the experience and fun of shooting water guns.

[0050] In addition, the above is a detailed introduction to a shooting water gun provided by an embodiment of the present invention. Specific examples are used herein to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method and core idea of ​​the present invention. At the same time, for those skilled in the art, according to the idea of ​​the present invention, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present invention.

Claims

1. A shooting water gun, characterized in that: The shooting water gun comprises: a gun body and a water delivery device; The water delivery device includes a water ejector, a water delivery pipe and a water pumping mechanism; The water jet is located at a position of the gun body corresponding to the muzzle, the water delivery pipe includes a water inlet pipe and a water outlet pipe, and a flow control mechanism is provided at the connection between the water inlet pipe and the water outlet pipe; One end of the water inlet pipe is connected to the pumping mechanism, the other end of the water inlet pipe is connected to the flow control mechanism, one end of the water outlet pipe is connected to the water ejection port, and the other end of the water outlet pipe is connected to the flow control mechanism.

2. The shooting water gun according to claim 1, characterized in that: The water inlet pipe includes a first sub-water inlet pipe, a second sub-water inlet pipe and a third sub-water inlet pipe, and the first sub-water inlet pipe, the second sub-water inlet pipe and the third sub-water inlet pipe are connected through a three-way connector.

3. The shooting water gun according to claim 2, characterized in that: The water outlet pipe includes a first sub-water outlet pipe and a second sub-water outlet pipe, the first sub-water outlet pipe is connected to the second sub-water inlet pipe, and the second sub-water outlet pipe is connected to the third sub-water inlet pipe.

4. The shooting water gun according to claim 3, characterized in that: The flow control mechanism includes a first solenoid valve and a second solenoid valve; The first sub-water outlet pipe is connected to the second sub-water inlet pipe based on a first solenoid valve, and the second sub-water outlet pipe is connected to the third sub-water inlet pipe based on a second solenoid valve.

5. The shooting water gun according to claim 1, characterized in that: The gun body comprises two symmetrical gun body shells, and the two symmetrical gun body shells form the gun body; A plurality of reinforcing ribs are provided in each of the gun body shells, and any of the reinforcing ribs is recessed to form a limiting groove; The reinforcing ribs on one of the two symmetrical gun body shells abut against the corresponding reinforcing ribs on the other gun body shell, and the limiting grooves of the corresponding reinforcing ribs of the two gun body shells cooperate to form a limiting hole, and the water delivery pipe is clamped in the corresponding limiting hole.

6. The shooting water gun according to claim 1, characterized in that: The shooting water gun is further provided with a dynamic device and a sliding sleeve, wherein the dynamic device is located at the breech of the shooting water gun, and the sliding sleeve is located above the dynamic device and connected to the dynamic device; The sliding sleeve is driven by the dynamic device to perform reciprocating motion on the gun body.

7. The shooting water gun according to claim 6, characterized in that: The dynamic device includes: a mounting frame, a reciprocating motion mechanism and a driving motor; A movable guide rail is provided in the installation frame, the reciprocating motion mechanism is installed on the movable guide rail, a first return spring is provided at one end of the reciprocating motion mechanism, and the reciprocating motion mechanism is driven by the drive motor and the first return spring to perform reciprocating motion on the movable guide rail.

8. The shooting water gun according to claim 7, characterized in that: The reciprocating motion mechanism includes: a motion bracket, a rotating bearing and a rotating paddle arranged at the output end of the driving motor; The rotary bearing is mounted on the motion bracket, and the rotary bearing is tangent to the rotary paddle.

9. The shooting water gun according to claim 6, characterized in that: The shooting water gun further comprises a trigger mechanism, which comprises a trigger and a second return spring, one end of the second return spring being connected to the trigger, and the other end of the second return spring being connected to the inner wall of the gun body.

10. The shooting water gun according to claim 9, characterized in that: A micro switch is provided in the gun body, and the micro switch is located at the rear end of the trigger. The micro switch is driven by the trigger to switch between connecting the internal circuit and disconnecting the internal circuit; the micro switch is connected to the water delivery device signal, and the micro switch is connected to the dynamic device signal.