A stun gun

By designing the shell, shock bullet and pushing part structure of the shock gun, the one-handed bullet replacement and safe power outage of the shock gun are achieved, solving the problems of cumbersome operation and poor emergency response capabilities of the existing shock gun, and improving law enforcement efficiency and safety.

CN114295006BActive Publication Date: 2025-08-05SHENZHEN MEGMEET ELECTRICAL CO LTD
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Patent Information

Application Number
CN202210094655.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-01-26
Publication Date
2025-08-05
Estimated Expiration
2042-01-26

AI Technical Summary

Technical Problem

The existing stun guns have cumbersome operating steps, poor emergency response capabilities, and lack other management and control functions, which affects the efficiency of law enforcement.

Method used

A shock absorber is designed, including a housing, shock absorber and pusher, which allows quick one-hand replacement of the shock absorber by moving between preset positions, and ensures safety through a circuit breaker switch, and a pluggable design of the battery module to prevent accidental electric shock.

Benefits of technology

It realizes the rapid one-handed bullet change of the stun gun, improves law enforcement efficiency, enhances safety and emergency response capabilities, and simplifies the management and control of the stun gun.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiments of the present application relate to the technical field of stun guns, and in particular to a stun gun comprising a housing, an stun gun, a pusher, a battery module, a power circuit board, a connecting mechanism, and a locking member. The housing is used to accommodate the stun gun, the pusher, the battery module, the power circuit board, the connecting mechanism, and the locking member. Law enforcement officers can operate the pusher with one hand to push the stun gun relative to the housing, thereby reducing the occupation of the law enforcement officers' hands when changing bullets, and improving the efficiency of law enforcement by improving the efficiency of the stun gun. The battery module, the power circuit board, and the connecting mechanism are electrically connected. When the connecting mechanism is pulled out of the housing, the power circuit board and the battery module are disconnected, thereby preventing accidents. At the same time, a locking member is provided on the housing. By disconnecting the locking member from the housing, the battery module can be pulled out of the housing and the battery can be replaced to increase the battery life of the stun gun.
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Description

Technical Field

[0001] The embodiments of the present application relate to the technical field of electric shock devices, and in particular to an electric shock device. Background Art

[0002] In the modern law enforcement environment, the issue of police self-protection has become a global hot topic, and law enforcement agencies have gradually distributed stun guns or stun guns that can fire stun bullets.

[0003] While existing stun guns offer significant law enforcement effectiveness, they are not only cumbersome to operate and lack emergency response capabilities, but also have virtually no functionality beyond mechanically subduing criminals through firing. The management and control of stun guns and other law enforcement equipment is crucial for public security and law enforcement personnel. Therefore, it is crucial to better manage and control stun guns and other law enforcement equipment, and to regulate and control their scope and methods of use.

[0004] To sum up, given that stun guns are law enforcement equipment that law enforcement officers basically cannot let go of during the law enforcement process, how to enhance the efficiency of stun guns in law enforcement has become a key direction in the current design and development of stun guns. Summary of the Invention

[0005] The embodiment of the present application provides a stun gun to improve the current situation where existing stun guns have a strong law enforcement effect but have complicated operation procedures and poor emergency response capabilities.

[0006] To solve the above-mentioned technical problems, the present application adopts a solution that provides an electric shock device, which includes: a shell, an electric shock bullet, and a pusher. The shell is provided with a magazine, at least one end of which is connected to the external environment. The electric shock bullet is installed in the magazine, and the electric shock bullet is fixed to the shell. The pusher can move between a first preset position and a second preset position. During the process of the pusher moving from the first preset position to the second preset position, the pusher pushes the electric shock bullet to release the electric shock bullet from the housing.

[0007] Optionally, the electric shock bullet is provided with a first clamping portion, and the housing is provided with a second clamping portion, and the electric shock bullet is fixed to the housing via the first clamping portion and the second clamping portion. The pushing member includes an abutting portion, which is arranged near the first clamping portion and is used to push the first clamping portion when the pushing member moves from the first preset position to the second preset position.

[0008] Optionally, a first receiving cavity is defined within the housing, and a first opening is defined on a surface of the housing, communicating with the first receiving cavity. The push member includes a push rod and a toggle portion. The push rod is received in the first receiving cavity, and the push rod includes the abutment portion. The toggle portion is mounted on the housing and positioned at the first opening, and is connected to the push rod.

[0009] Optionally, the push rod includes a first base, an abutting portion, and a connecting portion. The first base extends along a preset direction. The abutting portion extends along the preset direction, the abutting portion and the first base are spaced apart along the preset direction, the abutting portion is farther from the first opening than the first base along the preset direction, and the preset direction is perpendicular to the preset direction. The connecting portion is connected to the first base and the abutting portion, respectively. The preset direction is the direction in which the electric shock bullet enters and exits the magazine.

[0010] Optionally, the pushing member is slidably connected to the housing along a preset direction, which is the direction in which the electric shock bullet enters and exits the magazine.

[0011] Optionally, the electric shock device further includes a feeding element, a control circuit board and a circuit breaker. The feeding element is mounted on the housing for electrically connecting to the electric shock bullet. The control circuit board is connected to the feeding element for providing electrical energy to the feeding element. The control circuit board is connected to the feeding element via the circuit breaker, and the circuit breaker can be switched between a closed state and an open state. In the closed state, there is a passage between the control circuit board and the feeding element, and in the open state, there is a circuit between the control circuit board and the feeding element. In the first preset position, the circuit breaker is in the closed state. In the second preset position, the push rod abuts against the circuit breaker to switch the circuit breaker to the open state.

[0012] Optionally, the push rod further includes a first abutting portion, wherein the first abutting portion is arranged opposite to the circuit breaker and is used to abut against the circuit breaker.

[0013] Optionally, the electric shock device further includes a reset member connected to the pushing member and the housing, respectively, and configured to drive the pushing member to reset from the second preset position to the first preset position.

[0014] Optionally, the reset member includes a tension spring, a first end of the tension spring is connected to the pushing member, and a second end of the tension spring is connected to the housing and is arranged on a side of the first end away from the magazine.

[0015] Optionally, the housing further comprises a second receiving chamber. The defibrillator further comprises a battery module, a power supply circuit board, and a connecting mechanism. The battery module is housed in the second receiving chamber and includes a battery, including a first battery having a first pole and a second pole with opposite polarities. The power supply circuit board is mounted on the housing, and the battery module is electrically connected to the power supply circuit board. The connecting mechanism is removably mounted on the housing, the housing comprising a connecting hole for insertion and removal of the connecting mechanism, at least a portion of the connecting mechanism is disposed on the housing, and the connecting mechanism comprises a conductive element. The power supply circuit board is connected to the first pole via the conductive element, and when the connecting mechanism is removed from the housing, the circuit between the power supply circuit board and the first pole is disconnected. Alternatively, a battery other than the first battery is connected to the first pole via the conductive element, and when the connecting mechanism is removed from the housing, the circuit between the battery other than the first battery and the first pole is disconnected.

[0016] Optionally, the defibrillator further includes a first conductive element and a second conductive element. The first conductive element is received in the second receiving cavity and electrically connected to the first pole. The second conductive element is received in the second receiving cavity and electrically connected to the power circuit board. The conductive elements are connected to the first conductive element and the second conductive element, respectively.

[0017] Optionally, the first conductive member includes a second base and a second abutting portion. The second base is mounted on the housing and electrically connected to the first pole. The second abutting portion is connected to the second base and is used to elastically abut against the conductive element.

[0018] Optionally, a slot is provided on the outer wall of the conductive element, and the second abutting portion is clamped in the slot.

[0019] Optionally, the first conductive member includes two second abutting portions, which are arranged opposite to each other along a direction perpendicular to the axis of the communicating hole, and are used to jointly clamp the conductive element.

[0020] Optionally, the second conductive member includes a conductive post and a first elastic member. The conductive post is disposed between the connecting hole and the power circuit board and is configured to connect to the conductive element. One end of the first elastic member abuts against the power circuit board, and the other end abuts against the conductive post. The defibrillator further includes a limiting portion located within the second receiving cavity, the limiting portion being located on a side of the first elastic member facing away from the power circuit board. The limiting portion is configured to abut against the conductive post when the connecting assembly is separated from the housing, thereby ensuring that the conductive post always abuts against the first elastic member.

[0021] Optionally, the defibrillator includes a battery compartment, the battery compartment being received in the second receiving cavity and disposed between the power circuit board and the communication hole, and each of the batteries being mounted in the battery compartment. The limiting portion has a first surface disposed opposite the power circuit board, the limiting portion being the first surface.

[0022] Optionally, the connection mechanism further comprises an insulating fixing seat which is interference-fitted to the communicating hole, at least partially exposed to the outer surface of the housing, and the conductive element is fixed to the fixing seat and at least partially extends into the second receiving cavity.

[0023] Optionally, the defibrillator further comprises a flexible element, wherein the flexible element is used to be connected to a battery compartment of the defibrillator and to be installed on a device outside the defibrillator or on a human body.

[0024] Optionally, the defibrillator further includes a battery module and a locking member. The shell is further provided with a second receiving cavity, one end of which passes through the shell to form a second opening. The battery module is received in the second receiving cavity, and the battery module includes a battery compartment and a battery. The battery compartment is provided with a clamping portion, and the battery is installed in the battery compartment. The locking member is installed in the shell, part of the locking member is received in the second receiving cavity, and part of the locking member is exposed to the external environment of the shell, and the locking member can move between a third preset position and a fourth preset position. In the third preset position, the locking member and the clamping portion are connected to each other to lock the battery module in the second receiving cavity. In the fourth preset position, the locking member is separated from the clamping portion to release the lock on the battery module.

[0025] Optionally, the locking member includes: a clamping member and a second elastic member. The clamping member includes a main body and a clamping portion. The shell is provided with a through mounting hole. The main body is mounted in the mounting hole and at least partially extends into the second receiving cavity. The clamping portion is fixed to the portion of the main body extending into the second receiving cavity. The second elastic member is fixed at one end relative to the shell, and the other end is connected to the clamping member. At the third preset position, the clamping portion and the clamping portion abut against each other to lock the battery module in the second receiving cavity. At the fourth preset position, the clamping portion and the clamping portion are separated from each other.

[0026] Optionally, the housing includes a mounting member fixed in the second receiving cavity and located on a side of the clamping member away from the mounting hole. One end of the second elastic member abuts against the mounting member, and the other end abuts against the locking member.

[0027] Optionally, the battery module further includes a base, on which the battery compartment is provided, and at the third preset position, the base abuts against the second opening.

[0028] Optionally, the electric shock device further comprises a sealing member, which is wound around the base and has an interference fit with the housing and the base.

[0029] Optionally, the defibrillator further includes a power supply circuit board, which is received in the second receiving cavity and located at an end of the second receiving cavity away from the second opening, and is electrically connected to the battery.

[0030] Optionally, an accommodating cavity is provided at one end of the battery compartment facing the power circuit board, and the battery is installed in the accommodating cavity.

[0031] Optionally, the power circuit board is provided with at least one first electrode contact, and the bottom of the accommodating cavity is provided with at least one second electrode contact, wherein a first electrode contact and a second electrode contact are arranged opposite each other, and the oppositely arranged first electrode contact and second electrode contact have opposite polarities. The battery is provided with a third electrode contact of opposite polarity, and the third electrode contact is electrically connected to the oppositely arranged first electrode contact and second electrode contact of opposite polarity. When the battery module exits the second opening, the first electrode contact and the third electrode contact are electrically disconnected.

[0032] Optionally, the electric shock device includes three batteries, the battery compartment is provided with three accommodating cavities, each battery is installed in a corresponding accommodating cavity, and the three batteries are connected in series.

[0033] To solve the above technical problems, the present application also provides another technical solution, which is to provide an electric shock device. The electric shock device includes any one of the above-mentioned electric shock devices.

[0034] The beneficial effect of the embodiment of the present application is to provide a stun gun, comprising: a shell, an electric shock bullet and a pusher. The shell is provided with a magazine, at least one end of which is connected to the external environment. The electric shock bullet is installed in the magazine, and the electric shock bullet is fixed to the shell. The pusher can move between a first preset position and a second preset position. During the movement of the pusher from the first preset position to the second preset position, the pusher pushes the electric shock bullet to release the electric shock bullet from the shell. Through the above structure, when the stun gun needs to be replaced, the user only needs to use the fingers of the hand holding the stun gun to push the pusher, so that the pusher releases the electric shock bullet from the shell. This achieves one-handed bullet removal, reduces the occupation of the law enforcement personnel's hands when replacing bullets, and improves law enforcement efficiency by improving the efficiency of using stun guns. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] To more clearly illustrate the specific embodiments of this application or the technical solutions in the prior art, the following briefly describes the drawings required for the specific embodiments or the description of the prior art. Similar elements or parts are generally identified by similar reference numerals throughout the drawings. Elements or parts in the drawings are not necessarily drawn to scale.

[0036] Figure 1 A schematic diagram of an electric shock device provided in one embodiment of the present application;

[0037] Figure 2 A three-dimensional diagram of an electric shock device provided in one embodiment of the present application;

[0038] Figure 3 An exploded view of an electric shock device provided in one embodiment of the present application;

[0039] Figure 4 Another perspective view of an electric shock device according to one embodiment of the present application is provided;

[0040] Figure 5 A perspective view of a housing of an electric shock device is provided for one embodiment of the present application;

[0041] Figure 6 A partial schematic diagram of an electric shock device is provided for one embodiment of the present application;

[0042] Figure 7 Provided for this application Figure 4 Cross-sectional view of the middle A surface;

[0043] Figure 8 Provided for this application Figure 7 Enlarged view of middle part B;

[0044] Figure 9Another partial schematic diagram of an electric shock device is provided for one embodiment of the present application;

[0045] Figure 10 Another perspective view of an electric shock device provided in one embodiment of the present application;

[0046] Figure 11 Another partial perspective view of the electric shock device provided in one embodiment of the present application;

[0047] Figure 12 One embodiment of the present application provides Figure 11 Cross-section of the middle C plane;

[0048] Figure 13 A partial perspective view of an electric shock device provided in one embodiment of the present application;

[0049] Figure 14 Another exploded view of the electric shock device provided in one embodiment of the present application;

[0050] Figure 15 Another perspective view of the electric shock device provided in one embodiment of the present application;

[0051] Figure 16 Another exploded view of the electric shock device provided in one embodiment of the present application;

[0052] Figure 17 One embodiment of this application provides Figure 15 A cross-sectional view of the D surface;

[0053] Figure 18 A schematic diagram of a locking member, a battery compartment, and a base provided in one embodiment of the present application;

[0054] Figure 19 A schematic diagram of the electrical connection relationship of the electric shock device provided in one embodiment of the present application. Specific embodiments

[0056] In order to facilitate understanding of the present application, the present application is described in more detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that when an element is described as "fixed to" another element, it can be directly on the other element, or there can be one or more centered elements therebetween. When an element is described as "connected to" another element, it can be directly connected to the other element, or there can be one or more centered elements therebetween. The terms "vertical", "horizontal", "left", "right", "inside", "outside" and similar expressions used in this specification are for illustrative purposes only.

[0057] Unless otherwise defined, all technical and scientific terms used in this specification have the same meanings as those commonly understood by those skilled in the art to which this application belongs. The terms used in this specification are for the purpose of describing specific embodiments only and are not intended to limit this application. The term "and / or" as used in this specification includes any and all combinations of one or more of the relevant listed items.

[0058] In addition, the technical features involved in different embodiments of the present application described below can be combined with each other as long as they do not conflict with each other.

[0059] In this specification, the term "installation" includes fixing or restricting a component or device to a specific position or location by welding, screwing, clamping, gluing, etc. The component or device can remain stationary at a specific position or location or can move within a limited range. The component or device can be removed or not removed after being fixed or restricted to a specific position or location, which is not limited in the embodiments of this application. The term "connection" includes a direct connection between one component and another component and an indirect connection between one component and another component via one or more other components. Unless otherwise specified, this is not specifically limited in the embodiments of this application.

[0060] See also Figure 1 , which shows a schematic diagram of the electric shock device 1 provided in an embodiment of the present application, wherein the electric shock device 1 includes a stun gun 1000 and a wearable element 2000, the wearable element 2000 is used to be worn on the human body, and the stun gun 1000 can be housed in the wearable element 2000, or the stun gun 1000 is connected to the wearable element 2000, or the stun gun 1000 is connected to a belt worn by the human body, thereby improving the portability of the stun gun 1000. It should be noted that the stun gun 1000 described in this application takes an electric shock gun as an example, and the shape of the stun gun 1000 is gun-shaped, so that law enforcement personnel can operate and use it easily. It should be noted that the wearable element 2000 can be a wearable element such as a belt, leggings, vest and bulletproof vest. Wearable elements 2000 such as belts, leggings, vests, and bulletproof vests need to have a structure that can accommodate the stun gun 1000, or have a structure that is compatible with the connector on the stun gun 1000, such as a buckle, a flexible belt, or an elastic connection structure.

[0061] See also Figure 2 and Figure 3, which respectively show a three-dimensional view and an exploded view of a stun gun 1000 according to one embodiment of the present application. This embodiment of the present application provides a stun gun 1000. Optionally, the stun gun 1000 is a stun gun. The stun gun 1000 includes a housing 10, a stun gun 20, a pusher 30, a feed element 40, a control circuit board 50, a circuit breaker 60, a reset member 70, a guide assembly 80, a battery module 90, a power supply circuit board 100, a connecting mechanism 110, a first conductive member 120, a second conductive member 130, a stopper 140, a flexible member 150, a locking member 160, a sealing member 170, a display 180, a boost circuit board 190, a laser sight 200, and an illumination assembly 210. It should be noted that the housing 10 is formed using a glue-dispensing die-casting process, resulting in the housing 10 being formed by snapping together two similarly contoured, interfitting shells. A glue-dispensing groove (not shown) is left between the shells. Glue is poured into the glue-dispensing groove to snap together the two shells to form the housing 10. Compared to existing stun guns that use metal fasteners for fastening, the housing 10 in this embodiment of the application reduces the use of metal fasteners, preventing the internal circuit from being transmitted to the human body through the metal fasteners, thereby improving the disadvantage of metal fasteners on the housing that can cause hand numbness in law enforcement officers.

[0062] See also Figure 4 and Figure 5 , which respectively show another perspective view of a stun gun 1000 provided in accordance with one embodiment of the present application and a perspective view of the housing 10 of the stun gun 1000 provided in accordance with one embodiment of the present application. The stun gun 1000 comprises a housing 10, an electric shock bullet 20, and a pusher 30. The housing 10 is provided with a magazine 11, at least one end of which is connected to the external environment. The electric shock bullet 20 is mounted in the magazine 11 and is fixedly engaged with the housing 10. The pusher 30 is movable between a first preset position and a second preset position. During movement from the first preset position to the second preset position, the pusher 30 pushes against the electric shock bullet 20, thereby releasing the engagement between the electric shock bullet 20 and the housing 10. This design allows the user to replace the cartridge in the stun gun 1000 by simply pushing against the pusher 30 with the fingers of the hand holding the stun gun 1000, thereby releasing the engagement between the electric shock bullet 20 and the housing 10. This allows for one-handed ejection, reduces hand space occupied by the user when reloading, and improves the efficiency of the stun gun 100.

[0063] In the embodiment of the present application, the stun gun 1000 is a stun gun, which is convenient to operate when the stun gun 1000 is configured as a stun gun.

[0064] In some embodiments, the pushing member 30 can move between the first preset position and the second preset position by rotating or deflecting. The first end of the pushing member 30 abuts the electric shock bullet 20, and the second end is set away from the electric shock bullet 20. When the second end of the pushing member 30 is pressed, the first end of the pushing member 30 deflects or rotates relative to the second end of the pushing member 30, and the pushing member 30 pushes the electric shock bullet 20 to release the electric shock bullet 20 from the shell 10.

[0065] For the above mentioned electric shock bullet 20, please refer to Figures 6 to 8 , which respectively show a partial schematic diagram of an electric shock device 1000 provided in one embodiment of the present application, Figure 4 The cross-sectional view of the A surface and the Figure 7 Enlarged view of part B in the middle, and refer to other drawings. The electric shock bullet 20 is provided with a first clamping portion 21, and the housing 10 is provided with a second clamping portion 12. The electric shock bullet 20 and the housing 10 are clamped and fixed by the first clamping portion 21 and the second clamping portion 12. The pushing member 30 includes an abutting portion 31, which is arranged near the first clamping portion 21. The abutting portion 31 is used to push the first clamping portion 21 during the process of the pushing member moving from the first preset position to the second preset position. By providing the abutting portion 31, when the first clamping portion 21 and the second clamping portion 12 are disengaged, the abutting portion 31 pushes the first clamping portion 21 in a direction away from the second clamping portion 12, thereby facilitating the disengagement of the first clamping portion 21 and the second clamping portion 12. Optionally, the first clamping portion 21 and the second clamping portion 12 are both configured as hooks, and the two hooks are configured to be clamped together; or, one of the first clamping portion 21 and the second clamping portion 12 is configured as a hook, and the other is configured as a buckle, and the hook is clamped to the buckle, so that the electric shock bullet 20 is clamped to the shell 10.

[0066] In the embodiment of the present application, a movable space is provided between the first clamping portion 21 and the electric shock bullet 20, facing the interior of the electric shock bullet 20. The first clamping portion 21 also has a certain elasticity to facilitate the separation of the first clamping portion 21 and the second clamping portion 12 when the electric shock bullet 20 is ejected. The movable space is mainly used to make way for the first clamping portion 21 that undergoes elastic deformation when the first clamping portion 21 and the second clamping portion 12 are separated.

[0067] For the above-mentioned pusher 30, please refer to Figure 9, and refer to other figures. The push member 30 also includes a push rod 32 and a toggle portion 33. It should be noted that the housing 10 has a first receiving cavity 13 disposed therein, and a first opening 14 disposed on the surface of the housing 10 that communicates with the first receiving cavity 13. The push rod 32 is received in the first receiving cavity 13 and includes an abutment portion 31. Specifically, the abutment portion 31 is disposed on the push rod 32, or alternatively, the abutment portion 31 is mounted on the push rod 32 as a removable and replaceable component. The toggle portion 33 is mounted on the housing 10 and located within the first opening 14, connecting the push rod 32. The toggle portion 33 primarily serves to provide a convenient location for the user to push against the push rod 32. Therefore, the portion of the toggle portion 33 exposed at the first opening may optionally include a structure that increases friction between the toggle portion 33 and the hand, such as a protrusion or a recessed portion to adapt the toggle portion 33 to the hand, thereby increasing the contact area between the toggle portion 33 and the hand.

[0068] In the examples of this application, please refer to Figure 9 , and refer to other figures. The push rod 32 also includes a first base portion 321 and a connecting portion 322. The first base portion 321 extends along a predetermined direction X. Furthermore, the abutting portion 31 extends along the predetermined direction X, with the abutting portion 31 and the connecting portion 322 spaced apart along the predetermined direction Y. In the predetermined direction Y, the abutting portion 31 is further away from the first opening 14 than the connecting portion 322. It will be understood that in this embodiment, the predetermined direction Y can be a vertical direction perpendicular to the predetermined direction X, or the direction of the gun body thickness when the stun gun 1000 is used as a stun gun. It should be noted that in this embodiment, the abutting portion 31 and the connecting portion 322 are located on the same side along the predetermined direction X. However, in other embodiments, the connecting portion 322 can extend along the predetermined direction Y to the other side of the stun bullet 20. Accordingly, the abutting portion 31 and the connecting portion 322 are connected to the other side of the stun bullet 20. The connecting portion 322 is connected to the first base portion 321 and the abutting portion 31, respectively. This design allows the abutment portion 31 to be positioned within the magazine 11, aligned with the first and second clamping portions 21 and 12. It is understood that the first clamping portion 21 is generally positioned in the middle of the electric shock projectile 20. This arrangement facilitates installation of the electric shock projectile 20 within the magazine 11, preventing the use of the stun gun 1000 from being affected by the electric shock projectile 20 being installed upside down. Correspondingly, the second clamping portion 12 is also positioned within the magazine 11, aligned with the first clamping portion 21, and the abutment portion 31 should be aligned with the first and second clamping portions 21 and 12, thereby facilitating use and installation. It is understood that the abutment portion 31, first and second clamping portions 21 and 12 may be of different sizes and shapes. It is understood that the first opening 14 is positioned along a predetermined direction X, allowing the toggle portion 33 to move within the first opening 14 along the predetermined direction X. Furthermore, the first opening 14 also serves to limit the displacement of the toggle portion 33.

[0069] It should be noted that the set direction Y is perpendicular to the preset direction X, and the preset direction X is the direction in which the electric shock bullet 20 enters and exits the magazine 11. That is, the pushing member 30 is slidably connected to the housing 10 along the preset direction X. It should be noted that the pushing member 30 slides relative to the housing 10 so that the contact portion 31 of the pushing member 30 extends from the first receiving cavity 13 into the magazine 11, thereby causing the contact portion 31 to push the first engaging portion 21 along the preset direction X.

[0070] In the examples of this application, please refer to Figure 6 , and refer to other figures. The defibrillator 1000 also includes a guide assembly 80, which includes a first guide block 81 and a first guide rail 82. The first guide block 81 is mounted on the housing 10. The guide block 81 is provided with a second guide rail 811 along the predetermined direction X, and the end of the first base 321 proximal to the toggle portion 33 is plugged into the second guide rail 811. The first guide rail 82 is mounted on the housing 10 along the predetermined direction X and is disposed at the abutment portion 31, with the abutment portion 31 partially plugged into the first guide rail 82. The provision of the first guide block 81 and the first guide rail 82 further stabilizes the movement of the pusher 30 in the predetermined direction X.

[0071] In the examples of this application, please refer to Figure 6 , and refer to other figures. The stun gun 1000 also includes a feed element 40, a control circuit board 50, and a circuit breaker 60. The feed element 40 is mounted on the housing 10 for electrical connection to the stun bullet 20. The control circuit board 50 is connected to the feed element 40 to provide electrical energy to the feed element 40. The control circuit board 50 is connected to the feed element 40 via the circuit breaker 60, which can be switched between a closed state and an open state. In the closed state, the control circuit board 50 and the feed element 40 are connected to each other, while in the open state, the circuit breaker 60 is disconnected from the feed element 40. In the first preset position, the circuit breaker 60 is closed. In the second preset position, the push rod 32 abuts against the circuit breaker 60, switching the circuit breaker 60 to the open state. This design ensures that when the push member 30 moves from the first preset position to the second preset position, the push rod 32 abuts against the circuit breaker 60, switching the circuit breaker 60 to the open state. Thus, when the electric shock bullet 20 is ejected, the electrical connection between the control circuit board 50 and the feeding element 40 is cut off, thereby preventing the user from being electrocuted or other dangerous situations during the process of reloading the electric shock device 1000. Optionally, the time when the circuit breaker 60 is switched to the open state should be synchronized with the time when the electric shock bullet 20 is ejected, or the time when the circuit breaker 60 is switched to the open state should be before the time when the electric shock bullet 20 is ejected.

[0072] It should be noted that the control circuit board 50 in the embodiment of the present application is also provided with a Bluetooth module (not shown) and a GPS module (not shown), and the Bluetooth module is used to realize data transmission between the defibrillator 1000 and the external terminal device, and the GPS module is used to realize the positioning of the defibrillator 1000, so that the position information of the defibrillator 1000, the status of the whole machine and the data information in the control circuit board 50 can be transmitted in the form of Bluetooth. On the one hand, the defibrillator 1000 can perform data transmission without using a data cable to connect to the external device, so that the housing 1000 can be connected to the external device. There is no need to add a data transmission port to the control circuit board 50, which prevents inconvenience caused by the mismatch between the data cable and the stun gun 100; on the other hand, since the stun gun 100 does not need to use a data cable to connect to external equipment, when encountering an emergency, the stun gun 100 can be directly carried to perform law enforcement tasks without unplugging the data cable, which improves the flexibility of the use of the stun gun 100; on the other hand, since there is no need to add a data transmission port, the exposed metal parts on the shell 10 are reduced, which can further prevent the stun gun 100 from leaking electricity and causing numbness of the hands, thereby improving the safety of the stun gun 100.

[0073] In the examples of this application, please refer to Figure 6 , and refer to other drawings. The push rod 32 also includes a first abutting portion 323, which is used to abut the circuit breaker 60. The first abutting portion 323 is arranged opposite the circuit breaker 60 along a predetermined direction X. When the first abutting portion 323 moves along the predetermined direction X with the push rod 32, it can abut the circuit breaker 60, thereby switching the circuit breaker 60 between a closed state and an open state.

[0074] In the examples of this application, please refer to Figure 9 , which shows another partial schematic diagram of a stun gun 1000 according to one embodiment of the present application. Please refer to the other figures. Stun gun 1000 also includes a reset member 70. Reset member 70 is connected to push member 40 and housing 10, respectively. Reset member 70 is used to drive push member 30 from the second preset position back to the first preset position. This design allows stun gun 1000 to reset push member 30 after unloading, allowing for reloading and other operations.

[0075] In the embodiment of the present application, the reset member 70 includes a tension spring 71. The first end of the tension spring 71 is connected to the push member 30, and the second end of the tension spring 71 is connected to the housing 10 and disposed on the side of the first end facing away from the magazine 11. Specifically, the first end of the tension spring 71 is connected to one end of the toggle portion 33 near the first base portion 321, and the other end is disposed on the housing 10 near the end of the toggle portion 33 away from the first base portion 321. When the push member 30 moves from the first preset position to the second preset position, the tension spring 71 is stretched by the pushing force applied by the user to the toggle portion 33. When the push member 30 resets from the second preset position to the first preset position, the tension spring 71 applies a pulling force to the push member. Optionally, the reset member 70 can also be replaced by a compression spring (not shown in the figure). Accordingly, the first end of the compression spring is connected to one end of the shell 10 close to the abutment portion 31, and the other end of the compression spring is arranged at one end close to the toggle portion 33. When the pushing member 30 moves from the first preset position to the second preset position, the compression spring is compressed. When the pushing member 30 resets from the second preset position to the first preset position, the compression spring applies a thrust to the pushing member 30.

[0076] Combined with the above embodiments, and referring to Figures 6 to 9 . The stun gun 1000 is further described. In the embodiment of the present application, the stun gun 1000 is a stun gun. When the user needs to perform a bullet-removing operation in response to an emergency, the user holds the stun gun 1000 with one hand and uses the fingers of the hand holding the stun gun 1000 to push the toggle portion 33. The toggle portion 33 transmits the thrust along the preset direction X through the first base portion 321 and the connecting portion 322 to the abutting portion 31, thereby causing the pushing member 30 to move from the first preset position to the second preset position. At this time, the abutting portion 31 pushes the first clamping portion 21 to disengage the first clamping portion 21 and the second clamping portion 12, thereby causing the electric bullet 20 to escape from the magazine 11. At the same time, the first abutting portion 323 abuts the circuit breaker 60 to switch the circuit breaker 60 to the off state, thereby disconnecting the circuit between the control circuit board 50 and the feeding element 40, thereby preventing accidental injuries due to electric shock. After the electric shock bullet 20 is ejected, the tension spring 71 applies tension to the push rod 32, and the push member 30 is reset from the second preset position to the first preset position. During the entire ejection process, the user only needs to push the undulating portion 33 and then release it to complete the operation, which is very simple.

[0077] For the aforementioned battery module 90, power supply circuit board 100 and connection mechanism 110. Figures 10 to 12 , which respectively show another stereoscopic view of the electric shock device 1000 provided in one embodiment of the present application, another partial stereoscopic view of the electric shock device 1000 provided in one embodiment of the present application, and Figure 11Cross-sectional view taken along plane C. The defibrillator 1000 includes a housing 10, a battery module 90, a power supply circuit board 100, and a connecting mechanism 110. The housing 10 is provided with a second receiving chamber 15. The battery module 90 is received in the second receiving chamber 15. The battery module 90 includes a battery 91, which includes a first battery cell 911 having a first pole 9111 and a second pole 9112 of opposite polarity. The power supply circuit board 100 is mounted on the housing 10, and the battery module 90 is electrically connected to the power supply circuit board 100. The connecting mechanism 110 is removably mounted on the housing 10, and the housing 10 is provided with a connecting hole 19 for inserting and removing the connecting mechanism 110. At least a portion of the connecting mechanism 110 is disposed on the housing 10, and the connecting mechanism 110 includes a conductive element 1101. The power supply circuit board 100 is connected to the first pole 9111 via the conductive element 1101. When the connecting mechanism 110 is removed from the housing 10, the circuit between the power supply circuit board 100 and the first pole 9111 is disconnected. Alternatively, batteries 91 other than the first battery 911 are connected to the first pole 9111 via the conductive element 1101. When the connecting mechanism 110 is removed from the housing 10, the circuit between the batteries 91 other than the first battery 911 and the first pole 9111 is disconnected. In the event of an emergency, law enforcement officers can disconnect the power supply circuit board 100 from the first pole 9111 by removing the connecting mechanism 110, thereby disconnecting the batteries other than the first battery 91 from the first pole 9111. This prevents the stun gun 1000 from triggering the stun gun, thus preventing accidental activation of the stun gun 1000. Optionally, the batteries 91 are connected in series, and the number of batteries 91 can be one or more. Optionally, the connecting mechanism 110 is at least partially exposed relative to the housing 10.

[0078] Understandably, see Figure 10 , and in conjunction with other figures. The housing 10 is gun-shaped, with a grip base that is convenient for holding with one or two hands, and a launcher for launching electric shock bullets or other non-lethal ammunition. The above-mentioned battery module 90 and connecting mechanism 110 are arranged on the grip base. On the one hand, this is to leave space for installing the electric shock bullet and the power supply circuit board 100. On the other hand, the battery module 90 is arranged on the grip base to facilitate battery replacement. For the battery module 90, its battery 91 uses national standard batteries, such as No. 1 batteries, No. 3 batteries, No. 5 batteries, and No. 7 batteries, etc., which are convenient for replacement when the stun gun 1000 is out of power, thereby improving the endurance of the stun gun 1000. Optionally, a pre-prepared battery module or other power supply method can be used for power supply. The power supply circuit board 100 is arranged between the electric shock bullet and the battery module 90. This makes it easier to arrange the wiring when the power supply circuit board 100 is electrically connected to the electric shock bullet and the battery module 90, reducing interference between the various electronic components in the stun gun 1000.

[0079] For the battery module 90, please refer to Figure 12 , and in conjunction with other figures. The battery module 90 also includes a second battery (not shown), which has electrodes with opposite polarity. The second battery is connected in series with the first battery 91. There can be multiple second batteries, with one second battery connected in series with another second battery. In this embodiment, there are two second batteries, meaning the battery module 90 includes three batteries 91: one second battery connected in series with another second battery, and another second battery connected in series with the first battery 911, thereby expanding the capacity of the battery module 90. Both the first battery 911 and the second battery can be replaced individually or together, thereby increasing the battery life of the defibrillator 1000.

[0080] For the above-mentioned connection mechanism 110, please refer to Figures 12 to 14 , which respectively show the embodiment provided in this application Figure 11 A cross-sectional view taken along plane C, a partial perspective view of a stun gun 1000 according to one embodiment of the present application, and another exploded view of a stun gun 1000 according to one embodiment of the present application are provided, in conjunction with other figures. The connecting mechanism 110 also includes an insulating fixing base 1102. The fixing base 1102 is fitted with an interference fit within the communication hole 19, with at least a portion of the fixing base 1102 exposed on the outer surface of the housing 10. The conductive element 1101 is fixed to the fixing base 1102 and at least partially extends into the second receiving cavity 15. It is understood that, on the one hand, the fixing base 1102 can block the communication hole 19, thereby isolating the second receiving cavity 15 from the outside when the connecting mechanism 110 is plugged into the housing 10, preventing impurities from the external environment from entering the second receiving cavity 15 during daily wear of the stun gun 1000. On the other hand, it increases the size of the connecting mechanism 110, providing a larger gripping area for law enforcement officers during use. Furthermore, it prevents law enforcement officers from directly contacting the conductive element 1101, thus preventing electric shock.

[0081] In the examples of this application, please refer to Figure 12 , and in conjunction with other figures. The defibrillator 1000 also includes a first conductive member 120 and a second conductive member 130. The first conductive member 120 is housed in the second receiving cavity 15 and electrically connected to the first pole 9111. The second conductive member 130 is housed in the second receiving cavity 15 and electrically connected to the power supply circuit board 100. The conductive element 1101 is electrically connected to the first conductive member 120 and the second conductive member 130, respectively. This allows the conductive element 1101 to be removed from the housing 10 along with the connecting mechanism 110, thereby severing the electrical connection between the first conductive member 120 and the first pole 9111, and the electrical connection between the second conductive member 130 and the power supply circuit board 100. It is understood that the first conductive member 120, the second conductive member 130, and the conductive element 1101 can all be made of materials with good electrical conductivity, such as graphite or metal.

[0082] For the first conductive member 120, see Figure 12 , and in combination with other drawings. The first conductive member 120 includes a second base 1201 and a second abutting portion 1202. The second base 1201 is mounted on the housing 10 and is electrically connected to the first pole 9111. The second abutting portion 1202 is connected to the second base 1201 and is used to elastically abut against the conductive element 1101. On the one hand, the second base 1201 and the second abutting portion 1202 are used to connect the second conductive member 130, the conductive element 1101 and the first pole 9111. On the other hand, the second abutting portion 1202 elastically abuts against the conductive element 1101, so that the conductive element 1101 can be abutted or pulled out relative to the second abutting portion 1202.

[0083] In the examples of this application, please refer to Figure 12 and Figure 13 , and in conjunction with other figures. To facilitate the elastic abutment between the second abutting portion 1202 and the conductive element 1101, a retaining groove 1101a is provided on the outer wall of the conductive element 1101. The second abutting portion 1202 retains within the retaining groove 1101a. The retaining groove 1101a is formed inwardly on the outer wall of the conductive element 1101. This allows the walls of the retaining groove 1101a to restrict relative movement with the second abutting portion 1202 during insertion or removal of the connecting mechanism 41, further preventing the first conductive member 120 from falling off during use of the defibrillator 1000.

[0084] In the examples of this application, please refer to Figure 12 and Figure 13 , and in conjunction with other figures. The first conductive member 120 includes two second abutting portions 1202. The two second abutting portions 1202 are arranged relative to each other in a direction perpendicular to the axis of the connecting hole 19, and are used to jointly clamp the conductive element 1101. Accordingly, to facilitate the insertion and removal of the conductive element 1101, the retaining groove 1101a is annular and arranged around the axis of the connecting hole 19. Accordingly, the connecting hole 19 is circular, and the conductive element 1101 is cylindrical to match the connecting hole 19. Due to the geometric properties of the circular shape, the conductive element 1101 and the second abutting portions 1202 can be inserted without error due to incorrect insertion. In other words, in the event of an emergency, the conductive element 1101 can be removed from the connecting hole 19 first. Once control of the defibrillator 1000 is firmly established, the conductive element 1101 can be easily inserted into the connecting hole 19.

[0085] For the second conductive member 130, please refer to Figure 12, and in conjunction with other figures. The second conductive member 130 includes a conductive post 1301 and a first elastic member 1302. The conductive post 1301 is disposed between the communication hole 19 and the power circuit board 100 and is used to connect to the conductive element 1101. One end of the first elastic member 1302 abuts against the power circuit board 100, and the other end abuts against the conductive post 1301. Furthermore, the conductive column 1301 includes a conductive column body 1301a and abutment 1301b, which are bolted together along the direction in which the conductive element 1101 enters and exits the second accommodating cavity 15. The conductive column body 1301a is used to abut against the conductive element 1101, and one side of the abutment 1301b abuts against the first elastic member 1302. Accordingly, the defibrillator 1000 also includes a limiting portion 140 located in the second accommodating cavity 15. The limiting portion 140 is located on the side of the first elastic member 1302 facing away from the power supply circuit board 100. The limiting portion 140 is used to abut against the other side of the abutment 1301b when the connecting assembly 40 is separated from the shell 10, so that the conductive column body 1301a abuts against the first elastic member 1302 through the abutment 1301b.

[0086] When the connecting assembly 40 is separated from the housing 10, the conductive post 1301 is held in place by the stopper 140, preventing the conductive post body 1301a from continuing to move in the direction in which the connecting assembly 40 is withdrawn from the housing 10. This prevents the conductive post body 1301a from abutting against the second abutting portion 1202, thereby preventing the circuit from remaining connected when the connecting assembly 40 is withdrawn from the housing 10. When the conductive element 1101 is inserted into the second receiving cavity 15, the conductive element 1101 abuts against the conductive post body 1301a, and the abutting member 1301b is loosely fitted with the stopper 140. In the embodiment of the present application, the conductive post body 1301a is cylindrical, but may alternatively be a rectangular parallelepiped or other shape.

[0087] In the examples of this application, please refer to Figure 11In conjunction with other figures, the defibrillator 1000 also includes a battery compartment 92, which is housed in the second receiving cavity 15 and disposed between the power circuit board 100 and the communication hole 19. Each battery 91 is mounted in the battery compartment 92. The limiting portion 140 has a first surface 1401 disposed opposite the power circuit board 100. The limiting portion 140 is the first surface 1401, which abuts or forms a clearance fit with the abutment 1301b. It is understood that the battery compartment 92 is cylindrical and compatible with the battery 91. This ensures that the battery 91 within the second receiving cavity 15 will not be disconnected due to shaking of the defibrillator 1000, thereby enhancing the stability of the power supply of the battery module 90. It can be understood that when the battery 91 is a square battery, the battery compartment 92 is a corresponding square cylinder, or, when the battery module 90 is a battery pack of other forms, the battery compartment 92 is set to a shape that is compatible with the battery module 90, thereby providing a more stable working environment for the battery module 90.

[0088] In the examples of this application, please refer to Figure 11 In conjunction with other figures, the defibrillator 1000 also includes a flexible element 150. The flexible element 150 is used to connect to the battery compartment 92 of the defibrillator 1000 and is mounted on a device external to the defibrillator 1000 or on a human body. This allows the defibrillator 1000 to be connected to a human body or the wearable element 2000 via the flexible element 150, thereby facilitating portability and triggering the connection mechanism 110. It is understood that the flexible element 150 may comprise a material such as a belt, a rope, or a rope wrapped with a rubber layer.

[0089] In conjunction with some of the aforementioned embodiments, the defibrillator 1000 provided in the embodiments of the present application includes a housing 10, a battery module 90, a power supply circuit board 100, and a connecting mechanism 110. The housing 10 is provided with a second receiving chamber 15. The battery module 90 is received in the second receiving chamber 15. The battery module 90 includes a battery 91, which includes a first cell 911 having a first pole 9111 and a second pole 9112 of opposite polarity. The power supply circuit board 100 is mounted on the housing 10, and the battery module 90 is electrically connected to the power supply circuit board 100. The connecting mechanism 110 is removably mounted on the housing 10, and the housing 10 is provided with a connecting hole 19 for inserting and removing the connecting mechanism 110. At least a portion of the connecting mechanism 110 is disposed on the housing 10, and the connecting mechanism 110 includes a conductive element 1101. The power supply circuit board 100 is connected to the first pole 9111 via the conductive element 1101. When the connecting mechanism 110 is removed from the housing 10, the circuit between the power supply circuit board 100 and the first pole 9111 is disconnected. Alternatively, the battery 91 other than the first battery 911 is connected to the first pole 9111 via the conductive element 1101. When the connecting mechanism 110 is removed from the housing 10, the circuit between the battery 91 other than the first battery 911 and the first pole 9111 is disconnected. In the event of an emergency, law enforcement officers can disconnect the power supply circuit board 100 from the first pole 9111 by removing the connecting mechanism 110, or disconnect the battery other than the first battery 91 from the first pole 9111, thereby preventing the stun gun 1000 from triggering the stun gun, thus preventing accidental contact with the stun gun 1000.

[0090] For the aforementioned locking member 160, see Figure 15 and Figure 16, which respectively show another perspective view and another exploded view of a stun gun 1000 provided in one embodiment of the present application. The stun gun 1000 includes a housing 10, a battery module 90, and a locking member 160. The housing 10 is provided with a second receiving cavity 15, one end of which extends through the housing 10 to form a second opening 16. The battery module 90 is received in the second receiving cavity 15 and includes a battery compartment 92 and a battery 91. The battery compartment 92 is provided with a latching portion 921, and the battery 91 is mounted in the battery compartment 92. The locking member 160 is mounted in the housing 10, with a portion of the locking member 160 being received in the second receiving cavity 15 and a portion being exposed to the external environment of the housing 10. The locking member 160 is movable between a third preset position and a fourth preset position. In the third preset position, the locking member 160 and the engaging portion 921 are connected to each other, locking the battery module 90 in the second receiving cavity 15. In the fourth preset position, the locking member 160 and the engaging portion 921 are separated, releasing the battery module 90. Thus, by moving the locking member 160 between the third and fourth preset positions, the battery module 90 is locked or unlocked. After the battery module 90 is unlocked, it is withdrawn from the second receiving cavity 15, allowing the battery 91 to be removed and replaced.

[0091] Understandably, see Figure 15 The housing 10 is gun-shaped and has a grip for easy one-handed or two-handed gripping, as well as a launcher for launching electric shock bullets or other non-lethal ammunition. The battery module 90 includes batteries 91 that meet national standards, such as D-cells, AA-cells, AAA-cells, and AAA-cells, making it easy to replace the stun gun 1000 when it runs out of power, thereby improving the battery life of the stun gun 1000.

[0092] It is understandable that the movement of the locking member 160 between the third preset position and the fourth preset position may be sliding or rotating.

[0093] For the locking member 160, see Figure 16, and in combination with other drawings. The locking member 160 includes a snap-fit member 1601 and a second elastic member 1602. Among them, the snap-fit member 1601 includes a main body 1601a and a holding portion 1601b. In order to facilitate the use of the snap-fit member 1601, the shell 10 is provided with a through mounting hole 17. The main body 1601a is installed in the mounting hole 17 and at least partially extends into the second receiving cavity 15. The holding portion 1601b is fixed to the portion of the main body 1601a extending into the second receiving cavity 15, so that in the external environment of the shell 10, the main body 1601a can be directly pressed through the mounting hole 17, thereby pushing the holding portion 1601b extending into the second receiving cavity 15 to move between the third preset position and the fourth preset position. It can be understood that in this embodiment, the portion of the main body 1601a exposed to the mounting hole 17 is flush with the mounting hole 17 and does not protrude relatively, so as to improve the gripping feel. Optionally, the main body 1601a may protrude or be recessed relative to the mounting hole 17. Accordingly, a protective cover may be provided on the outer side of the mounting hole 17 to prevent accidental contact with the main body 1601a, which may cause the locking member 160 to move to the fourth preset position and contact the battery module 90. The second elastic member 1602 has one end fixed relative to the housing 10 and the other end connected to the clamping member 1601. In the third preset position, the clamping portion 1601b and the clamping portion 921 abut against each other to lock the battery module 90 in the second receiving cavity 15. In the fourth preset position, the clamping portion 1601b and the clamping portion 921 separate from each other. By providing the second elastic member 1602, the clamping member 1601 can return to the third preset position after moving to the fourth preset position without the need for manual reset. Optionally, the second elastic member 1602 may be a tension spring, a compression spring, or a spring.

[0094] In the examples of this application, please refer to Figure 18 , which shows a schematic diagram of the locking member 160, the battery compartment 92 and the base 93 provided in one embodiment of the present application, in combination with other drawings. The holding portion 1601b of the clamping member 1601 not only needs to abut against the clamping portion 921, but also needs to slide relative to the clamping portion 921 when the battery compartment 92 enters the second receiving cavity 15. Therefore, a first yielding portion 1601ba is provided on the clamping portion 1601b. The first yielding portion 1601ba is provided at one end of the clamping portion 1601b, and the other end of the clamping portion 1601b is used to abut against the clamping portion 921. Correspondingly, a second yielding portion 9211 adapted to the first yielding portion 1601ba is provided on the clamping portion 921. The second yielding portion 9211 is provided at one end of the clamping portion 921, and the other end of the clamping portion 921 is used to abut against the clamping portion 1601b. The first paving portion 1601 ba and the second paving portion 9211 are used to facilitate the sliding of the engaging portion 921 relative to the holding portion 1601 b when the engaging portion 921 extends into the second receiving cavity 15 .

[0095] In the examples of this application, please refer to Figure 16 and Figure 17 , which respectively show another exploded view of the electric shock device 1000 provided in one embodiment of the present application and another exploded view of the electric shock device 1000 provided in one embodiment of the present application. Figure 15 The housing 10 further includes a mounting member 18, which is fixed in the second receiving cavity 15 and is located on the side of the clamping member 1601 facing away from the mounting hole 113. One end of the second elastic member 1602 abuts against the mounting member 18, and the other end abuts against the locking member 160. This design is because not only the second elastic member 1602 but also other parts need to be installed in the housing 10. Installing the mounting member 18 in the housing 10 allows more space for the installation of other parts, increases the connection method between the second elastic member 1602 and the housing 10, and enhances the adaptability of the locking member 160 to changes in the internal structure of the defibrillator 1000.

[0096] For the battery module 90, please refer to Figure 16 and Figure 17 , and in conjunction with other figures. The battery module 90 also includes a base 93, on which a battery compartment 92 is disposed. At the third preset position, the base 93 abuts the second opening 16, thereby isolating the second receiving chamber 15 from the outside world. This prevents impurities from the external environment from entering the second receiving chamber 15 and affecting the components within the defibrillator 1000. It should be noted that in this embodiment of the present application, the base 93 is threadedly connected to the battery compartment 92, and its shape is adapted to the second opening 16, and the base 93 has a thickness.

[0097] In the examples of this application, please refer to Figure 16 and Figure 17 , and in conjunction with other drawings. The defibrillator 1000 also includes a seal 170, which is wound around the base 93 and has an interference fit with the shell 10 and the base 93. On the one hand, the second receiving chamber 15 is further isolated from the outside world; on the other hand, the base 93 and the shell 10 are indirectly interfered with, thereby improving the bonding strength between the bottom shell 23 and the shell 10 and preventing the battery module 90 from falling out during use. Optionally, a sealing groove 931 is further provided on the base 93, and the sealing groove 931 is used to accommodate the seal 170 to prevent the seal 170 from moving relative to the base 93, or the bottom shell 23 and the battery compartment 92 enclose a sealing groove 931. It can be understood that the above-mentioned seal 170 is a sealing ring.

[0098] In the examples of this application, please refer to Figure 16 and Figure 17, and in conjunction with other figures. The defibrillator 1000 also includes a power supply circuit board 100. The power supply circuit board 100 is housed within the second receiving cavity 15 and is located at an end of the second receiving cavity 15 away from the second opening 16. The power supply circuit board 100 is electrically connected to the battery 91. The power supply circuit board 100 is used to output the electrical energy of the battery 91 to other electronic components.

[0099] In the examples of this application, please refer to Figures 16 to 18 , and in conjunction with other drawings. The battery module 90 will be further described in conjunction with the above-mentioned power circuit board 100. The battery compartment 92 of the battery module 90 is provided with a receiving cavity 922 at one end facing the power circuit board 100, and the battery 91 is installed in the receiving cavity 922. In the embodiment of the present application, the receiving cavity 922 is configured as a cylindrical tube structure compatible with the national standard battery, or as a cubic tube structure compatible with the square battery, or as a shape compatible with the battery pack. Thereby, when the battery 91 is accommodated in the receiving cavity 922, it is not easy to get loose, thereby preventing the electric shock device 1000 from being unusable due to the loosening of the battery 91.

[0100] Further, see Figure 17 , and in combination with other drawings. The power supply circuit board 100 is provided with at least one first electrode contact 1001, and the battery compartment 92 is provided with at least one second electrode contact 923 at the bottom of the accommodating cavity 922. A first electrode contact 1001 is arranged opposite to a second electrode contact 923, and the polarities of the first electrode contact 1001 and the second electrode contact 923 arranged opposite to each other are opposite. Correspondingly, the battery 91 is provided with a third electrode contact 912 of opposite polarity, and the third electrode contact 912 is electrically connected to the first electrode contact 1001 and the second electrode contact 923 arranged opposite to each other and having opposite polarities. When the battery module 90 exits the second opening 16, the first electrode contact 1001 and the third electrode contact 912 are electrically disconnected. It should be noted that in the embodiment of the present application, three first electrode contacts 1001 and three second electrode contacts 923 and three batteries 91 are included. The first electrode contacts 1001 provided on the power supply circuit board 100 are electrically connected via the power supply circuit board 100, while the second electrode contacts 923 provided on the accommodating cavity 922 are all configured as conductive discs, and some of the second electrode contacts are electrically connected to each other via conductive pads. The three batteries 91 are connected in series via the first electrode contacts 1001, the second electrode contacts 923, and the third electrode contacts 912. Accordingly, the battery compartment 92 has three accommodating cavities 922 to accommodate the batteries 91.

[0101] In the examples of this application, please refer to Figure 2 、 Figure 10 Combined with Figure 19As shown in other figures, the stun gun 1000 also includes a display 180, which is electrically connected to the control circuit board 50, so that the control circuit board 50 can visualize information about the stun gun 1000 through the display 180, making it easier for law enforcement officers to operate the stun gun. The information about the stun gun 1000 includes, but is not limited to, battery level, location coordinates, etc.

[0102] In the examples of this application, please refer to Figure 2 and combined Figure 19 The accompanying drawings, which respectively show a perspective view of a stun gun 1000 according to one embodiment of the present application and a schematic diagram of the electrical connections of the stun gun 1000 according to one embodiment of the present application, further illustrate the stun gun 1000. The stun gun 1000 also includes a boost circuit board 190 disposed within the first receiving chamber 13. The boost circuit board 190 is electrically connected to the stun gun 20 and the control circuit board 50. The control circuit board 50 is also electrically connected to the power supply circuit board 100. The control circuit board 50 controls the power supply circuit board 100 to output power from the battery module 90 to the boost circuit board 190. After the voltage is increased by the boost circuit board 190, the high-voltage power is supplied from the feed element 40 to the stun gun 20. The feed element 40 includes two feed point elements (not shown) with opposite polarities, one on each side of the stun gun 20. The electric spark generated by the high-voltage electrical energy between the two electrode feed-point elements ignites the gunpowder inside the stun bullet 20, which then ejects the stun pin inside the stun bullet 20. The high-voltage electrical energy is then output through the two electrode feed-point elements, thereby temporarily controlling the criminal's actions. It is worth noting that the boost circuit board 190 is isolated from the control circuit board 50 to prevent the high-voltage electrical energy in the boost circuit board 190 from interfering with the control circuit board 50.

[0103] In the examples of this application, please refer to Figure 2 and combined Figure 19 The stun gun 1000 also includes a laser sight 200 and an illumination assembly 210. These are positioned below the magazine 11 along a predetermined direction X. The laser sight 200 assists law enforcement officers in using the stun gun 1000, while the illumination assembly 210 allows the stun gun 1000 to adapt to low-light conditions. Furthermore, by increasing the light intensity of the illumination assembly 210, criminals can be further controlled.

[0104] Combining the above embodiments with Figure 19, which shows a schematic diagram of the electrical connections of the stun gun 1000 provided in an embodiment of the present application. The stun gun 20 is electrically connected to the feeding element 40, which is electrically connected to the boosting circuit board 190, which is electrically connected to the control circuit board 50, which is electrically connected to the disconnect switch 60, the power supply circuit board 100, the laser sight 200, and the lighting assembly 210. The power supply circuit board 100 is connected in series with the connecting mechanism 110, the first conductive member 120, the second conductive member 130, and the battery module 90.

[0105] The defibrillator 1000 provided in this embodiment includes a housing 10, a battery module 90, and a locking member 160. The housing 10 defines a second receiving cavity 15, one end of which extends through the housing 10 to form a second opening 16. The battery module 90 is housed in the second receiving cavity 15. The battery module 90 includes a battery compartment 92 and a battery 91. The battery compartment 92 has a latching portion 921, and the battery 91 is mounted in the compartment 92. The locking member 160 is mounted in the housing 10, with a portion of the locking member 160 housed in the second receiving cavity 15 and a portion exposed to the external environment of the housing 10. The locking member 160 is movable between a third preset position and a fourth preset position. In the third preset position, the locking member 160 and the latching portion 921 are connected to each other, locking the battery module 90 in the second receiving cavity 15. In the fourth preset position, the locking member 160 is separated from the latching portion 921, releasing the battery module 90. With the above structure, when law enforcement officers need to replace the battery 91 of the stun gun 1000 while on duty, they only need to disconnect the locking member 160 from the clamping portion 921, remove the battery module 90 from the second receiving chamber 15, and remove the battery 91 from the battery compartment 92 for replacement. This improves the battery life of the stun gun 1000 when used by law enforcement officers.

[0106] Based on the same inventive concept, this application also provides an electric shock device 1, please review Figure 1 The electric shock device 1 includes the above-mentioned electric shock device 1000 and the wearable element 2000. The electric shock device 1000 and the wearable element 2000 have the same structure as the electric shock device 1000 and the wearable element 2000 described in the above embodiment, and will not be repeated here.

[0107] It should be noted that the preferred embodiments of the present application are given in the specification and drawings of this application. However, the present application can be implemented in many different forms and is not limited to the embodiments described in this specification. These embodiments are not intended to be additional limitations on the content of this application. The purpose of providing these embodiments is to make the understanding of the disclosure of this application more thorough and comprehensive. In addition, the above-mentioned technical features can be combined with each other to form various embodiments not listed above, which are all considered to be within the scope of the description of this application; further, it is obvious to those skilled in the art that improvements or changes can be made based on the above description, and all such improvements and changes should fall within the scope of protection of the claims attached to this application.

Claims

1. An electric shock device, characterized in that: include: A shell having a magazine with at least one end connected to the external environment, the shell further having a second clamping portion, a first receiving cavity and a first opening, the first receiving cavity being provided inside the shell, and the first opening being provided on a surface of the shell and communicating with the first receiving cavity; An electric shock bullet is installed in the magazine, the electric shock bullet is fixedly connected to the shell, and the electric shock bullet is provided with a first clamping portion, and the electric shock bullet is fixedly connected to the shell via the first clamping portion and the second clamping portion; The pushing member is movable between a first preset position and a second preset position. When the pushing member moves from the first preset position to the second preset position, the pushing member pushes the electric shock bullet to release the electric shock bullet from the engagement with the housing. The pushing member includes an abutting portion, a push rod, and a toggle portion. The abutting portion is disposed near the first engaging portion. The abutting portion is configured to push the first engaging portion when the pushing member moves from the first preset position to the second preset position. The push rod is received in the first receiving cavity and includes the abutting portion. The toggle portion is mounted on the housing and located at the first opening, and the toggle portion is connected to the push rod; as well as, A reset member is connected to the pushing member and the housing respectively, and is used to drive the pushing member to reset from the second preset position to the first preset position.

2. The electric shock device according to claim 1, characterized in that The push rod comprises: a first base portion, the first base portion extending along a preset direction; the abutting portion, the abutting portion extending along the preset direction, the abutting portion and the first base portion being spaced apart along the preset direction, the abutting portion being farther away from the first opening than the first base portion along the preset direction, the preset direction being perpendicular to the preset direction; and a connecting portion, the connecting portion being connected to the first base portion and the abutting portion respectively; The preset direction is the direction in which the electric shock bullet enters and exits the magazine.

3. The electric shock device according to claim 1, characterized in that Also includes: A feeding element, mounted on the housing and used for being electrically connected to the electric shock bullet; a control circuit board, connected to the feeding element and configured to provide electrical energy to the feeding element; as well as a circuit breaker, wherein the control circuit board is connected to the feeding element via the circuit breaker, and the circuit breaker can be switched between a closed state and an open state. In the closed state, a circuit is connected between the control circuit board and the feeding element, and in the open state, a circuit is disconnected between the control circuit board and the feeding element; In the first preset position, the circuit breaker is in the closed state; At the second preset position, the push rod abuts against the circuit breaker to switch the circuit breaker to the disconnect state.

4. The electric shock device according to claim 1, characterized in that The housing is further provided with a second receiving cavity; The electric shock device also includes: a battery module housed in the second housing cavity, comprising a battery, wherein the battery comprises a first battery having a first electrode and a second electrode with opposite polarities; a power circuit board mounted on the housing, the battery module being electrically connected to the power circuit board; and A connecting mechanism is pluggably mounted on the housing, the housing is provided with a communication hole for plugging and unplugging the connecting mechanism, at least a portion of the connecting mechanism is disposed on the housing, and the connecting mechanism includes a conductive element; The power supply circuit board is connected to the first pole via the conductive element, and when the connecting mechanism is pulled out of the shell, the circuit between the power supply circuit board and the first pole is disconnected. Alternatively, a battery other than the first battery is connected to the first pole via the conductive element, and when the connecting mechanism is pulled out of the shell, the circuit between the battery other than the first battery and the first pole is disconnected.

5. The electric shock device according to claim 4, characterized in that: Also includes: a first conductive member received in the second receiving cavity and electrically connected to the first electrode; as well as a second conductive member received in the second receiving cavity and electrically connected to the power circuit board; The conductive elements are connected to the first conductive member and the second conductive member respectively.

6. The electric shock device according to claim 1, characterized in that The housing is further provided with a second receiving cavity, one end of which passes through the housing to form a second opening; The defibrillator further includes a battery module housed in the second housing cavity, the battery module including a battery compartment and a battery, the battery compartment being provided with a clamping portion, and the battery being installed in the battery compartment; as well as a locking member mounted on the housing, with a portion of the locking member housed in the second housing cavity and a portion exposed to the external environment of the housing, and the locking member movable between a third preset position and a fourth preset position; At the third preset position, the locking member and the clamping portion are connected to each other to lock the battery module in the second receiving cavity; At the fourth preset position, the locking member is separated from the engaging portion to release the lock on the battery module.

7. The electric shock device according to claim 6, characterized in that: The locking member comprises: a clamping member comprising a main body and a clamping portion, wherein the housing is provided with a through mounting hole, the main body is mounted in the mounting hole and at least partially extends into the second receiving cavity, and the clamping portion is fixed to the portion of the main body extending into the second receiving cavity; and a second elastic member, one end of the second elastic member being fixed relative to the housing and the other end being connected to the clamping member; At the third preset position, the holding portion and the engaging portion abut against each other to lock the battery module in the second receiving cavity; At the fourth preset position, the holding portion and the engaging portion are separated from each other.

Citation Information

Patent Citations

  • Electric shock device

    CN217032201U