Intelligent electric shock simulation equipment
By introducing the design of detection rods and drive components in the smart electric shock simulation equipment, the problem that existing equipment cannot detect the power intensity is solved, and the safe detection and display of the power supply is achieved, ensuring that users can experience the electric shock effect safely.
Patent Information
- Application Number
- CN202421365234.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-14
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-06-14
AI Technical Summary
Existing smart electric shock simulation equipment cannot detect the electrical energy intensity before use. If the voltage is too high, there is a safety hazard when the user touches the equipment.
A smart electric shock simulation device is designed, using a detection rod to detect the current. The driving component drives the conductive sleeve to contact the support rod, so that the electric shock ball can be conductive. People experience the effect of electric shock when touching the electric shock ball, and display the current through the display screen.
It effectively avoids safety hazards caused by excessive power supply, ensures the safety of users when using the equipment, and improves the safety and user experience of the equipment by detecting and displaying the current.
Smart Images

Figure CN222883157U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of electric shock simulation, and specifically relates to an intelligent electric shock simulation device. Background Art
[0002] The smart electric shock simulator is a safety training tool used for education and training. It can simulate real electric shock accidents, help employees understand the hazards of electric shock, master electric shock first aid knowledge and skills, and enhance safety awareness. Through the electric shock simulator, employees can experience the feeling of electric shock in a safe environment, thereby more deeply realizing the severity of electric shock accidents and enhancing safety protection awareness.
[0003] Electric shock simulation equipment has been widely used in the power, construction, chemical, transportation and other industries. For example, in the power system, electric shock simulation equipment can be used to train power workers, let them understand the operating procedures and safety precautions of power equipment, and improve their ability to deal with electric shock accidents; in the construction industry, electric shock simulation equipment can be used to train construction workers, let them understand the hazards of electric shock, master the knowledge of electric shock first aid, and improve their safety awareness at the construction site.
[0004] In the prior art, when using intelligent electric shock simulation equipment for training, personnel experience the feeling of electric shock by touching the equipment. Before touching, the strength of the electric energy cannot be detected. If the voltage is too high, there are certain safety hazards when personnel touch the equipment. Utility Model Content
[0005] The purpose of the utility model is to provide an intelligent electric shock simulation device, aiming to solve the problem in the prior art that when using the intelligent electric shock simulation device for training, personnel experience the feeling of electric shock by touching the device, and the electrical energy intensity cannot be detected before touching. If the voltage is too high, there are certain safety hazards when personnel touch the device.
[0006] In order to achieve the above purpose, the utility model provides the following technical solutions:
[0007] A smart electric shock simulation device, comprising:
[0008] Simulate the device body;
[0009] A table top, the table top is fixedly connected to the upper end of the simulation device body;
[0010] A mounting plate, the mounting plate being fixedly connected to an inner wall of a simulation device body;
[0011] There are two support rods, both of which are fixedly connected to the table top, and the upper ends of the two support rods are fixedly connected with electric shock balls;
[0012] A drive assembly, wherein the drive assembly is disposed in the simulation device body;
[0013] A conductive sleeve, two of which are provided, wherein the two conductive sleeves are respectively slidably connected to the circumferential surfaces of the two support rods, and the two conductive sleeves are both connected to the driving assembly; and
[0014] The detection rods are provided with two, and the two detection rods are fixedly connected to the upper end of the mounting plate, and the two detection rods are matched with two conductive sleeves respectively.
[0015] As a preferred solution of the utility model, a power source is fixedly connected to the lower inner wall of the simulation device body, one end of the power source is connected to an electric wire, and the electric wire penetrates the surface of the simulation device body and extends outward.
[0016] As a preferred solution of the utility model, a plurality of track plates are fixedly connected to the upper end of the mounting plate.
[0017] As a preferred solution of the utility model, the driving assembly includes a motor, a screw, a threaded plate and an insulating sleeve. Two insulating sleeves are provided, and the two insulating sleeves are respectively fixedly connected to the circumferential surfaces of two conductive sleeves, the threaded plate is slidably connected to the surfaces of multiple track plates, the threaded plate is fixedly connected to the circumferential surfaces of the two insulating sleeves, the motor is fixedly connected to the power supply, the upper end of the screw is rotatably connected to the lower end of the table board, and the lower end of the screw is fixedly connected to the output end of the motor.
[0018] As a preferred solution of the utility model, a bracket is fixedly connected to the surface of the table top, a display screen is fixedly connected to the upper end of the bracket, and a touch screen is installed in the table top.
[0019] As a preferred solution of the utility model, the lower end of the simulation device body is fixedly connected with a base.
[0020] Compared with the prior art, the beneficial effects of the utility model are:
[0021] 1. In this scheme, by using this device, before directly using this device, the current size is detected by the detection rod. If the power supply does not meet the requirements, the motor cannot run, effectively avoiding injuries to the test personnel caused by excessive power supply. After the detection, the driving component drives the conductive sleeve to contact the support rod, so that the electric shock ball is conductive, and the personnel experience the effect of electric shock when touching the electric shock ball.
[0022] 2. In this solution, the detection rod converts the current strength into data and transmits it to the display screen, which displays the current size. The current size of the power supply output is detected by the set detection rod. After the detection, if the current size meets the requirements, the drive component is controlled to operate. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:
[0024] Figure 1 This is a first-perspective stereogram of the present invention;
[0025] Figure 2 It is a top view of the utility model;
[0026] Figure 3 It is a cross-sectional view of the utility model;
[0027] Figure 4 This is a stereoscopic diagram from a second viewing angle of the present invention.
[0028] In the figure: 1. Base; 2. Simulation device body; 3. Table top; 4. Electric shock ball; 5. Support rod; 6. Bracket; 7. Display screen; 8. Touch screen; 9. Wires; 10. Mounting plate; 11. Power supply; 12. Motor; 13. Screw; 14. Track plate; 15. Detection rod; 16. Threaded plate; 17. Conductive sleeve; 18. Insulating sleeve. DETAILED DESCRIPTION
[0029] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0030] Example
[0031] See also Figure 1-Figure 4 , the utility model provides the following technical solutions:
[0032] A smart electric shock simulation device, comprising:
[0033] Simulate device body 2;
[0034] A table top 3, which is fixedly connected to the upper end of the simulation device body 2;
[0035] A mounting plate 10, the mounting plate 10 is fixedly connected to the inner wall of the simulation device body 2;
[0036] There are two support rods 5, both of which are fixedly connected to the table top 3, and the upper ends of the two support rods 5 are fixedly connected with electric shock balls 4;
[0037] A driving component, the driving component is arranged in the simulation device body 2;
[0038] Conductive sleeves 17, of which two are provided, and the two conductive sleeves 17 are respectively slidably connected to the circumferential surfaces of the two support rods 5, and the two conductive sleeves 17 are both connected to the driving assembly; and
[0039] There are two detection rods 15 , and both detection rods 15 are fixedly connected to the upper end of the mounting plate 10 . The two detection rods 15 are matched with two conductive sleeves 17 respectively.
[0040] In a specific embodiment of the present utility model, the simulation device body 2 is used to install some parts, the table top 3 is fixed to the upper end of the simulation device body 2, and the upper end of the support rod 5 is installed with an electric shock ball 4. People can achieve the effect of electric shock by touching the electric shock ball 4. The conductive sleeve 17 is connected to the power supply 11, and the power supply 11 is electrically connected to the touch screen 8 and the display screen 7. The output current of the power supply 11 is controlled by the touch screen 8 to control the output current strength. The power supply 11 transfers the current to the conductive sleeve 17. In the initial position, the conductive sleeve 17 is connected to the circumferential surface of the detection rod 15, and the detection rod 15 converts the current strength into data and transmits it to the display screen 7, and the display screen 7 displays the current strength. The current output by the power supply 11 is detected by the detection rod 15. After the detection, if the current size meets the requirements, the drive component is controlled to run, and the drive component drives the conductive sleeve 17 to move upward. The conductive sleeve 17 contacts the circumferential surface of the support rod 5, and the current is transmitted to the electric shock ball 4 through the support rod 5; by using this device, before directly using this device, the current size is detected by the detection rod 15. If the power supply does not meet the requirements, the motor 12 cannot run, effectively avoiding the injury of the tester caused by excessive power supply. After the detection, the conductive sleeve 17 is driven by the drive component to contact the support rod 5, so that the electric shock ball 4 is conductive, and the person experiences the effect of electric shock when touching the electric shock ball 4.
[0041] For details, please refer to Figure 1-Figure 4 A power source 11 is fixedly connected to the lower inner wall of the simulation device body 2, and one end of the power source 11 is connected to an electric wire 9, which penetrates the surface of the simulation device body 2 and extends outward.
[0042] In this embodiment, the power source 11 is connected to the wire 9 , and the wire 9 is connected to an external power source, so that the external power source provides power to the power source 11 .
[0043] For details, please refer to Figure 1-Figure 4 A plurality of track plates 14 are fixedly connected to the upper end of the mounting plate 10 .
[0044] In this embodiment, the track plate 14 is used to limit the threaded plate 16 so that the threaded plate 16 can only move up and down.
[0045] For details, please refer to Figure 1-Figure 4The driving assembly includes a motor 12, a screw 13, a threaded plate 16 and an insulating sleeve 18. Two insulating sleeves 18 are provided. The two insulating sleeves 18 are respectively fixedly connected to the circumferential surfaces of two conductive sleeves 17. The threaded plate 16 is slidably connected to the surfaces of multiple track plates 14. The threaded plate 16 is fixedly connected to the circumferential surfaces of the two insulating sleeves 18. The motor 12 is fixedly connected to the power supply 11. The upper end of the screw 13 is rotatably connected to the lower end of the table board 3, and the lower end of the screw 13 is fixedly connected to the output end of the motor 12.
[0046] In this embodiment: when the motor 12 in the driving assembly is running, it drives the screw 13 connected to its output end to rotate, the screw 13 drives the threaded plate 16 to move upward, the threaded plate 16 drives the insulating sleeve 18 to move upward, and the insulating sleeve 18 drives the conductive sleeve 17 to move upward, so that the conductive sleeve 17 slides out from the surface of the detection rod 15 and slides to the surface of the support rod 5.
[0047] For details, please refer to Figure 1-Figure 4 A bracket 6 is fixedly connected to the surface of the table top 3 , a display screen 7 is fixedly connected to the upper end of the bracket 6 , and a touch screen 8 is installed inside the table top 3 .
[0048] In this embodiment, the bracket 6 serves to install the display screen 7, and the display screen 7 is used to display the detection data.
[0049] For details, please refer to Figure 1-Figure 4 The lower end of the simulation device body 2 is fixedly connected with the base 1.
[0050] In this embodiment: the base 1 plays a role in supporting the simulation device body 2.
[0051] It should be noted that the specific types of power supply 11, detection rod 15, motor 12, touch screen 8 and display screen 7 to be used are selected by relevant technical personnel familiar with the field, and the above power supply 11, detection rod 15, motor 12, touch screen 8 and display screen 7 are all existing technologies and will not be elaborated in this solution.
[0052] The working principle and use process of the utility model are as follows: when the device is in use, the wire 9 is connected to the external power supply, and then the driving component is controlled to run through the touch screen 8. At the initial position, the conductive sleeve 17 is connected to the circumferential surface of the detection rod 15. The detection rod 15 converts the current strength into data and transmits it to the display screen 7. The display screen 7 displays the current size. The current size output by the power supply 11 is detected by the set detection rod 15. After the detection, if the current size meets the requirements, the driving component is controlled to run, and the driving component drives the conductive sleeve 17 to move upward. The conductive sleeve 17 contacts the circumferential surface of the support rod 5, and the current is transmitted to the electric shock ball 4 through the support rod 5. The person achieves the effect of electric shock by touching the electric shock ball 4; by using the device, before directly using the device, the current size is detected by the detection rod 15. If the power supply does not meet the requirements, the motor 12 cannot run, which effectively avoids the tester from being injured due to excessive power supply. After the detection, the conductive sleeve 17 is driven by the driving component to contact the support rod 5, so that the electric shock ball 4 is conductive, and the person experiences the effect of electric shock when touching the electric shock ball 4.
[0053] Finally, it should be noted that the above description is only a preferred embodiment of the utility model and is not intended to limit the utility model. Although the utility model is described in detail with reference to the above embodiments, those skilled in the art can still modify the technical solutions recorded in the above embodiments or replace some of the technical features therein by equivalents. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model shall be included in the protection scope of the utility model.
Claims
1. A smart electric shock simulation device, characterized in that: include: Simulating a device body (2); A table top (3), wherein the table top (3) is fixedly connected to the upper end of the simulation device body (2); A mounting plate (10), the mounting plate (10) being fixedly connected to the inner wall of the simulation device body (2); Two support rods (5) are provided, and both of the two support rods (5) are fixedly connected to the table top (3), and the upper ends of the two support rods (5) are fixedly connected to electric shock balls (4); A drive assembly, the drive assembly being arranged in the simulation device body (2); A conductive sleeve (17), two of which are provided, the two conductive sleeves (17) are respectively slidably connected to the circumferential surfaces of the two support rods (5), and the two conductive sleeves (17) are both connected to the driving assembly; as well as Two detection rods (15) are provided. The two detection rods (15) are fixedly connected to the upper end of the mounting plate (10). The two detection rods (15) are matched with two conductive sleeves (17) respectively.
2. The intelligent electric shock simulation device according to claim 1, characterized in that: A power source (11) is fixedly connected to the lower inner wall of the simulation device body (2); one end of the power source (11) is connected to an electric wire (9); and the electric wire (9) penetrates the surface of the simulation device body (2) and extends outward.
3. The intelligent electric shock simulation device according to claim 2, characterized in that: A plurality of track plates (14) are fixedly connected to the upper end of the mounting plate (10).
4. The intelligent electric shock simulation device according to claim 3, characterized in that: The driving assembly comprises a motor (12), a screw (13), a threaded plate (16) and an insulating sleeve (18). Two insulating sleeves (18) are provided. The two insulating sleeves (18) are respectively fixedly connected to the circumferential surfaces of two conductive sleeves (17). The threaded plate (16) is slidably connected to the surfaces of a plurality of track plates (14). The threaded plate (16) is fixedly connected to the circumferential surfaces of the two insulating sleeves (18). The motor (12) is fixedly connected to a power source (11). The upper end of the screw (13) is rotatably connected to the lower end of the table top (3), and the lower end of the screw (13) is fixedly connected to the output end of the motor (12).
5. The intelligent electric shock simulation device according to claim 4, characterized in that: A bracket (6) is fixedly connected to the surface of the table top (3), a display screen (7) is fixedly connected to the upper end of the bracket (6), and a touch screen (8) is installed inside the table top (3).
6. The intelligent electric shock simulation device according to claim 5, characterized in that: The lower end of the simulation device body (2) is fixedly connected to a base (1).