Anti-electric shock intelligent control socket
By setting a sliding groove A and a sliding base on the socket, combined with the design of a conductive male plug, a spring self-locking device, and a wedge block, the problem of existing sockets being unable to effectively prevent electric shock is solved, and a safe control is achieved that the power is only turned on after the plug is fully inserted.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG DACHANG ELECTRIC CO LTD
- Filing Date
- 2025-06-19
- Publication Date
- 2026-08-04
AI Technical Summary
Existing anti-electric shock sockets cannot effectively eliminate the risk of electric shock, and traditional protective cover designs have shortcomings.
It adopts a slide rail A and slide base design, combined with conductive male plug, spring self-locking device, wedge block and transmission component. The sliding and locking of the slide base is controlled by a button to ensure that the plug is fully inserted before power is applied. It also uses a beetle rebound device and anti-dislodgement mechanism to prevent accidental operation.
This design ensures that power is applied only after the plug is fully inserted, preventing the risk of electric shock due to misoperation and improving safety and reliability.
Smart Images

Figure CN224595861U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of socket technology, and in particular to an anti-electric shock intelligent socket. Background Technology
[0002] A socket, also known as a power outlet or switch socket, is a socket that has one or more electrical connections that can be inserted. This allows for easy connection to other circuits. The connection or disconnection of the circuit is achieved through the connection and disconnection of the wiring and copper components. However, improper use of sockets can easily lead to electric shock.
[0003] Most anti-electric shock sockets on the market currently use a protective cover, which blocks the socket by means of damping flipping or rotation. However, this cannot fundamentally prevent electric shock. Therefore, it is necessary to improve the existing structure. Utility Model Content
[0004] The purpose of this invention is to address the problems existing in the background technology by proposing an anti-electric shock intelligent socket.
[0005] The technical solution of this utility model is: an anti-electric shock intelligent control socket, including a socket body, a sliding groove A is provided on the socket body, a slot is provided on the side wall of the sliding groove A, and a conductive male plug and a spring self-locking device are provided on the bottom surface of the sliding groove A.
[0006] The slide block has one end inserted into the slide groove A and slidably connected to its inner wall. The slide block is provided with an anti-detachment mechanism to prevent it from detaching from the slide groove A. The slide block is provided with a conductive female hole that is compatible with the conductive male plug. The slide block is also provided with a plug hole and a ball that is compatible with the spring self-locking device.
[0007] The card holder is mounted on the slide block. A tensioning component B is mounted on the card holder. The movable end of the tensioning component B is connected to a wedge block. The wedge block is adapted to the corresponding card slot. A button is slidably mounted on the card holder. The button extends out of the slide block and is slidably connected to it.
[0008] And a transmission assembly, which drives the wedge block and the button to retract and disengage the wedge block from the slot when the button is pressed.
[0009] Preferably, the spring self-locking device and the ball-operated bumper work together to form the beetle bouncer.
[0010] Preferably, a safety door is installed inside the socket.
[0011] Preferably, the anti-detachment mechanism includes a tensioning component A and a sliding rod. The tensioning component A includes two permanent magnets. A sliding groove B is provided on the sliding base. Both permanent magnets are disposed in the sliding groove B. One permanent magnet is connected to the upper wall of the sliding groove B, and the other permanent magnet is slidably connected to the inner wall of the sliding groove B. The magnetic poles of the two permanent magnets are the same at their closest ends. One end of the sliding rod is inserted into the sliding groove B and connected to the movable permanent magnet. The other end of the sliding rod is connected to the bottom surface of the sliding groove A.
[0012] Preferably, the tensioning component B includes a spring, a slide groove C is provided on the card holder, a button passes through the slide groove C and is slidably connected to it, a positioning plate is provided on the button, the positioning plate is located in the slide groove C and is slidably connected to it, the spring is sleeved on the button, and the two ends of the spring abut against the bottom surface of the slide groove C and the bottom surface of the positioning plate, respectively.
[0013] Preferably, the transmission assembly includes a connecting rod, a slider is provided at the bottom of the wedge block, the slider is slidably connected to the card holder, and the two ends of the connecting rod are rotatably connected to the button and the corresponding slider, respectively.
[0014] Preferably, when the outer end face of the button is flush with the outer end face of the slide, the wedge block just disengages from the slot.
[0015] Compared with the prior art, the present invention has the following beneficial technical effects:
[0016] By setting a sliding groove A and a sliding block that slides along the sliding groove A on the socket body, a conductive male plug is set in the sliding groove A, and a conductive female hole is set on the sliding block. A wedge block is set on the sliding block to limit its own sliding within the sliding groove. The wedge block slides back by pressing a button. The sliding restriction of the sliding block can only be released when the plug prongs are fully inserted into the socket. And the sliding block can only be inserted into the socket and energized after it is unlocked. This can effectively prevent electric shock. By setting a beetle-shaped rebound device and an anti-disengagement mechanism consisting of a tensioning component A and a sliding rod, the sliding block can be pressed into the sliding groove A and locked in the sliding groove A or rebound to reset after unlocking. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of one embodiment of the present utility model;
[0018] Figure 2 This is a schematic diagram of the connection structure of the various components on the socket body;
[0019] Figure 3 This is a schematic diagram of the connection structure of the various components on the slide.
[0020] Figure 4 This is a schematic diagram of the connection structure of the various components on the card holder.
[0021] Reference numerals in the attached diagram: 1. Socket body; 101. Slide A; 102. Slot; 2. Conductive male plug; 3. Spring self-locking device; 4. Slide base; 401. Socket; 402. Slide B; 5. Safety door; 6. Permanent magnet; 7. Slide rod; 8. Touch ball; 9. Card holder; 91. Slide C; 10. Wedge block; 11. Slider; 12. Button; 121. Positioning plate; 13. Connecting rod; 14. Spring. Detailed Implementation
[0022] Example 1
[0023] like Figures 1-4As shown, the present invention proposes an anti-electric shock intelligent control socket, including a socket body 1, a slide 4, a card holder 9 and a transmission component. The socket body 1 is provided with a slide groove A101, the side wall of the slide groove A101 is provided with a card slot 102, and the bottom surface of the slide groove A101 is provided with a conductive male plug 2 and a spring self-locking device 3. One end of the slide block 4 is inserted into the slide groove A101 and slidably connected to its inner wall. The slide block 4 is provided with an anti-detachment mechanism to prevent it from detaching from the slide groove A101. The anti-detachment mechanism includes a tensioning component A and a slide rod 7. The tensioning component A includes two permanent magnets 6. The slide block 4 is provided with a slide groove B402. Both permanent magnets 6 are located in the slide groove B402. One permanent magnet 6 is connected to the upper wall of the slide groove B402, and the other permanent magnet 6 is slidably connected to the inner wall of the slide groove B402. The magnetic poles of the two permanent magnets 6 are the same at their closest ends. One end of the slide rod 7 is inserted into the slide groove B402 and connected to the movable permanent magnet 6. The other end of the slide rod 7 is connected to the bottom surface of the slide groove A101. The slide block 4 is provided with a conductive female hole that is compatible with the conductive male plug 2. The slide block 4 is provided with a socket 401 and a ball catch 8 that is compatible with the spring self-locking device 3. The spring self-locking device 3 and the ball catch 8 cooperate to form a beetle bouncer. A conductive metal sheet is provided in the socket 401 and extends into the conductive female hole. The card holder 9 is provided on the slide block 4. The card holder 9 is provided with a tensioning component B. The movable end of the tensioning component B is connected to a wedge block 10. The wedge block 10 is compatible with the corresponding side card groove 102. A button 12 is slidably provided on the card holder 9. The button 12 extends out of the slide block 4 and is slidably connected to it. Tensioning assembly B includes a spring 14, a slide groove C91 on the holder 9, a button 12 passing through and slidably connected to the slide groove C91, a positioning plate 121 on the button 12, the positioning plate 121 being located within and slidably connected to the slide groove C91, and the spring 14 being sleeved on the button 12, with both ends of the spring 14 abutting against the bottom surface of the slide groove C91 and the bottom surface of the positioning plate 121, respectively. The transmission assembly includes a connecting rod 13, a slider 11 at the bottom of the wedge block 10, the slider 11 being slidably connected to the holder 9, and both ends of the connecting rod 13 being rotatably connected to the button 12 and the corresponding slider 11, respectively. The transmission assembly drives the wedge block 10 and the button 12, so that when the button 12 is pressed, the wedge block 10 retracts and disengages from the slot 102. When the outer end face of the button 12 is flush with the outer end face of the slide block 4, the wedge block 10 just disengages from the slot 102.
[0024] In this embodiment, during actual use, the plug prongs need to be inserted into the socket 401 first. At this time, since the wedge block 10 is in the slot 102 and blocks the slide 4 from sliding down, the plug insertion into the socket 401 is the same as in the traditional method. When the prongs are fully inserted into the socket 401, the plug itself will press the button 12 and make the button 12 slide down to be flush with the end face of the slide 4. The sliding of the button 12 will drive the wedge block 10 to retract into the bracket 9 through the connecting rod 13 and the slider 11, thereby releasing the sliding restriction on the slide 4. At this time, press the plug and press the slide 4 until the conductive male plug 2 is inserted into the conductive female hole. This allows the metal conductive piece inside the socket body 1 and the socket hole 401 on the slide block 4 to conduct electricity, thus energizing the plug. When the slide block 4 is pressed to its limit position for the first time, the ball 8 engages with the spring self-locking device 3, preventing the slide block 4 from popping out. When the plug is unplugged, the slide block 4 is pressed again to release the self-locking of the beetle rebound device. The slide block 4 automatically pops out and resets under the tension of the two permanent magnets 6 with the same magnetic poles. At the same time, the button 12 automatically pops out and resets under the tension of the spring 14. When the button 12 resets, the wedge block 10 re-engages in the slot 102, thus limiting the sliding of the slide block 4.
[0025] Example 2
[0026] As shown in the figure, the present invention proposes an anti-electric shock intelligent control socket, which, compared with the first embodiment, has a safety door 5 installed inside the socket 401.
[0027] In this embodiment, the safety door is a protective device installed on the socket hole, typically made of insulating materials such as plastic or nylon, and designed with a spring or sliding mechanism. When a standard plug attempts to be inserted, the metal part of the plug pushes open the spring or sliding piece inside the safety door, exposing the socket hole for plug insertion. Once the plug is removed, the safety door quickly resets, resealing the socket hole, thereby effectively preventing foreign objects from entering.
[0028] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A smart socket with anti-electric shock function, characterized in that, include: The socket body (1) is provided with a sliding groove A (101), a slot (102) is provided on the side wall of the sliding groove A (101), and a conductive male plug (2) and a spring self-locking device (3) are provided on the bottom surface of the sliding groove A (101). The slide (4) has one end inserted into the slide groove A (101) and slidably connected to its inner wall. The slide (4) is provided with an anti-detachment mechanism to prevent it from detaching from the slide groove A (101). The slide (4) is provided with a conductive female hole that is compatible with the conductive male plug (2). The slide (4) is provided with a plug hole (401) and a ball (8) that is compatible with the spring self-locking device (3). Card holder (9) is set on slide (4). Tensioning component B is set on card holder (9). The movable end of tensioning component B is connected to wedge block (10). Wedge block (10) is adapted to the corresponding card slot (102). Button (12) is slidably set on card holder (9). Button (12) extends out of slide (4) and is slidably connected to it. And a transmission assembly that drives the wedge block (10) and the button (12) to retract and disengage the wedge block (102) from the slot when the button (12) is pressed.
2. The anti-electric shock intelligent control socket according to claim 1, characterized in that, The spring self-locking device (3) and the ball (8) work together to form the beetle bouncer.
3. The anti-electric shock intelligent control socket according to claim 1, characterized in that, A safety door (5) is installed inside the socket (401).
4. The anti-electric shock intelligent control socket according to claim 1, characterized in that, The anti-detachment mechanism includes a tensioning component A and a slide rod (7). The tensioning component A includes two permanent magnets (6). A slide groove B (402) is provided on the slide base (4). Both permanent magnets (6) are located in the slide groove B (402). One permanent magnet (6) is connected to the upper wall of the slide groove B (402), and the other permanent magnet (6) is slidably connected to the inner wall of the slide groove B (402). The magnetic poles of the two permanent magnets (6) are the same at their closest ends. One end of the slide rod (7) is inserted into the slide groove B (402) and connected to the movable permanent magnet (6). The other end of the slide rod (7) is connected to the bottom surface of the slide groove A (101).
5. The anti-electric shock intelligent control socket according to claim 1, characterized in that, Tensioning component B includes a spring (14), a slot C (91) on a bracket (9), a button (12) passing through the slot C (91) and slidably connected thereto, a positioning plate (121) on the button (12), the positioning plate (121) being located inside the slot C (91) and slidably connected thereto, and the spring (14) being sleeved on the button (12), with both ends of the spring (14) abutting against the bottom surface of the slot C (91) and the bottom surface of the positioning plate (121) respectively.
6. The anti-electric shock intelligent control socket according to claim 5, characterized in that, The transmission assembly includes a connecting rod (13), a slider (11) is provided at the bottom of the wedge block (10), the slider (11) is slidably connected to the card holder (9), and the two ends of the connecting rod (13) are rotatably connected to the button (12) and the corresponding slider (11) respectively.
7. The anti-electric shock intelligent control socket according to claim 1, characterized in that, When the outer end face of the button (12) is flush with the outer end face of the slide (4), the wedge block (10) just disengages from the slot (102).