Panel structure of intelligent socket
By designing a driving component on the smart socket panel to move the receiving hook, the problem of messy data cables is solved, enabling convenient storage and quick access to data cables, thus improving efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WENZHOU TIANMIN TECH CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-05-12
AI Technical Summary
The data cables used by different devices are haphazardly arranged, requiring users to find the correct data cable when changing devices, which is inconvenient.
The smart socket panel structure is designed with a drive component to drive the moving block, which in turn drives the receiving hook to slide, providing a hanging position for the data cable. The moving speed and stability are improved through a bevel gear structure.
It enables convenient storage and quick access to data cables, reduces the risk of loss, and improves efficiency.
Smart Images

Figure CN224233089U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sockets, and in particular to a panel structure for a smart socket. Background Technology
[0002] Sockets are essential electrical products used in daily life to provide electrical circuit access interfaces for appliances.
[0003] The invention patent with announcement number CN106921090A discloses a smart socket, which includes a socket panel, a socket inner box, and a central control component disposed in the socket inner box. The socket panel is fastened to the opening of the inner box. The main circuit board is arranged parallel to the socket panel. The data acquisition board is disposed on one end of the main circuit board facing the socket panel, and the communication board is disposed on the other end of the main circuit board facing the socket panel.
[0004] With the widespread use of electronic products, people often need to charge their electronic devices, and data cables, as a charging tool, have become widely used. However, because data cables are generally thin and long, and relatively small, they need to be plugged into smart sockets, which often leads to the following problems: different devices use different data cables; there is no fixed place to store data cables after use; and users need to find the correct data cable when changing it, making it inconvenient to use. Utility Model Content
[0005] To facilitate users charging their devices using data cables on smart sockets, this application provides a panel structure for a smart socket.
[0006] The panel structure of the smart socket provided in this application adopts the following technical solution:
[0007] A panel structure for a smart socket includes a panel body, a driving component, a moving block, and a receiving hook. The bottom surface of the panel body has a receiving groove for the moving block and the receiving hook to move. The moving block is slidably connected in the receiving groove along the depth direction of the receiving groove. The driving component drives the moving block to slide. The hook tail of the receiving hook is disposed on the moving block. The opening of the receiving hook faces upward and is used for hanging data cables.
[0008] Preferably, the driving component includes a first rotating rod, a second rotating rod, a first bevel gear, a second bevel gear, and a rotating block. The rotating block is located on the outside of the panel body and is rotatably connected to the panel body along an axis perpendicular to the moving direction of the moving block. The two ends of the first rotating rod are coaxially fixedly connected to the rotating block and the first bevel gear, respectively. The second rotating rod is rotatably connected to the panel body along an axis parallel to the moving direction of the moving block. The second bevel gear is coaxially fixedly connected to the second rotating rod. The bottom end of the second rotating rod passes through and is threadedly connected to the moving block. The first bevel gear is meshed with the second bevel gear.
[0009] Preferably, the diameter of the first bevel gear is larger than the diameter of the second bevel gear.
[0010] Preferably, the movable block includes a slider and a spring. The slider is slidably connected to the receiving groove along the depth direction of the receiving groove. A groove is formed on the bottom surface of the slider. The hook tail of the receiving hook is slidably connected to the groove along the depth direction of the receiving groove. The two ends of the spring are respectively fixedly connected to the bottom wall of the groove and the hook tail of the receiving hook. The driving component drives the slider to slide.
[0011] Preferably, the movable block further includes a connecting rod and an abutment block. The abutment block is slidably connected in the receiving groove along a sliding direction parallel to the slider. The two ends of the connecting rod are respectively fixed to the abutment block and the slider. The driving member drives the abutment block to slide. The spring is always in a stretched state. The hook tip of the receiving hook always abuts against the bottom surface of the abutment block.
[0012] Preferably, a limiting block is provided on the outer wall of the abutting block, and a limiting groove is provided on the inner wall of the receiving groove. The limiting block is slidably connected in the limiting groove along the sliding direction parallel to the abutting block. When the limiting block moves to abut against the two end walls of the limiting groove, the receiving hook extends out of the receiving groove or the receiving hook is completely located in the receiving groove.
[0013] Preferably, the hook tip of the receiving hook is folded downwards towards the side away from the hook tail, and when the limiting block moves to abut against the lower end wall of the limiting groove, the bottom surface of the abutting block is flush with the bottom surface of the panel body.
[0014] The main technical effects of this utility model are reflected in the following aspects:
[0015] 1. This utility model uses a driving component to move a moving block, causing the receiving hook to extend out of the receiving groove. The user can then hang the data cable on the receiving hook, which can temporarily store the data cable. This allows the user to quickly take out the data cable when charging it on the smart socket, making it convenient for the user to charge the data cable on the smart socket.
[0016] 2. By setting the diameter of the first bevel gear to be larger than that of the second bevel gear, this utility model improves the moving speed of the moving block and increases the efficiency of the user in storing and using the receiving hook.
[0017] 3. By setting the hook tip of the receiving hook to abut against the receiving block, this utility model can reduce the probability of the data cable coming off the receiving hook. Attached Figure Description
[0018] Figure 1 This is a structural schematic diagram of the receiving hook in use according to an embodiment of this application.
[0019] Figure 2 This is a structural schematic diagram of the receiving hook in its stored state according to an embodiment of this application.
[0020] Figure 3 It is along Figure 1 A cross-sectional view along line AA in the middle.
[0021] Figure 4 It is along Figure 1 A cross-sectional view along the BB line.
[0022] Figure 5 It is along Figure 2 A cross-sectional view of the CC line.
[0023] Explanation of reference numerals in the attached drawings: 1. Panel body; 11. Triangular slot; 12. Two-prong slot; 13. Interface slot; 14. Indicator light slot; 15. Receiving slot; 151. Limiting slot; 2. Drive component one; 21. First rotating rod; 22. Second rotating rod; 23. First bevel gear; 24. Second bevel gear; 25. Rotating block; 3. Moving block; 31. Sliding block; 311. Slide groove; 32. Spring; 33. Connecting rod; 34. Abutment block; 341. Limiting block; 4. Receiving hook; 5. Data cable. Detailed Implementation
[0024] The following is in conjunction with the appendix Figure 1-5 This application will be described in further detail to make the technical solution of this application easier to understand and master.
[0025] This application discloses a panel structure for a smart socket.
[0026] Reference Figure 1 , Figure 2 The panel structure of a smart socket in this embodiment includes a panel body 1. The panel body 1 has a triangular slot 11 and a two-prong slot 12 for inserting a plug, an interface slot 13 for installing a USB interface, and an indicator light slot 14 for installing a WIFI connection module indicator light.
[0027] Reference Figure 1 , Figure 3The panel structure of a smart socket in this embodiment also includes two driving components 2, two moving blocks 3, and two receiving hooks 4. The following examples all take the normal use state of the panel body 1 as an example. At this time, the panel body 1 is vertically arranged. Two receiving grooves 15 are opened on the bottom surface of the panel body 1 along the vertical direction. The two receiving grooves 15 are located at both ends of the panel body 1. The two receiving grooves 15 correspond to the two moving blocks 3 respectively. The moving blocks 3 are slidably connected in the corresponding receiving grooves 15 along the vertical direction. The two driving components 2 correspond to the two moving blocks 3 respectively. The driving components 2 drive the corresponding moving blocks 3 to slide.
[0028] Reference Figure 1 , Figure 3 Two receiving hooks 4 correspond to two moving blocks 3 respectively. The hook tails of the receiving hooks 4 are vertically fixed on the corresponding moving blocks 3. The openings of the receiving hooks 4 face upwards and are used to hang the data cables 5. The receiving groove 15 not only allows the moving blocks 3 to slide, but also serves to store the receiving hooks 4.
[0029] Reference Figure 1 , Figure 3 The driving component 2 includes a first rotating rod 21, a second rotating rod 22, a first bevel gear 23, a second bevel gear 24, and a rotating block 25. The first rotating rod 21 is rotatably connected inside the panel body 1. The rotation axis of the first rotating rod 21 is perpendicular to the movement direction of the moving block 3 and parallel to the vertical plane containing the surface of the panel body 1. The second rotating rod 22 is rotatably connected inside the panel body 1 along an axis parallel to the movement direction of the moving block 3. Both ends of the first rotating rod 21 are coaxially fixedly connected to the rotating block 25 and the first bevel gear 23, respectively. The rotating block 25 is located on the outside of the panel body 1, with two rotating blocks 25 located on opposite sides of the panel body 1. The rotating blocks 25 are disc-shaped, allowing the user to apply force to drive them to rotate. The second bevel gear 24 is coaxially fixedly connected to the top of the second rotating rod 22. The first bevel gear 23 is located below the second bevel gear 24 and meshes with it. The bottom end of the second rotating rod 22 is threaded through and connected to the moving block 3.
[0030] Reference Figure 1 , Figure 3 When the user rotates the rotating block 25, the rotating block 25 drives the first rotating rod 21 to rotate, and then drives the second rotating rod 22 to rotate through the cooperation of the first bevel gear 23 and the second bevel gear 24. The rotation of the second rotating rod 22 drives the moving block 3, which is threadedly connected to the second rotating rod 22, to move within the receiving groove 15. In order to speed up the movement of the moving block 3, the diameter of the first bevel gear 23 is larger than the diameter of the second bevel gear 24, thereby increasing the moving speed of the moving block 3 and improving the efficiency of the user in storing and using the receiving hook 4.
[0031] Reference Figure 4 , Figure 5The movable block 3 includes a slider 31, a spring 32, a connecting rod 33, and an abutment block 34. Both the slider 31 and the abutment block 34 are slidably connected in the receiving groove 15 along a sliding direction parallel to the slider 31. A groove 311 is formed on the bottom surface of the slider 31 along a sliding direction parallel to the slider 31. The hook tail of the receiving hook 4 is slidably connected in the groove 311 along the depth direction of the groove 311. The two ends of the spring 32 are respectively fixedly connected to the bottom wall of the groove 311 and the hook tail of the receiving hook 4. The bottom end of the second rotating rod 22 passes through and is threadedly connected to the abutment block 34. The two ends of the connecting rod 33 are respectively fixed to the abutment block 34 and the slider 31. The spring 32 is always in a stretched state, and the hook tip of the receiving hook 4 always abuts against the bottom surface of the abutment block 34.
[0032] Reference Figures 3-5 A limiting block 341 is fixed on the outer wall of the abutment block 34 facing away from the slider 31. A limiting groove 151 is formed on the inner wall of the receiving groove 15. The limiting block 341 is slidably connected in the limiting groove 151 along the sliding direction parallel to the abutment block 34. When the limiting block 341 moves to abut against the top end wall of the limiting groove 151, the receiving hook 4 moves completely into the receiving groove 15. When the limiting block 341 moves to abut against the lower end wall of the limiting groove 151, the bottom surface of the abutment block 34 is flush with the bottom surface of the panel body 1, and part of the receiving hook 4 extends out of the receiving groove 15.
[0033] Reference Figure 1 , Figures 3-5 The hook tip of the receiving hook 4 is folded downwards away from the hook tail. When the user needs to hang the data cable 5 on the receiving hook 4, first rotate the rotating block 25 to drive the abutment block 34 to move down until the limiting block 341 abuts against the lower end wall of the limiting groove 151. Then, use your hand to pull down the part of the receiving hook 4 that extends out of the receiving groove 15, so that a gap is formed between the hook tip of the receiving hook 4 and the abutment block 34 for the data cable 5 to pass through. Then, the operator puts the data cable 5 in, so that the data cable 5 is hung on the receiving hook 4. Then, release the receiving hook 4, and the hook tip of the receiving hook 4 abuts against the abutment block 34 again, which can reduce the chance of the data cable 5 coming off the receiving hook 4. The second way to hang the data cable 5 is as follows: the user inserts the data cable 5 into the opening of the receiving hook 4 from the side of the hook tip facing away from the hook tail. The downward-folded part of the hook tip guides the insertion of the data cable 5, causing the receiving hook 4 to move downward until the data cable 5 enters the receiving hook 4. The third way to hang the data cable 5 is to pass one end of the data cable 5 through the receiving hook 4, so that the data cable 5 hangs on the receiving hook 4. When the receiving hook 4 is not needed, the user rotates the rotating block 25 to retract the receiving hook 4 back into the receiving slot 15.
[0034] Of course, the above are just typical examples of this application. In addition, this application may have many other specific implementation methods. All technical solutions formed by equivalent substitution or equivalent transformation fall within the scope of protection claimed in this application.
Claims
1. A panel structure for a smart socket, comprising a panel body (1), characterized in that: It also includes a drive component (2), a moving block (3) and a receiving hook (4). The bottom surface of the panel body (1) is provided with a receiving groove (15) for the moving block (3) and the receiving hook (4) to move. The moving block (3) is slidably connected in the receiving groove (15) along the depth direction of the receiving groove (15). The drive component (2) drives the moving block (3) to slide. The hook tail of the receiving hook (4) is set on the moving block (3). The opening of the receiving hook (4) faces upward and is used for hanging the data cable (5).
2. The panel structure of a smart socket according to claim 1, characterized in that: The drive component 1 (2) includes a first rotating rod (21), a second rotating rod (22), a first bevel gear (23), a second bevel gear (24), and a rotating block (25). The rotating block (25) is located on the outside of the panel body (1) and is rotatably connected to the panel body (1) along the axis direction perpendicular to the moving block (3). The two ends of the first rotating rod (21) are coaxially fixedly connected to the rotating block (25) and the first bevel gear (23), respectively. The second rotating rod (22) is rotatably connected to the panel body (1) along the axis direction parallel to the moving block (3). The second bevel gear (24) is coaxially fixedly connected to the second rotating rod (22). The bottom end of the second rotating rod (22) is threaded through and connected to the moving block (3). The first bevel gear (23) is meshed with the second bevel gear (24).
3. The panel structure of a smart socket according to claim 2, characterized in that: The diameter of the first bevel gear (23) is greater than the diameter of the second bevel gear (24).
4. The panel structure of a smart socket according to claim 1, characterized in that: The movable block (3) includes a slider (31) and a spring (32). The slider (31) is slidably connected in the receiving groove (15) along the depth direction of the receiving groove (15). A groove (311) is provided on the bottom surface of the slider (31). The hook tail of the receiving hook (4) is slidably connected in the groove (311) along the depth direction of the receiving groove (15). The two ends of the spring (32) are respectively fixedly connected to the bottom wall of the groove (311) and the hook tail of the receiving hook (4). The driving component (2) drives the slider (31) to slide.
5. The panel structure of a smart socket according to claim 4, characterized in that: The movable block (3) also includes a connecting rod (33) and an abutment block (34). The abutment block (34) is slidably connected in the receiving groove (15) along the sliding direction parallel to the slider (31). The two ends of the connecting rod (33) are respectively fixed on the abutment block (34) and the slider (31). The driving member (2) drives the abutment block (34) to slide. The spring (32) is always in a stretched state. The hook tip of the receiving hook (4) is always abutting the bottom surface of the abutment block (34).
6. The panel structure of a smart socket according to claim 5, characterized in that: The outer wall of the abutment block (34) is provided with a limiting block (341), and the inner wall of the receiving groove (15) is provided with a limiting groove (151). The limiting block (341) is slidably connected in the limiting groove (151) along the sliding direction parallel to the abutment block (34). When the limiting block (341) moves to abut against the two end walls of the limiting groove (151), the receiving hook (4) extends out of the receiving groove (15) or the receiving hook (4) is completely located in the receiving groove (15).
7. The panel structure of a smart socket according to claim 6, characterized in that: The hook tip of the receiving hook (4) is folded downwards towards the side away from the hook tail. When the limiting block (341) moves to abut against the lower end wall of the limiting groove (151), the bottom surface of the abutting block (34) is flush with the bottom surface of the panel body (1).