Push-in wiring structure for track socket
By designing a push-button wiring structure for the track socket and using a push frame to drive the oscillation of the conductive plate to switch the power supply head on and off, the problem of having to remove the entire adapter to disconnect the power in existing technologies is solved, simplifying the operation process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 浙江锦洋智能科技有限公司
- Filing Date
- 2025-07-24
- Publication Date
- 2026-05-29
AI Technical Summary
The existing track sockets cannot be disconnected once the power source is connected to the power track. The adapter must be completely removed to disconnect the power, which is inconvenient.
Design a push-button wiring structure for a track socket. By pushing the bracket to drive the live and neutral wire conductive plates to swing, the power take-up head can be raised or lowered, thus switching between power on and power off.
The power on/off control of the adapter has been simplified, making operation simpler and more convenient. Power can be turned off without removing the entire adapter.
Smart Images

Figure CN224305109U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of socket adapter technology, and more specifically, it relates to a push-button wiring structure for a track socket. Background Technology
[0002] A track socket is a portable socket that includes an adapter and a power track. The adapter can be fitted into different positions on the power track to draw power as needed.
[0003] An adapter typically includes an adapter body with a socket and a power take-off part with a conductive plate, wherein the power take-off part is inserted into a slot in the power rail, and the conductive plate is electrically connected to the power rail.
[0004] Once the power-taking arm of the existing adapter is inserted into the slot, it remains electrically connected to the power rail and cannot be disconnected. The adapter can only be de-energized by removing it from the power rail, which is a cumbersome process. Utility Model Content
[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a push-button wiring structure for a track socket.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A push-button wiring structure for a track socket includes an adapter and a power rail. The adapter includes an adapter body and a power take-off body. The power rail is provided with a slot adapted to the power take-off body. A live wire conductive piece and a neutral wire conductive piece are oscillatingly disposed on the power take-off body. One end of the live wire conductive piece is provided with a live wire take-off head, and the other end extends into one side of the adapter body.
[0008] One end of the neutral wire conductive sheet is provided with a neutral wire power take-off head, and the other end extends to the other side of the adapter body;
[0009] The adapter body has a sliding push frame and a swinging first swing member and a second swing member swaying on its base. The lower end of the first swing member passes through the first through hole of the push frame and engages with the live wire conductive plate. The lower end of the second swing member passes through the second through hole on the push frame and engages with the neutral wire conductive plate.
[0010] The pusher simultaneously drives the first swinging component and the second swinging component to swing the live wire conductive plate and the neutral wire conductive plate to one side, so that the live wire power take-off head and the neutral wire power take-off head are electrically connected to the power rail.
[0011] The present invention further includes: a rolling roller is sleeved on the outer side of both the live wire conductive sheet and the neutral wire conductive sheet, and a rolling groove adapted to the swing roller is provided on the power taking body;
[0012] The rolling roller rolls back and forth in the rolling groove, causing the live wire conductive sheet or the neutral wire conductive sheet to swing back and forth.
[0013] The present invention is further provided in that: the upper ends of the first swing member and the second swing member are both provided with swing shafts;
[0014] The base of the adapter body is provided with a swing hole, wherein the first swing member and the second swing member are both oscillatingly mounted on the corresponding swing hole via a swing shaft.
[0015] The present invention is further provided that: the lower ends of the first swing member and the second swing member are both connected to a pressure rod, and the lower end of the pressure rod is tapered;
[0016] When the first swinging component swings, the live wire conductive sheet is driven to swing to one side by the pressure rod;
[0017] When the second swinging member swings, the neutral wire conductive plate is driven to swing to one side by the pressure rod.
[0018] The present invention is further provided that: there are a first button and a second button on both sides of the push frame, wherein the first button and the second button protrude from the first button window and the second button window on both sides of the adapter body, respectively.
[0019] The present invention is further provided with: a ground wire conductive sheet is provided on the power receiving body, and a ground wire connector is clamped at the front end of the ground wire conductive sheet;
[0020] A contact spring is fitted onto the grounding connector. One end of the contact spring abuts against the power source, and the other end abuts against the grounding connector.
[0021] The beneficial effects of this utility model are as follows: After the power-taking body of the adapter is inserted into the slot of the power rail, pushing the push frame to one side causes the first and second swinging components to swing the live wire conductive plate and the neutral wire conductive plate to one side, respectively. This causes the live wire power-taking head and the neutral wire power-taking head to tilt upwards and connect to the power rail, thus energizing the adapter. When it is necessary to de-energize the adapter, simply push the push frame in the opposite direction. This causes the first and second swinging components to swing the live wire conductive plate and the neutral wire conductive plate to the other side, respectively. This causes the live wire power-taking head and the neutral wire power-taking head to swing downwards, disconnecting the electrical connection with the power rail, thus de-energizing the adapter. The adapter can be de-energized without removing it from the power rail, simplifying the power-on / off control of the adapter and making operation simpler and more convenient. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the push-button wiring structure of a track socket according to the present invention;
[0023] Figure 2 This is a schematic diagram of the adapter with a push-button wiring structure for a track socket according to this utility model;
[0024] Figure 3 This is a schematic diagram of the internal structure of an adapter with a push-button wiring structure for a track socket according to this utility model. Figure 1 ;
[0025] Figure 4 This is a schematic diagram of the internal structure of a push-button wiring structure for a track socket according to this utility model. Figure 2 ;
[0026] Figure 5 This is a schematic diagram of the transmission structure of a push-to-connection structure for a track socket according to this utility model;
[0027] Figure 6 This is a schematic diagram of the push frame of the push-type wiring structure of a track socket according to this utility model;
[0028] Figure 7 This is a schematic diagram of the base of the push-to-connection structure of a track socket according to this utility model;
[0029] Explanation of reference numerals in the attached drawings: 1. Adapter; 11. Adapter body; 111. Base; 1111. Push frame; 11111. First through hole; 11112. Second through hole; 11113. First button; 11114. Second button; 1112. First swinging component; 1113. Second swinging component; 1114. Swinging hole; 12. Power take-up element; 121. Live wire conductive sheet; 1211. Live wire power take-up head; 122. Neutral wire conductive sheet; 1221. Neutral wire power take-up head; 123. Rolling groove; 124. Ground wire conductive sheet; 125. Ground wire connector; 126. Contact spring; 2. Power rail; 21. Slot; 3. Rolling roller; 4. Swinging shaft; 5. Pressure rod. Detailed Implementation
[0030] See attached document Figures 1 to 7 The present invention provides a further detailed description of the push-button wiring structure of a track socket.
[0031] A push-button wiring structure for a track socket includes an adapter 1 and a power rail 2. The adapter 1 includes an adapter body 11 and a power take-off body 12. The power rail 2 is provided with a slot 21 that is adapted to the power take-off body 12. A live wire conductive piece 121 and a neutral wire conductive piece 122 are oscillatingly disposed on the power take-off body 12. One end of the live wire conductive piece 121 is provided with a live wire take-off head 1211, and the other end extends into one side of the adapter body 11.
[0032] One end of the neutral wire conductive sheet 122 is provided with a neutral wire power take-off head 1221, and the other end extends to the other side of the adapter body 11.
[0033] The adapter body 11 has a push frame 1111 slidably disposed on the base 111 and a first swing member 1112 and a second swing member 1113 swayably disposed on the base 111. The lower end of the first swing member 1112 passes through the first through hole 11111 of the push frame 1111 and cooperates with the live wire conductive sheet 121. The lower end of the second swing member 1113 passes through the second through hole 11112 on the push frame 1111 and cooperates with the neutral wire conductive sheet 122.
[0034] After inserting the power take-off part 12 of adapter 1 into the slot 21 of the power rail 2, push the pusher 1111 to one side. The pusher 1111 simultaneously drives the first swing member 1112 and the second swing member 1113 to swing the live wire conductive plate 121 and the neutral wire conductive plate 122 to one side, so that the live wire power take-off part 1211 and the neutral wire power take-off part 1221 tilt upwards and connect to the power rail 2, thus enabling adapter 1 to be powered on. When it is necessary to disconnect adapter 1 from the power, simply push the pusher 1 in the opposite direction. The frame 1111 drives the first swing member 1112 and the second swing member 1113 to swing the live wire conductive plate 121 and the neutral wire conductive plate 122 to the other side, causing the live wire power take-off head 1211 and the neutral wire power take-off head 1221 to swing downwards simultaneously, disconnecting the electrical connection with the power rail 2 and realizing the power off of the adapter 1. The adapter 1 can be powered off without removing it from the power rail 2, simplifying the power on / off control of the adapter 1 and making the operation simpler and more convenient.
[0035] The live wire conductive sheet 121 and the neutral wire conductive sheet 122 are both fitted with rolling rollers 3 on their outer sides, and the power taking body 12 is provided with a rolling groove 123 adapted to the swing roller; the rolling roller 3 rolls back and forth in the rolling groove 123, driving the live wire conductive sheet 121 or the neutral wire conductive sheet 122 to swing back and forth; so that the live wire conductive sheet 121 and the neutral wire conductive sheet 122 swing more smoothly.
[0036] The upper ends of the first swing member 1112 and the second swing member 1113 are both provided with swing shafts 4; the base 111 of the adapter body 11 is provided with swing holes 1114, wherein the first swing member 1112 and the second swing member 1113 are both oscillatingly mounted on the corresponding swing holes 1114 via the swing shafts 4; the lower ends of the first swing member 1112 and the second swing member 1113 are both connected with pressure rods 5, and the lower end of the pressure rods 5 is tapered.
[0037] When the first swing member 1112 swings, the pressure rod 5 drives the live wire conductive piece 121 to swing to one side; when the second swing member 1113 swings, the pressure rod 5 drives the neutral wire conductive piece 122 to swing to one side. This allows the pressure rod 5 at the lower end of the first swing member 1112 and the second swing member 1113 to press down on one side of the live wire conductive piece 121 and the neutral wire conductive piece 122, thereby causing the live wire power take-off head 1211 and the neutral wire power take-off head 1221 at the other end of the live wire conductive piece 121 and the neutral wire conductive piece 122 to swing up and down, resulting in better power connection and disconnection effects.
[0038] The push frame 1111 has a first button 11113 and a second button 11114 on both sides, with the first button 11113 and the second button 11114 protruding from the first button 11113 window and the second button 11114 window on both sides of the adapter body 11, respectively. When connecting and disconnecting the adapter 1, the push frame 1111 can be pushed simply by pressing the first button 11113 and the second button 11114, making the operation more convenient.
[0039] The power taking body 12 is provided with a ground wire conductive plate 124, and the front end of the ground wire conductive plate 124 holds a ground wire connector 125; the ground wire connector 125 is fitted with an anti-contact spring 126, one end of the anti-contact spring 126 abuts against the power taking body 12, and the other end abuts against the ground wire connector 125; the anti-contact spring 126 ensures that the ground wire connector 125 is always in contact with the ground wire in the power rail 2.
[0040] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A push-button wiring structure for a track socket, comprising an adapter and a power rail, wherein the adapter includes an adapter body and a power receiving element, and the power rail is provided with a slot adapted to the power receiving element; characterized in that: The power-collecting body is oscillatingly equipped with a live wire conductive plate and a neutral wire conductive plate. One end of the live wire conductive plate is equipped with a live wire power-collecting head, and the other end extends into one side of the adapter body. One end of the neutral wire conductive sheet is provided with a neutral wire power take-off head, and the other end extends to the other side of the adapter body; The adapter body has a sliding push frame and a swinging first swing member and a second swing member swaying on its base. The lower end of the first swing member passes through the first through hole of the push frame and engages with the live wire conductive plate. The lower end of the second swing member passes through the second through hole on the push frame and engages with the neutral wire conductive plate. The pusher simultaneously drives the first swinging component and the second swinging component to swing the live wire conductive plate and the neutral wire conductive plate to one side, so that the live wire power take-off head and the neutral wire power take-off head are electrically connected to the power rail.
2. The push-button wiring structure of a track socket according to claim 1, characterized in that: Both the live wire conductive sheet and the neutral wire conductive sheet are fitted with rolling rollers on their outer sides, and the power taking body is provided with a rolling groove adapted to the swing rollers. The rolling roller rolls back and forth in the rolling groove, causing the live wire conductive sheet or the neutral wire conductive sheet to swing back and forth.
3. The push-button wiring structure of a track socket according to claim 2, characterized in that: Both the first and second swing members have a swing shaft at their upper ends; The base of the adapter body is provided with a swing hole, wherein the first swing member and the second swing member are both oscillatingly mounted on the corresponding swing hole via a swing shaft.
4. The push-button wiring structure of a track socket according to claim 3, characterized in that: The lower ends of both the first and second swing members are connected to pressure rods, and the lower ends of the pressure rods are tapered. When the first swinging component swings, the live wire conductive sheet is driven to swing to one side by the pressure rod; When the second swinging member swings, the neutral wire conductive plate is driven to swing to one side by the pressure rod.
5. A push-button wiring structure for a track socket according to claim 1, 2, 3, or 4, characterized in that: The push frame has a first button and a second button on each side, with the first button and the second button protruding from the first button window and the second button window on each side of the adapter body, respectively.
6. A push-button wiring structure for a track socket according to claim 1, 2, 3, or 4, characterized in that: The power-taking body is provided with a ground wire conductive sheet, and the front end of the ground wire conductive sheet is clamped with a ground wire connector; a contact spring is sleeved on the ground wire connector, one end of the contact spring abuts against the power-taking body, and the other end abuts against the ground wire connector.