Track socket and power track
By designing staggered conductors on the power rail socket, the problem of fixed socket orientation is solved, enabling flexible socket reversibility and improved electrical contact, thus adapting to the needs of different electrical devices.
Patent Information
- Application Number
- CN202422691351.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-05
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-11-05
AI Technical Summary
The sockets on existing power lines are difficult to adjust their orientation according to the needs of electrical equipment, resulting in fixed socket positions that cannot meet the need for flexible adjustments.
The design incorporates first and second conductive elements on the insertion plate of the track socket. The conductors of the conductive elements are located on the front and rear sides of the insertion plate at the same height and staggered vertically. When inserted into the track groove, the direction can be reversed to meet the needs of the electrical equipment.
It enables flexible front and rear rotation of the track socket, meets the electrical connection needs of electrical equipment, reduces dust and foreign matter adhesion, and improves electrical contact effect and equipment adaptability.
Smart Images

Figure CN223651760U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to electric power track technical field especially relates to a track socket and electric power track. BACKGROUND
[0002] The electric power track is provided with the track slot of horizontal extension, can insert the plugboard of socket into the track slot, make socket and electric power track electricity connection, and the plug of electric equipment is inserted into the socket, realizes that electric power track is powered to electric equipment, and socket can move along the track slot, so as to be convenient for the position of socket is adjusted at will according to the position of electric equipment. However, the socket of existing electric power track needs to cooperate in the fixed orientation in the track slot, is difficult to adjust the orientation of socket according to the demand of electric equipment. SUMMARY
[0003] The utility model aims at at least one of the technical problems existing in prior art. For this, the utility model provides a track socket and electric power track, when the plugboard of track socket is inserted into the track slot of electric power track, the firewire in the track slot can contact the first front conductive body or the first rear conductive body of first conductive piece, and the zero line in the track slot can contact the second front conductive body or the second rear conductive body of second conductive piece, so track socket can be turned around front and back to meet the demand of electric equipment.
[0004] According to the track socket of the utility model first aspect embodiment, including:
[0005] Plugboard;
[0006] First conductive piece, be located in the plugboard, the first conductive piece is equipped with first front conductive body and first rear conductive body, the first front conductive body protrudes in the front of the plugboard, the first rear conductive body protrudes in the rear of the plugboard, and the first front conductive body and the first rear conductive body are located at the same height;
[0007] Second conductive piece, be located in the plugboard, the second conductive piece is equipped with second front conductive body and second rear conductive body, the second front conductive body protrudes in the front of the plugboard, the second rear conductive body protrudes in the rear of the plugboard, and the second front conductive body and the second rear conductive body are located at the same height, and the second front conductive body and the first front conductive body are arranged in the up-down direction.
[0008] The track socket according to the embodiment of this utility model has at least the following beneficial effects: the first front conductor and the first rear conductor of the first conductive member are respectively disposed on the front and rear sides of the plug plate and are located at the same height; the second front conductor and the second rear conductor of the second conductive member are respectively disposed on the front and rear sides of the plug plate and are located at the same height; and the first front conductor and the second front conductor are staggered vertically. When the plug plate of the track socket is inserted into the track groove of the power track, the live wire in the track groove can contact the first front conductor or the first rear conductor of the first conductive member, and the neutral wire in the track groove can contact the second front conductor or the second rear conductor of the second conductive member. Therefore, the track socket can be reversed to meet the needs of electrical equipment.
[0009] According to some embodiments of the present utility model, the insert plate is provided with a receiving cavity, the front side wall of the receiving cavity is provided with a first front through hole and a second front through hole, the first front through hole and the second front through hole are staggered in the vertical direction, the rear side wall of the receiving cavity is provided with a first rear through hole and a second rear through hole, the first rear through hole and the first front through hole are located at the same height, and the second rear through hole and the second front through hole are located at the same height.
[0010] The first conductive element and the second conductive element are disposed in the receiving cavity. The first front conductive element is disposed in the first front through hole, the first rear conductive element is disposed in the first rear through hole, the second front conductive element is disposed in the second front through hole, and the second rear conductive element is disposed in the second rear through hole.
[0011] According to some embodiments of the present invention, the receiving cavity is provided with a first limiting structure, and the first limiting structure cooperates with the first conductive element to restrict the degree of freedom of the first conductive element in the receiving cavity.
[0012] And / or, the receiving cavity is provided with a second limiting structure, which cooperates with the second conductive element to restrict the degree of freedom of the second conductive element in the receiving cavity.
[0013] According to some embodiments of the present invention, the first limiting structure includes a first limiting groove and a first limiting post. The shape of the first limiting groove matches the shape of the first conductive component. The first conductive component is provided with a first limiting hole, and the first limiting post is inserted into the first limiting hole.
[0014] And / or, the second limiting structure includes a second limiting groove and a second limiting post, the shape of the second limiting groove matches the shape of the second conductive element, the second conductive element is provided with a second limiting hole, and the second limiting post is inserted into the second limiting hole.
[0015] According to some embodiments of the present invention, the insert plate includes:
[0016] Front shell;
[0017] The rear shell is connected to the rear side of the front shell, and the rear shell and the front shell together form the receiving cavity.
[0018] According to some embodiments of the present invention, the first front conductor and the first rear conductor are offset from each other to the left and right, and / or the second front conductor and the second rear conductor are offset from each other to the left and right.
[0019] According to some embodiments of the present invention, the track socket further includes:
[0020] A third conductive element is disposed on the insert plate. The third conductive element has a third front conductor and a third rear conductor. The third front conductor extends out from the front of the insert plate, and the third rear conductor extends out from the rear of the insert plate. The third front conductor and the third rear conductor are at the same height. The third front conductor, the second front conductor, and the first front conductor are staggered from each other in the vertical direction.
[0021] According to some embodiments of the present invention, the bottom end of the first front conductor arches forward, and the bottom end of the first rear conductor arches backward;
[0022] And / or, the bottom end of the second front conductor arches forward, and the bottom end of the second rear conductor arches backward.
[0023] According to a second aspect of the present invention, the electric track includes the track socket as described in the above embodiments.
[0024] The power rail according to the embodiment of this utility model has at least the following beneficial effects: the first front conductor and the first rear conductor of the first conductive element are respectively disposed on the front and rear sides of the plug plate and are located at the same height; the second front conductor and the second rear conductor of the second conductive element are respectively disposed on the front and rear sides of the plug plate and are located at the same height; and the first front conductor and the second front conductor are staggered vertically. When the plug plate of the rail socket is inserted into the rail groove of the power rail, the live wire in the rail groove can contact the first front conductor or the first rear conductor of the first conductive element, and the neutral wire in the rail groove can contact the second front conductor or the second rear conductor of the second conductive element. Therefore, the rail socket can be reversed to meet the needs of electrical equipment.
[0025] According to some embodiments of the present invention, the electric track further includes:
[0026] The track assembly has a track groove extending to the left and right, and the side wall of the track groove has a first conductive strip and a second conductive strip that are staggered vertically.
[0027] When the insert plate is inserted into the track groove, the first conductive strip abuts against the first front conductor or the first rear conductor, and the second conductive strip abuts against the second front conductor or the second rear conductor. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure of a track socket according to an embodiment of the present invention;
[0029] Figure 2 This is a schematic diagram of the track socket of one embodiment of the present invention from another angle;
[0030] Figure 3 This is an exploded view of the socket in one embodiment of the present invention;
[0031] Figure 4 This is an exploded view of the socket from another angle in one embodiment of the present invention;
[0032] Figure 5 This is a cross-sectional schematic diagram of a track socket according to an embodiment of the present utility model;
[0033] Figure 6 This is a cross-sectional schematic diagram of an embodiment of the electric track of this utility model.
[0034] Reference numerals: Insert plate 100, front shell 101, rear shell 102, receiving cavity 110, first limiting groove 111, first limiting post 112, second limiting groove 113, second limiting post 114, first front through hole 120, first rear through hole 121, second front through hole 130, second rear through hole 131, third front through hole 140, third rear through hole 141, first conductive element 200, first limiting hole 201, first front conductive body 210, first rear conductive body 220, second conductive element 300, second limiting hole 301, second front conductive body 310, second rear conductive body 320, third conductive element 400, third front conductive body 410, third rear conductive body 420, track assembly 500, track groove 510, first conductive strip 520, second conductive strip 530, third conductive strip 540. Detailed Implementation
[0035] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0036] In the description of this utility model, it should be understood that the terms front, back, up, down, axial, circumferential, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0037] In the description of this utility model, "multiple" means two or more; "greater than," "less than," and "exceeding" are understood to exclude the stated number; "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly specifying the number of indicated technical features or their sequential relationship.
[0038] In the description of this utility model, it should be noted that terms such as "setting," "installing," and "connecting" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0039] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are some embodiments of this utility model, not all embodiments.
[0040] Reference Figures 1 to 5 As shown, the track socket of this utility model is implemented in the following embodiments.
[0041] Reference Figure 1 and Figure 2 As shown, the track socket includes a plug plate 100, a first conductive element 200, and a second conductive element 300.
[0042] The insertion plate 100 is used to be inserted into the track groove of the power rail from top to bottom, and the first conductive element 200 and the second conductive element 300 are both disposed on the insertion plate 100.
[0043] The first conductive element 200 is provided with a first front conductor 210, which extends from the front of the insert plate 100. The first conductive element 200 is also provided with a first rear conductor 220, which extends from the rear of the insert plate 100. The height of the first front conductor 210 is equal to the height of the first rear conductor 220.
[0044] The second conductive element 300 is provided with a second front conductor 310, which extends from the front of the insert plate 100. The second conductive element 300 is also provided with a second rear conductor 320, which extends from the rear of the insert plate 100. The height of the second front conductor 310 is equal to the height of the second rear conductor 320. Furthermore, the position of the second front conductor 310 is vertically offset from the position of the first front conductor 210, and the position of the second rear conductor 320 is vertically offset from the position of the first rear conductor 220.
[0045] The first front conductor 210 and the second front conductor 310 are disposed on the front side of the socket 100, and the first rear conductor 220 and the second rear conductor 320 are disposed on the rear side of the socket 100. The first front conductor 210 and the second front conductor 310 are staggered vertically. When the socket 100 of the track socket is inserted into the track groove of the power track, the live wire in the track groove can contact the first conductor 200, and the neutral wire in the track groove can contact the second conductor 300. Therefore, the track socket can be rotated to meet the needs of electrical equipment.
[0046] In some embodiments, refer to Figures 3 to 5 As shown, the insert plate 100 has an internal receiving cavity 110. The front side of the receiving cavity 110 has a first front through hole 120 and a second front through hole 130 that are connected from front to back. The positions of the first front through hole 120 and the second front through hole 130 are staggered from each other in the vertical direction.
[0047] The rear side of the receiving cavity 110 is provided with a first rear through hole 121 and a second rear through hole 131 that are connected from front to back. The positions of the first rear through hole 121 and the second rear through hole 131 are staggered from each other in the vertical direction. The first rear through hole 121 is at the same height as the first front through hole 120, and the second rear through hole 131 is at the same height as the second front through hole 130.
[0048] The first conductive element 200 and the second conductive element 300 are both installed inside the receiving cavity 110. The first front conductive element 210 extends from the first front through hole 120 to the front of the insert plate 100, the first rear conductive element 220 extends from the first rear through hole 121 to the rear of the insert plate 100, the second front conductive element 310 extends from the second front through hole 130 to the front of the insert plate 100, and the second rear conductive element 320 extends from the second rear through hole 131 to the rear of the insert plate 100.
[0049] The first conductive element 200 and the second conductive element 300 are housed in the receiving cavity 110 of the insert plate 100, which avoids the first conductive element 200 and the second conductive element 300 being exposed and causing a short circuit. At the same time, it can reduce the adhesion of dust and other foreign objects to the first conductive element 200 and the second conductive element 300, and reduce the impact of the attached foreign objects on the conductivity efficiency.
[0050] In some embodiments, refer to Figure 3 and Figure 4 As shown, the cavity 110 is provided with a first limiting structure and a second limiting structure. The first limiting structure cooperates with the first conductive element 200, and the second limiting structure cooperates with the second conductive element 300, so that the positions of the first conductive element 200 and the second conductive element 300 are fixed, thus restricting the degree of freedom of the first conductive element 200 and the second conductive element 300 in the cavity 110.
[0051] The first conductive element 200 is fixed by the first limiting structure of the receiving cavity 110, and the second conductive element 300 is fixed by the second limiting structure of the receiving cavity 110. This helps to ensure that the positions of the first front conductor 210, the first rear conductor 220, the second front conductor 310, and the second rear conductor 320 are fixed, preventing power supply disconnection caused by positional deviation.
[0052] In some embodiments, refer to Figure 3 and Figure 4 As shown, the first limiting structure is provided with a first limiting groove 111 and a first limiting post 112. The first limiting groove 111 is provided on the side wall of the receiving cavity 110. The shape of the first limiting groove 111 is adapted to the shape of the first conductive element 200. The first conductive element 200 is disposed in the first limiting groove 111. The first limiting post 112 is provided on the inner wall of the first limiting groove 111. The first limiting post 112 extends in the front-back direction. The first conductive element 200 is provided with a first limiting hole 201 that extends in the front-back direction. The first limiting hole 201 cooperates with the first limiting post 112.
[0053] The second limiting structure is provided with a second limiting groove 113 and a second limiting post 114. The second limiting groove 113 is provided on the side wall of the receiving cavity 110. The shape of the second limiting groove 113 is adapted to the shape of the second conductive element 300. The second conductive element 300 is disposed in the second limiting groove 113. The second limiting post 114 is provided on the inner wall of the second limiting groove 113. The second limiting post 114 extends in the front-back direction. The second conductive element 300 is provided with a second limiting hole 301 that extends in the front-back direction. The second limiting hole 301 cooperates with the second limiting post 114.
[0054] The first limiting groove 111 and the second limiting groove 113 are distributed at intervals in the left and right directions.
[0055] The first conductive element 200 is fixed in the receiving cavity 110 by the first limiting groove 111 and the first limiting post 112 to prevent the first conductive element 200 from shifting.
[0056] The second conductive element 300 is fixed in the receiving cavity 110 by the second limiting groove 113 and the second limiting post 114 to prevent the second conductive element 300 from shifting.
[0057] In some embodiments, the insert plate 100 is provided with a front shell 101 and a rear shell 102, the front shell 101 is installed on the front side of the rear shell 102, and a receiving cavity 110 is formed between the front shell 101 and the rear shell 102.
[0058] The first conductive element 200 and the second conductive element 300 are clamped by combining the front shell 101 and the rear shell 102, making the assembly of the insert plate 100 more convenient.
[0059] In some embodiments, refer to Figures 1 to 5 As shown, the first front conductor 210 and the first rear conductor 220 are staggered in the left-right direction, and the second front conductor 310 and the second rear conductor 320 are staggered in the left-right direction.
[0060] The first front conductor 210 and the first rear conductor 220 of the first conductive member 200 are located at different positions in the left-right direction, and the second front conductor 310 and the second rear conductor 320 of the second conductive member 300 are located at different positions in the left-right direction. This helps to reduce the thickness of the first conductive member 200 and the second conductive member 300 in the front-back direction, avoids the excessive thickness of the insert plate 100 causing the track groove width of the power rail to be too large, and helps to compress the volume of the power rail so that the power rail can be installed in a narrower position.
[0061] In some embodiments, refer to Figures 1 to 5 As shown, the track socket is also provided with a third conductive element 400, which is installed in the socket plate 100. The third conductive element 400 is provided with a third front conductor 410, which extends from the front of the socket plate 100. The third conductive element 400 is also provided with a third rear conductor 420, which extends from the rear of the socket plate 100.
[0062] The third front conductor 410 and the third rear conductor 420 are at the same height. The first front conductor 210, the second front conductor 310 and the third front conductor 410 are staggered from top to bottom. The first rear conductor 220, the second rear conductor 320 and the third rear conductor 420 are staggered from top to bottom.
[0063] The first conductive element 200, the second conductive element 300, and the third conductive element 400 respectively make contact with the live wire, neutral wire, and ground wire of the power rail to adapt to electrical equipment with a ground wire.
[0064] In some embodiments, refer to Figures 3 to 5 As shown, the bottom end of the first front conductor 210 is bent and arched forward, the bottom end of the first rear conductor 220 is bent and arched backward, the bottom end of the second front conductor 310 is bent and arched forward, and the bottom end of the second rear conductor 320 is bent and arched backward.
[0065] The bottom ends of the first front conductor 210, the first rear conductor 220, the second front conductor 310, and the second rear conductor 320 are arched. The elasticity of the arched structure allows the bottom ends to fit tightly against the conductive strip of the power track, ensuring electrical contact.
[0066] Specifically, refer to Figures 1 to 5 As shown, the track socket includes a socket plate 100, a first conductive element 200, a second conductive element 300, and a third conductive element 400.
[0067] The insert plate 100 is used to be inserted into the track groove of the electric rail from top to bottom. The insert plate 100 is provided with a front shell 101 and a rear shell 102. The front shell 101 is installed on the front side of the rear shell 102, and a receiving cavity 110 is formed between the front shell 101 and the rear shell 102.
[0068] The first conductive element 200, the second conductive element 300, and the third conductive element 400 are all disposed in the receiving cavity 110.
[0069] The cavity 110 is provided with a first limiting structure, a second limiting structure and a third limiting structure. The first limiting structure cooperates with the first conductive element 200, the second limiting structure cooperates with the second conductive element 300, and the third limiting structure cooperates with the third conductive element 400, thereby fixing the positions of the first conductive element 200, the second conductive element 300 and the third conductive element 400 and restricting the degrees of freedom of the first conductive element 200, the second conductive element 300 and the third conductive element 400.
[0070] The first limiting structure is provided with a first limiting groove 111 and a first limiting post 112. The first limiting groove 111 is provided on the side wall of the receiving cavity 110. The shape of the first limiting groove 111 is adapted to the shape of the first conductive element 200. The first conductive element 200 is disposed in the first limiting groove 111. The first limiting post 112 is provided on the inner wall of the first limiting groove 111. The first limiting post 112 extends in the front-back direction. The first conductive element 200 is provided with a first limiting hole 201 that extends in the front-back direction. The first limiting hole 201 cooperates with the first limiting post 112.
[0071] The second limiting structure is provided with a second limiting groove 113 and a second limiting post 114. The second limiting groove 113 is provided on the side wall of the receiving cavity 110. The shape of the second limiting groove 113 is adapted to the shape of the second conductive element 300. The second conductive element 300 is disposed in the second limiting groove 113. The second limiting post 114 is provided on the inner wall of the second limiting groove 113. The second limiting post 114 extends in the front-back direction. The second conductive element 300 is provided with a second limiting hole 301 that extends in the front-back direction. The second limiting hole 301 cooperates with the second limiting post 114.
[0072] The third limiting structure is provided with a third limiting groove and a third limiting post. The third limiting groove is provided on the side wall of the receiving cavity 110. The shape of the third limiting groove is adapted to the shape of the third conductive element 400. The third conductive element 400 is provided in the third limiting groove. The third limiting post is provided on the inner wall of the third limiting groove. The third limiting post extends in the front-back direction. The third conductive element 400 is provided with a third limiting hole that extends in the front-back direction. The third limiting hole cooperates with the third limiting post.
[0073] The first limiting groove 111, the second limiting groove 113, and the third limiting groove are distributed at intervals along the left and right directions.
[0074] The front sidewall of the receiving cavity 110 is provided with a first front through hole 120, a second front through hole 130 and a third front through hole 140 that pass through from front to back. The positions of the first front through hole 120, the second front through hole 130 and the third front through hole 140 are staggered from each other in the vertical direction. The rear sidewall of the receiving cavity 110 is provided with a first rear through hole 121, a second rear through hole 131 and a third rear through hole 141 that pass through from front to back. The positions of the first rear through hole 121, the second rear through hole 131 and the third rear through hole 141 are staggered from each other in the vertical direction. The first rear through hole 121 is at the same height as the first front through hole 120, the second rear through hole 131 is at the same height as the second front through hole 130, and the third rear through hole 141 is at the same height as the third front through hole 140.
[0075] The first front through hole 120 and the first rear through hole 121 pass through the first limiting groove 111, the second front through hole 130 and the second rear through hole 131 pass through the second limiting groove 113, and the third front through hole 140 and the third rear through hole 141 pass through the third limiting groove.
[0076] The first conductive element 200 is provided with a first front conductor 210 and a first rear conductor 220; the second conductive element 300 is provided with a second front conductor 310 and a second rear conductor 320; and the third conductive element 400 is provided with a third front conductor 410 and a third rear conductor 420. The bottom end of the first front conductor 210 is bent and arched forward, and the bottom end of the first front conductor 210 extends from the first front through hole 120 in front of the insert plate 100. The bottom end of the first rear conductor 220 is bent and arched backward, and the bottom end of the first rear conductor 220 extends from the first rear through hole 121 in front of the insert plate 100. The second front conductor... The bottom end of body 310 is bent and arched forward. The bottom end of the second front conductor 310 extends from the second front through hole 130 in front of the insert plate 100. The bottom end of the second rear conductor 320 is bent and arched backward. The bottom end of the second rear conductor 320 extends from the second rear through hole 131 in front of the insert plate 100. The bottom end of the third front conductor 410 is bent and arched forward. The bottom end of the third front conductor 410 extends from the third front through hole 140 in front of the insert plate 100. The bottom end of the third rear conductor 420 is bent and arched backward. The third rear conductor 420 extends from the third rear through hole 141 in front of the insert plate 100.
[0077] Reference Figure 6 As shown, the electric track of this utility model is implemented in the following embodiments.
[0078] The power rail includes a rail socket as described in the above embodiments.
[0079] The electric track also includes a track assembly 500, which is provided with a track groove 510. The track groove 510 extends in the left and right direction. The side wall of the track groove 510 is provided with a first conductive strip 520, a second conductive strip 530 and a third conductive strip 540. The first conductive strip 520, the second conductive strip 530 and the third conductive strip 540 are staggered in the up and down direction.
[0080] When the insert plate 100 is inserted into the track groove 510 from top to bottom, the first conductive strip 520 contacts the first front conductor 210 or the first rear conductor 220, the second conductive strip 530 contacts the second front conductor 310 or the second rear conductor 320, and the third conductive strip 540 contacts the third front conductor 410 or the third rear conductor 420.
[0081] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A track socket, characterized in that, include: power strip; A first conductive element is disposed on the insert plate. The first conductive element has a first front conductor and a first rear conductor. The first front conductor extends out from the front of the insert plate, and the first rear conductor extends out from the rear of the insert plate. The first front conductor and the first rear conductor are located at the same height. A second conductive element is disposed on the insert plate. The second conductive element has a second front conductor and a second rear conductor. The second front conductor extends out from the front of the insert plate, and the second rear conductor extends out from the rear of the insert plate. The second front conductor and the second rear conductor are at the same height, and the second front conductor and the first front conductor are staggered in the vertical direction.
2. The track socket according to claim 1, characterized in that, The insert plate is provided with a receiving cavity. The front side wall of the receiving cavity is provided with a first front through hole and a second front through hole. The first front through hole and the second front through hole are staggered in the vertical direction. The rear side wall of the receiving cavity is provided with a first rear through hole and a second rear through hole. The first rear through hole and the first front through hole are located at the same height, and the second rear through hole and the second front through hole are located at the same height. The first conductive element and the second conductive element are disposed in the receiving cavity. The first front conductive element is disposed in the first front through hole, the first rear conductive element is disposed in the first rear through hole, the second front conductive element is disposed in the second front through hole, and the second rear conductive element is disposed in the second rear through hole.
3. The track socket according to claim 2, characterized in that, The receiving cavity is provided with a first limiting structure, which cooperates with the first conductive element to restrict the degree of freedom of the first conductive element in the receiving cavity. And / or, the receiving cavity is provided with a second limiting structure, which cooperates with the second conductive element to restrict the degree of freedom of the second conductive element in the receiving cavity.
4. The track socket according to claim 3, characterized in that, The first limiting structure includes a first limiting groove and a first limiting post. The shape of the first limiting groove matches the shape of the first conductive component. The first conductive component is provided with a first limiting hole, and the first limiting post is inserted into the first limiting hole. And / or, the second limiting structure includes a second limiting groove and a second limiting post, the shape of the second limiting groove matches the shape of the second conductive element, the second conductive element is provided with a second limiting hole, and the second limiting post is inserted into the second limiting hole.
5. The track socket according to claim 2, characterized in that, The insert plate includes: Front shell; The rear shell is connected to the rear side of the front shell, and the rear shell and the front shell together form the receiving cavity.
6. The track socket according to claim 1, characterized in that, The first front conductor and the first rear conductor are offset from each other to the left and right, and / or the second front conductor and the second rear conductor are offset from each other to the left and right.
7. The track socket according to claim 1, characterized in that, The track socket also includes: A third conductive element is disposed on the insert plate. The third conductive element has a third front conductor and a third rear conductor. The third front conductor extends out from the front of the insert plate, and the third rear conductor extends out from the rear of the insert plate. The third front conductor and the third rear conductor are at the same height. The third front conductor, the second front conductor, and the first front conductor are staggered from each other in the vertical direction.
8. The track socket according to claim 1, characterized in that, The bottom end of the first front conductor arches forward, and the bottom end of the first rear conductor arches backward; And / or, the bottom end of the second front conductor arches forward, and the bottom end of the second rear conductor arches backward.
9. An electric track, characterized in that, Includes the track socket as described in any one of claims 1 to 8.
10. The electric track according to claim 9, characterized in that, The electric rail also includes: The track assembly has a track groove extending to the left and right, and the side wall of the track groove has a first conductive strip and a second conductive strip that are staggered vertically. When the insert plate is inserted into the track groove, the first conductive strip abuts against the first front conductor or the first rear conductor, and the second conductive strip abuts against the second front conductor or the second rear conductor.