Power wire and conductor assembly
By introducing a slide rail structure and a stop portion into the bus clip connector, the complex assembly problem caused by the tight arrangement of terminals in the prior art is solved, and rapid terminal alignment and simplified assembly are achieved.
Patent Information
- Application Number
- CN202422264511.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The terminals of existing bus clip connectors are tightly arranged and difficult to make, resulting in complex assembly steps.
The first conductive sheet and the second conductive sheet are respectively provided with a slide rail structure and a stop portion. The precise alignment and assembly of the terminals are achieved through the docking of the slide rail structure, and the assembly process is simplified.
It realizes fast alignment and precise docking of terminals, simplifies assembly steps and improves production efficiency.
Smart Images

Figure CN223285298U_ABST
Abstract
Description
Technical Field
[0001] This application relates to connectors and cable assemblies, particularly bus-clamp-type power cables for use in servers / energy storage cabinets, etc. Background Art
[0002] Bus clamp connectors and cable assemblies are primarily used in electronic devices such as servers and energy storage cabinets. The head end is used to clamp onto a conductive plate, while the tail end connects to multiple cables for power transmission. The bus clamp connector used at the head end clamps onto the conductive plate using two opposing clamping terminals.
[0003] Generally speaking, the terminals of clip connectors are tightly packed, making them difficult to manufacture. When manufacturing the conductors of bus clip connectors, the terminals are typically formed on two conductive plates, with the terminals on each plate spaced relatively closely together. The two plates are then stacked so that the terminals on one plate fit within the spacing between the terminals on the other plate. Consequently, the current clip connector structure requires complex assembly steps.
[0004] In view of this, the applicant has conducted in-depth research on the above-mentioned existing technologies and applied scientific theories to try his best to solve the above-mentioned problems, which has become the goal of the applicant's improvement. Utility Model Content
[0005] The present application provides a power wire and a conductor assembly thereof, in particular, a power wire and a conductor assembly thereof having a guide rail junction for easy assembly.
[0006] The present application provides a conductor assembly for use in power lines, the conductor assembly comprising a first conductive sheet and a second conductive sheet. The first conductive sheet comprises a plurality of first terminals and a first slide rail structure, and the plurality of first terminals are arranged in parallel. The second conductive sheet comprises a plurality of second terminals and a second slide rail structure, and the plurality of second terminals are arranged in parallel. The first conductive sheet and the second conductive sheet are arranged in an overlapping manner, and the first slide rail structure and the second slide rail structure are in contact with each other to guide the first conductive sheet and the second conductive sheet to move relative to each other to a predetermined relative position. When the first conductive sheet and the second conductive sheet are located at the predetermined relative position, the plurality of first terminals and the plurality of second terminals are arranged in an interlaced manner.
[0007] In one embodiment of the present application, the first slide rail structure is folded back from one side of the first conductive sheet, and the second slide rail structure is formed on one side of the edge of the second conductive sheet.
[0008] In one embodiment of the present application, the second slide rail structure is folded back from one side of the second conductive sheet, and the first slide rail structure is formed on one side of the edge of the first conductive sheet.
[0009] In one embodiment of the present application, the first slide rail structure is a groove provided on the first conductive sheet, and the second slide rail structure is a tenon provided on the second conductive sheet.
[0010] In one embodiment of the present application, the second slide rail structure is a groove provided on the second conductive sheet, and the first slide rail structure is a tenon provided on the first conductive sheet.
[0011] In one embodiment of the present application, the first conductive sheet is provided with a first stop portion, and the edge of the second conductive sheet is provided with a second stop portion, and the first stop portion and the second stop portion stop each other to locate a predetermined relative position.
[0012] In one embodiment of the present application, the conductor assembly further includes at least one first wire welded to the first conductive sheet and at least one second wire welded to the second conductive sheet, and the number of the at least one first wire and the number of the at least one second wire are different.
[0013] The present application further provides a power cable, which includes two docking modules. Each docking module includes an insulating seat and a conductor assembly inserted into the insulating seat. Each insulating seat includes a body and a tongue. Each conductor assembly includes a first conductive sheet, a second conductive sheet, and a plurality of terminals, wherein the plurality of terminals are exposed on one side of the corresponding tongue. The plurality of terminals include a plurality of first terminals arranged on the first conductive sheet and a plurality of second terminals arranged on the second conductive sheet. The plurality of first terminals are arranged in parallel, and the plurality of second terminals are arranged in parallel. The first conductive sheet includes a first slide rail structure, and the second conductive sheet includes a second slide rail structure. The first conductive sheet and the second conductive sheet are arranged in superposition. The first slide rail structure and the second slide rail structure are in contact with each other to guide the first conductive sheet and the second conductive sheet to move relative to each other to a predetermined relative position. When the first conductive sheet and the second conductive sheet are in the predetermined relative position, the plurality of first terminals and the plurality of second terminals are arranged in an interlaced manner. The two bodies are connected and the two tongues are arranged at intervals so that the plurality of terminals of one docking module are arranged facing the plurality of terminals of the other docking module.
[0014] In one embodiment of the present application, in each conductor assembly, the first slide rail structure is folded back from one side of the first conductive sheet, and the second slide rail structure is formed on one side of the edge of the second conductive sheet.
[0015] In one embodiment of the present application, in each conductor assembly, the second slide rail structure is folded back from one side of the second conductive sheet, and the first slide rail structure is formed on one side of the edge of the first conductive sheet.
[0016] In one embodiment of the present application, in each conductor assembly, the first slide rail structure is a groove provided on the first conductive sheet, and the second slide rail structure is a tenon provided on the second conductive sheet.
[0017] In one embodiment of the present application, in each conductor assembly, the second slide rail structure is a groove provided on the second conductive sheet, and the first slide rail structure is a tenon provided on the first conductive sheet.
[0018] In one embodiment of the present application, in each conductor assembly, the first conductive sheet is provided with a first stop portion, and the edge of the second conductive sheet is provided with a second stop portion, and the first stop portion and the second stop portion stop each other to locate a predetermined relative position.
[0019] In one embodiment of the present application, each docking module includes at least one first wire welded to the first conductive sheet and at least one second wire welded to the second conductive sheet, and the number of the at least one first wire and the number of the at least one second wire are different.
[0020] The first conductive sheet and the second conductive sheet of the conductor assembly of the present application are respectively provided with a first slide rail structure and a second slide rail structure. The first conductive sheet and the second conductive sheet can be connected to each other by the first slide rail structure and the second slide rail structure for easy assembly. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 FIG. 1 is a perspective diagram of a power cable and its docking module according to the first embodiment of the present application.
[0022] Figure 2 This is a perspective exploded schematic diagram of a power cable and its docking module according to the first embodiment of the present application.
[0023] Figure 3 This is a schematic exploded perspective view of a conductor assembly of a power cable according to the first embodiment of the present application.
[0024] Figure 4 This is a longitudinal cross-sectional view of the power wire according to the first embodiment of the present application.
[0025] Figure 5 This is a transverse cross-sectional view of a conductor assembly of a power cable according to the first embodiment of the present application.
[0026] Figure 6 This is a schematic exploded perspective view of a conductor assembly according to the second embodiment of the present application.
[0027] Figure 7 This is a schematic three-dimensional diagram of a conductor assembly according to the second embodiment of the present application.
[0028] Figure 8 This is a transverse cross-sectional view of a conductor assembly according to the second embodiment of the present application.
[0029] Figure 9 This is a schematic exploded perspective view of a conductor assembly according to the third embodiment of the present application.
[0030] Figure 10It is a schematic three-dimensional diagram of a conductor assembly according to the third embodiment of the present application.
[0031] Figure 11 This is a longitudinal cross-sectional view of a conductor assembly according to the third embodiment of the present application.
[0032] Figure 12 This is a schematic exploded perspective view of a conductor assembly according to a fourth embodiment of the present application.
[0033] Figure 13 It is a schematic three-dimensional diagram of a conductor assembly according to the fourth embodiment of the present application.
[0034] Figure 14 This is a transverse cross-sectional view of a conductor assembly according to a fourth embodiment of the present application.
[0035] Description of reference numerals:
[0036] 1,1a: Docking module;
[0037] 10,10a: conductor assembly;
[0038] 11: Hook;
[0039] 20,20a: insulation seat;
[0040] 21,21a: Ontology;
[0041] 22,22a: tongue;
[0042] 31: first wire;
[0043] 32: second wire;
[0044] 100: first conductive sheet;
[0045] 101, 101a, 101b, 101c, 101d: first slide rail structure;
[0046] 102, 102a, 102b, 102c, 102d: first stopper;
[0047] 110: first terminal;
[0048] 200: second conductive sheet;
[0049] 201, 201a, 201b, 201c, 201d: second slide rail structure;
[0050] 202, 202a, 202b, 202c, 202d: second stopper;
[0051] 210: Second terminal. DETAILED DESCRIPTION
[0052] In the description of this application, it should be understood that the terms "front side", "rear side", "left side", "right side", "front end", "rear end", "end", "longitudinal", "lateral", "vertical", "top", "bottom", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description. They do not indicate or imply that the device or component referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a restriction on this application.
[0053] As used herein and not otherwise defined, the terms "substantially" and "approximately" are used to describe and describe small variations. When applied to an event or circumstance, the terms may include the exact moment at which the event or circumstance occurred, as well as the approximate point at which the event or circumstance occurred. For example, when applied to a numerical value, the terms may include a variation range of less than or equal to ±10% of the numerical value, such as less than or equal to ±5%, less than or equal to ±4%, less than or equal to ±3%, less than or equal to ±2%, less than or equal to ±1%, less than or equal to ±0.5%, less than or equal to ±0.1%, or less than or equal to ±0.05%.
[0054] The detailed description and technical contents of this application will be described below with reference to the accompanying drawings. However, the accompanying drawings are for illustrative purposes only and are not intended to limit this application.
[0055] Figure 1 A three-dimensional schematic diagram of a power cable docking module 1 according to the first embodiment of the present application. Figure 2 This is a perspective exploded schematic diagram of the power cable docking module 1 according to the first embodiment of the present application. Figure 3 FIG. 1 is a perspective exploded schematic diagram of a conductor assembly 10 of a power cable according to the first embodiment of the present application. Figure 4 This is a longitudinal cross-sectional view of the power wire according to the first embodiment of the present application. Figure 5 This is a transverse cross-sectional view of the conductor assembly of the power wire of the first embodiment of the present application. Figures 1 to 5 The first embodiment of the present application provides a power cable comprising two docking modules (1, 1a) (see Figure 4 The structures of the two docking modules (1, 1a) are mirror images of each other. Each docking module (1, 1a) includes an insulating seat (20, 20a) and a conductor assembly (10, 10a) inserted into the insulating seat (20, 20a). Each insulating seat (20, 20a) includes a body (21, 21a) and a tongue (22, 22a). The following text uses one of the docking modules 1 as an example to illustrate the structure of each docking module (1, 1a).
[0056] See Figure 1 and Figure 2The docking module 1 includes an insulating base 20 and a conductor assembly 10. Within the docking module 1, the insulating base 20 is hollow and includes a body 21 and a tongue 22. The conductor assembly 10 is inserted into the insulating base 20. In this embodiment, the conductor assembly 10 is provided with a hook 11 that engages the inner wall of the insulating base 20, thereby securing the conductor assembly 10 within the insulating base 20.
[0057] See Figure 2 One of the docking modules 1 and Figure 3 The conductor assembly 10 shown in the docking module 1 includes a first conductive sheet 100, a second conductive sheet 200, and a plurality of terminals. In this embodiment, the hook 11 is disposed on the first conductive sheet 100, but the present application is not limited thereto. The plurality of terminals extend parallel to the longitudinal direction of the conductor assembly 10 and are exposed on one side of the corresponding tongue portion 22. The plurality of terminals include a plurality of first terminals 110 disposed on the first conductive sheet 100 and a plurality of second terminals 210 disposed on the second conductive sheet 200. The plurality of first terminals 110 are arranged side by side on the first conductive sheet 100, and the plurality of second terminals 210 are arranged side by side on the second conductive sheet 200. The first conductive sheet 100 includes at least one first slide rail structure 101 and the second conductive sheet 200 includes at least one corresponding second slide rail structure 201. The first conductive sheet 100 and the second conductive sheet 200 are arranged in an overlapping manner. The first slide rail structure 101 and the second slide rail structure 201 are connected to each other to guide the first conductive sheet 100 and the second conductive sheet 200 to move relative to each other parallel to the plurality of first terminals 110 and the plurality of second terminals 210. Figure 2 As shown in the predetermined relative position, when the first conductive sheet 100 and the second conductive sheet 200 are located at the predetermined relative position, the plurality of first terminals 110 and the plurality of second terminals 210 are interspersed and arranged.
[0058] See Figures 3 to 5 In each conductor assembly 10 shown in this embodiment, the first conductive sheet 100 is provided with two first rail structures 101. The two first rail structures 101 are both disposed on the edge of the first conductive sheet 100 and are located oppositely on two sides of the plurality of first terminals 110. One of the first rail structures 101 is folded back from one side of the edge of the first conductive sheet 100, and the other first rail structure 101 is folded back from the opposite side of the edge of the first conductive sheet 100, forming two second rail structures 201 on the edge of the second conductive sheet 200. The two second rail structures 201 are located oppositely on two sides of the plurality of second terminals 210. Each first rail structure 101 is disposed parallel to the plurality of first terminals 110, and each second rail structure 201 is disposed parallel to the plurality of second terminals 210.
[0059] The first slide rail structure 101 and the second slide rail structure 201 are respectively formed on the first conductive sheet 100 and the second conductive sheet 200 by stamping. The first conductive sheet 100 and the second conductive sheet 200 can be easily manufactured and assembled by being connected to each other by the first slide rail structure 101 and the second slide rail structure 201 .
[0060] In each conductor assembly 10, a first stopper 102 is provided on the first conductive sheet 100, and a second stopper 202 is provided on the edge of the second conductive sheet 200. The first stopper 102 and the second stopper 202 stop each other longitudinally along the first and second conductive sheets 100, 200 to maintain a predetermined relative position. In this embodiment, the first stopper 102 is formed at one end of each first rail structure 101, while the second stopper 202 is formed on the edge of the second conductive sheet 200 by a protrusion corresponding to one end of each second rail structure 201.
[0061] The docking module 1 includes at least one first wire 31 soldered to the first conductive sheet 100 and at least one second wire 32 soldered to the second conductive sheet 200. The number of the at least one first wire 31 and the at least one second wire 32 differs. In this embodiment, the first conductive sheet 100 has two first wires 31 soldered to it, and the second conductive sheet 200 has two second wires 32 soldered to it.
[0062] See Figure 4 The two bodies (21, 21a) are connected and the two tongues (22, 22a) are spaced apart so that the multiple terminals of one docking module 1 and the multiple terminals of the other docking module 1a are arranged facing each other, and the second wires 32 of the two docking modules (1, 1a) are arranged facing each other.
[0063] Figure 6 It is a schematic exploded perspective view of a conductor assembly 10 according to the second embodiment of the present application. Figure 7 It is a schematic three-dimensional diagram of a conductor assembly 10 according to the second embodiment of the present application. Figure 8 This is a transverse cross-sectional view of the conductor assembly 10 according to the second embodiment of the present application. Figures 6 to 8A second embodiment of the present application provides a conductor assembly 10 for use with the aforementioned power wire and threaded through the aforementioned insulating base 20. In this embodiment, the conductor assembly 10 includes a first conductive sheet 100, a second conductive sheet 200, and a plurality of terminals, each of which is exposed on one side of a corresponding tongue portion 22. The plurality of terminals includes a plurality of first terminals 110 disposed on the first conductive sheet 100 and a plurality of second terminals 210 disposed on the second conductive sheet 200. The plurality of first terminals 110 and the plurality of second terminals 210 are arranged in parallel. The first conductive sheet 100 includes at least one first slide rail structure (101, 101a) and the second conductive sheet 200 includes at least one corresponding second slide rail structure (201, 201a). The first conductive sheet 100 and the second conductive sheet 200 are arranged in an overlapping manner. The first slide rail structure (101, 101a) and the second slide rail structure (201, 201a) are connected to guide the first conductive sheet 100 and the second conductive sheet 200 to move relative to each other parallel to the plurality of first terminals 110 and the plurality of second terminals 210 to a predetermined relative position. When the first conductive sheet 100 and the second conductive sheet 200 are located at the predetermined relative position, the plurality of first terminals 110 and the plurality of second terminals 210 are arranged in an interlaced manner. Therefore, the first conductive sheet 100 and the second conductive sheet 200 can be easily assembled by connecting the first slide rail structure (101, 101a) and the second slide rail structure (201, 201a).
[0064] In this embodiment, as in the aforementioned first embodiment, one of the first rail structures 101 is folded back from one side of the first conductive sheet 100, and a corresponding second rail structure 201 is formed on one side of the edge of the second conductive sheet 200. This embodiment differs from the first embodiment in that another second rail structure 201a is folded back from the other side of the second conductive sheet 200, and a corresponding second rail structure 101a is formed on one side of the edge of the first conductive sheet 100.
[0065] In this embodiment, the first conductive sheet 100 is provided with at least one first stopper (102a, 102b), and the edge of the second conductive sheet 200 is provided with at least one corresponding second stopper (202a, 202b). The first stopper (102a, 102b) and the second stopper (202a, 202b) stop each other to locate a predetermined relative position. In this embodiment, one end of the first slide rail structure 101 on the first conductive sheet 100 is partially bent to form the first stopper 102b to stop the second slide rail structure 201a formed at the edge of the second conductive sheet 200. The second stopper 202a on the second conductive sheet 200 is partially bent to stop the first slide rail structure 102a formed at the edge of the first conductive sheet 100.
[0066] In this embodiment, the conductor assembly 10 further includes at least one first wire 31 soldered to the first conductive sheet 100 and at least one second wire 32 soldered to the second conductive sheet 200. The number of the at least one first wire 31 and the at least one second wire 32 are different. In this embodiment, the first conductive sheet 100 is soldered to two first wires 31, and the second conductive sheet 200 is soldered to two second wires 32.
[0067] Figure 9 It is a schematic exploded perspective view of a conductor assembly 10 according to the third embodiment of the present application. Figure 10 It is a schematic three-dimensional diagram of a conductor assembly 10 according to the third embodiment of the present application. Figure 11 This is a longitudinal cross-sectional view of the conductor assembly 10 according to the third embodiment of the present application. Figures 9 to 11 The third embodiment of the present application provides a conductor assembly 10, which is used for the power wire as described above and is inserted into the insulating seat 20 as described above. In this embodiment, the conductor assembly 10 includes a first conductive sheet 100 and a second conductive sheet 200. The first conductive sheet 100 includes a plurality of first terminals 110 and a first slide rail structure 101, and the plurality of first terminals 110 are arranged in parallel. The second conductive sheet 200 includes a plurality of second terminals 210 and a second slide rail structure 201, and the plurality of second terminals 210 are arranged in parallel. The first conductive sheet 100 and the second conductive sheet 200 are arranged in superposition, and the first slide rail structure 101 and the second slide rail structure 201 are in contact with each other to guide the first conductive sheet 100 and the second conductive sheet 200 to move relative to each other parallel to the plurality of first terminals 110 and the plurality of second terminals 210 to a predetermined relative position. When the first conductive sheet 100 and the second conductive sheet 200 are located at the predetermined relative position, the plurality of first terminals 110 and the plurality of second terminals 210 are arranged in an interlaced manner.
[0068] The structure of this embodiment is substantially similar to that of the aforementioned second embodiment, and similarities are not further described. Based on the structure of the second embodiment, this embodiment further provides another form of first slide rail structure 101b. The yet another first slide rail structure 101b provided in this embodiment is a tenon provided on the first conductive sheet 100, and its corresponding second slide rail structure 201b is a groove provided on the second conductive sheet 200. Specifically, the aforementioned further provided first slide rail structure 101b is in the form of a blind groove.
[0069] In this embodiment, the first conductive sheet 100 is further provided with another type of first stop 102b. A corresponding second stop 202b is provided on the edge of the second conductive sheet 200. These first and second stop 102b mutually stop and maintain a predetermined relative position. In this embodiment, the inner edge of one end of the channel forms the aforementioned second stop 202b, while one side of the tenon forms the corresponding first stop 102b.
[0070] In this embodiment, the conductor assembly 10 further includes at least one first wire 31 soldered to the first conductive sheet 100 and at least one second wire 32 soldered to the second conductive sheet 200. The number of the at least one first wire 31 and the at least one second wire 32 are different. In this embodiment, two first wires 31 are soldered to the first conductive sheet 100, and two second wires 32 are soldered to the second conductive sheet 200.
[0071] Figure 12 It is a schematic exploded perspective view of a conductor assembly 10 according to a fourth embodiment of the present application. Figure 13 It is a schematic three-dimensional diagram of a conductor assembly 10 according to a fourth embodiment of the present application. Figure 14 FIG. 1 is a transverse cross-sectional view of a conductor assembly 10 according to a fourth embodiment of the present application. Figures 12 to 14 A fourth embodiment of the present application provides a conductor assembly 10 for use with the aforementioned power wire and threaded through the aforementioned insulating base 20. In this embodiment, the conductor assembly 10 includes a first conductive sheet 100, a second conductive sheet 200, and a plurality of terminals, each of which is exposed on one side of a corresponding tongue portion 22. The plurality of terminals includes a plurality of first terminals 110 disposed on the first conductive sheet 100 and a plurality of second terminals 210 disposed on the second conductive sheet 200. The plurality of first terminals 110 and the plurality of second terminals 210 are arranged in parallel. The first conductive sheet 100 includes a first slide rail structure 101, and the second conductive sheet 200 includes a second slide rail structure 201. The first conductive sheet 100 and the second conductive sheet 200 are arranged in an overlapping manner. The first slide rail structure 101 and the second slide rail structure 201 are connected to guide the first conductive sheet 100 and the second conductive sheet 200 to move relative to each other parallel to the plurality of first terminals 110 and the plurality of second terminals 210 to a predetermined relative position. When the first conductive sheet 100 and the second conductive sheet 200 are in the predetermined relative position, the plurality of first terminals 110 and the plurality of second terminals 210 are arranged in an interlaced manner. Therefore, the first conductive sheet 100 and the second conductive sheet 200 can be easily assembled by connecting the first slide rail structure 101 and the second slide rail structure 201.
[0072] The structure of this embodiment is roughly the same as that of the aforementioned second embodiment, and the similarities are not repeated here. Based on the structure of the second embodiment, this embodiment further provides another form of first slide rail structure 101c. The first slide rail structure 101c provided in this embodiment is a groove provided on the first conductive sheet 100, and its corresponding second slide rail structure 201c is a tenon provided on the second conductive sheet 200. Specifically, the aforementioned first slide rail structure 101c further provided is in the form of a through groove. In addition, another second slide rail structure 201d is provided in this embodiment as a groove provided on the second conductive sheet 200, and its corresponding first slide rail structure 101d is a tenon provided on the first conductive sheet 100. The aforementioned second slide rail structure 201d is in the form of a through groove.
[0073] In this embodiment, the first conductive sheet 100 is further provided with another type of first stopper (102c, 102d), and the edge of the second conductive sheet 200 is provided with a corresponding second stopper (202c, 202d). The first stopper (102c, 102d) and the second stopper (202c, 202d) mutually stop to maintain a predetermined relative position. In this embodiment, the inner edge of one end of the slot on the first conductive sheet 100 forms the first stopper 102c, and one side of the corresponding tenon forms the corresponding second stopper 202c. The inner edge of one end of the slot on the second conductive sheet 200 forms the second stopper 202d, and one side of the corresponding tenon forms the corresponding first stopper 102d.
[0074] In this embodiment, the conductor assembly 10 further includes at least one first wire 31 soldered to the first conductive sheet 100 and at least one second wire 32 soldered to the second conductive sheet 200. The number of the at least one first wire 31 and the at least one second wire 32 are different. In this embodiment, two first wires 31 are soldered to the first conductive sheet 100, and two second wires 32 are soldered to the second conductive sheet 200.
[0075] The conductor assembly 10 of the present application has a first conductive sheet 100 and a second conductive sheet 200 respectively provided with a first slide rail structure (101, 101a, 101b, 101c, 101d) and a second slide rail structure (201, 201a, 201b, 201c, 201d), and the first conductive sheet 100 and the second conductive sheet 200 can be connected to each other by the first slide rail structure (101, 101a, 101b, 101c, 101d) and the second slide rail structure (201, 201a, 201b, 201c, 201d) for easy assembly. The first slide rail structure (101, 101a, 101b, 101c, 101d) and the second slide rail structure (201, 201a, 201b, 201c, 201d) can be respectively formed on the first conductive sheet 100 and the second conductive sheet 200 by stamping to facilitate manufacturing.
[0076] The above description is only a preferred embodiment of the present application and is not intended to limit the patent scope of the present application. Other equivalent variations that apply the patent spirit of the present application should all fall within the patent scope of the present application.
Claims
1. A conductor assembly for power wire, characterized in that: The conductor assembly comprises: A first conductive sheet includes a plurality of first terminals and a first slide rail structure, wherein the plurality of first terminals are arranged in parallel; and The second conductive sheet includes a plurality of second terminals and a second slide rail structure, and the plurality of second terminals are arranged in parallel. The first conductive sheet and the second conductive sheet are arranged in an overlapping manner, and the first slide rail structure and the second slide rail structure are connected to each other to guide the first conductive sheet and the second conductive sheet to move relative to each other to a predetermined relative position; When the first conductive sheet and the second conductive sheet are located at the predetermined relative position, the plurality of first terminals and the plurality of second terminals are arranged in an interlaced manner.
2. The conductor assembly according to claim 1, wherein The first slide rail structure is folded back from one side of the first conductive sheet, and one side of an edge of the second conductive sheet forms the second slide rail structure.
3. The conductor assembly according to claim 1, wherein The second slide rail structure is folded back from one side of the second conductive sheet, and one side of an edge of the first conductive sheet forms the first slide rail structure.
4. The conductor assembly according to claim 1, wherein The first slide rail structure is a groove provided on the first conductive sheet, and the second slide rail structure is a tenon provided on the second conductive sheet.
5. The conductor assembly according to claim 1, wherein The second slide rail structure is a groove provided on the second conductive sheet, and the first slide rail structure is a tenon provided on the first conductive sheet.
6. The conductor assembly according to claim 1, wherein The first conductive sheet is provided with a first stop portion, and an edge of the second conductive sheet is provided with a second stop portion. The first stop portion and the second stop portion stop each other to locate the predetermined relative position.
7. The conductor assembly according to claim 1, wherein The method further includes welding at least one first wire to the first conductive sheet and welding at least one second wire to the second conductive sheet, wherein the number of the at least one first wire and the number of the at least one second wire are different.
8. A power wire, characterized in that: Include: Two docking modules, each of which comprises an insulating seat and a conductor assembly passing through the insulating seat, Each of the insulating seats comprises a body and a tongue; Each of the conductor assemblies includes a first conductive sheet, a second conductive sheet, and a plurality of terminals, wherein the plurality of terminals are exposed on one side of the corresponding tongue portion, and the plurality of terminals include a plurality of first terminals disposed on the first conductive sheet and a plurality of second terminals disposed on the second conductive sheet, the plurality of first terminals being arranged in parallel, and the plurality of second terminals being arranged in parallel, the first conductive sheet including a first slide rail structure, and the second conductive sheet including a second slide rail structure, the first conductive sheet and the second conductive sheet being arranged in an overlapping manner, the first slide rail structure and the second slide rail structure being in contact with each other to guide the first conductive sheet and the second conductive sheet to move relative to each other to a predetermined relative position, and when the first conductive sheet and the second conductive sheet are located at the predetermined relative position, the plurality of first terminals and the plurality of second terminals are arranged in an interlaced manner; The two bodies are connected and the two tongues are spaced apart so that the multiple terminals of one docking module and the multiple terminals of the other docking module are arranged facing each other.
9. The power wire according to claim 8, wherein: In each of the conductor components, the first slide rail structure is folded back from one side of the first conductive sheet, and one side of an edge of the second conductive sheet forms the second slide rail structure.
10. The power wire according to claim 8, wherein In each of the conductor components, the second slide rail structure is folded back from one side of the second conductive sheet, and one side of an edge of the first conductive sheet forms the first slide rail structure.
11. The power wire according to claim 8, wherein In each of the conductor assemblies, the first slide rail structure is a groove provided on the first conductive sheet, and the second slide rail structure is a tenon provided on the second conductive sheet.
12. The power wire according to claim 8, wherein In each of the conductor assemblies, the second slide rail structure is a groove provided on the second conductive sheet, and the first slide rail structure is a tenon provided on the first conductive sheet.
13. The power wire according to claim 8, wherein In each of the conductor components, the first conductive sheet is provided with a first stop portion, and the edge of the second conductive sheet is provided with a second stop portion, and the first stop portion and the second stop portion stop each other to locate the predetermined relative position.
14. The power wire according to claim 8, wherein Each of the docking modules includes at least one first wire welded to the first conductive sheet and at least one second wire welded to the second conductive sheet, and the number of the at least one first wire and the number of the at least one second wire are different.