Heavy-current cable connector
By designing a high-current cable connector with multiple wiring seats, the existing current connector has solved the problems of complex structure, cumbersome assembly and low heat dissipation efficiency, and simple assembly and efficient heat dissipation of cable connectors are achieved.
Patent Information
- Application Number
- CN202421906183.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-08-07
AI Technical Summary
The existing current connector has complex structure and cumbersome assembly. The current impedance at the connection between the adapter plate and the metal conductor is high, which affects the current characteristics and is limited in space use, so the heat dissipation efficiency is not high.
A high current cable connector is designed, including an insulating body, a positive electrode conductor and a negative electrode conductor. The positive electrode conductor and an negative electrode conductor each have multiple wiring seats, and the wiring seats are located on both sides of the conductor, which facilitates the installation and space utilization of the cable and improves heat dissipation efficiency.
The structure of the cable connector is simplified and the assembly is rapid, reducing the demand for cable usage space and improving the heat dissipation efficiency at the cable connection.
Smart Images

Figure CN223052537U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of connectors, and more particularly to a high-current cable connector with a simple structure and easy assembly. Background Art
[0002] With the development of industrial technology, various electronic devices have become an indispensable part of residential, school, company, factory and other places. In order to achieve the purpose of quickly connecting and quickly disassembling different electronic components and performing power transmission or signal transmission, various connectors are also widely used in electronic devices. Among them, the current connector is one of the main connectors, which is used for power supply or power input. Generally, the overlapping terminals are electrically connected to the positive and negative wires respectively to transmit power. The existing current connector is to weld the positive and negative wires to different adapter plates respectively, and then connect them to the main metal conductors by welding, clamping or riveting respectively, so as to form electrical connections with the overlapping terminals respectively.
[0003] However, this method not only has a complex overall structure, difficult part manufacturing, and cumbersome assembly steps, but also causes too high current impedance at the connection between the adapter plate and the metal conductor, which affects the current characteristics. In addition, when a single current connector needs to assemble multiple positive wires and multiple negative wires at the same time to increase the current, the assembly personnel need to spend more time for assembly, and the connection between the adapter plate and the metal conductor is prone to overheating due to too high current impedance. Moreover, most of the positive and negative wires of the existing current connector extend in the opposite direction towards the overlapping terminal, so the space utilization is limited, and the bundling method of the positive and negative wires is also prone to heat accumulation at the welding point, which is not conducive to heat dissipation. Therefore, how to design a current connector with a simple structure, easy assembly, effective use of space configuration and good heat dissipation efficiency is an urgent problem to be solved.
[0004] In view of this, the applicant has specifically studied the above-mentioned deficiencies of the existing technology, and cooperated with the application of theory, and tried his best to solve the above problems, which has become the goal of the applicant's improvement. Summary of the Utility Model
[0005] The main purpose of this application is to make the high-current cable connector easy to manufacture, and can assemble the cables conveniently and quickly, while reducing the use space of each cable and effectively improving the heat dissipation efficiency at the connection of each cable.
[0006] To achieve the above object, the present application provides a high-current cable connector for connecting a plurality of positive cables and a plurality of negative cables. The high-current cable connector includes an insulating body, a positive conductor, and a negative conductor. The insulating body defines a first direction, a second direction, and a third direction. The first direction and the second direction are respectively perpendicular to the third direction. The positive conductor includes a connected first buried section and a first exposed section. The first buried section is disposed within the insulating body, and the first exposed section extends along the third direction and is exposed outside the insulating body. The positive conductor has a plurality of positive connection terminals for connecting the respective positive cables. A part of the plurality of positive connection terminals is located on one side of the positive conductor, causing the corresponding positive cables to extend along the first direction, and another part of the plurality of positive connection terminals is located on the other side of the positive conductor, causing the corresponding positive cables to extend along the second direction. The negative conductor includes a second buried section and a second exposed section. The second buried section is disposed within the insulating body, and the second exposed section extends along the third direction and is exposed outside the insulating body. The negative conductor has a plurality of negative connection terminals for connecting the respective negative cables. A part of the plurality of negative connection terminals is located on one side of the negative conductor, causing the corresponding negative cables to extend along the first direction, and another part of the plurality of negative connection terminals is located on the other side of the negative conductor, causing the corresponding negative cables to extend along the second direction.
[0007] In an embodiment of the present application, the number of the plurality of positive connection terminals is the same as the number of the plurality of negative connection terminals.
[0008] In an embodiment of the present application, the positive connection terminal is located at the end of the first exposed section, causing the corresponding positive cable to extend along the third direction, and the negative connection terminal is located at the end of the second exposed section, causing the corresponding negative cable to extend along the third direction.
[0009] In an embodiment of the present application, the second exposed section is arranged in a staggered and parallel configuration with the first exposed section.
[0010] In an embodiment of the present application, the first direction and the second direction are opposite directions and are parallel to each other.
[0011] In an embodiment of the present application, each positive connection terminal is sequentially and staggeredly located on different sides of the positive conductor, and each negative connection terminal is sequentially and staggeredly located on different sides of the negative conductor.
[0012] In an embodiment of the present application, each positive connection terminal and each negative connection terminal are in an arc shape, a semi-circular shape, a C shape, a V shape, or a C shape.
[0013] In one embodiment of the present application, the first exposed segment has a pair of first bending portions, and each first bending portion bends and extends from the first exposed segment toward the first direction and the second direction respectively. A part of the plurality of positive terminal bases is located on the first bending portion extending toward the first direction, so that the corresponding positive cables extend along the first direction, and another part of the plurality of positive terminal bases is located on the first bending portion extending toward the second direction, so that the corresponding positive cables extend along the second direction.
[0014] In one embodiment of the present application, the second exposed segment has a pair of second bending portions, and each second bending portion bends and extends from the second exposed segment toward the first direction and the second direction respectively. A part of the plurality of negative terminal bases is located on the second bending portion extending toward the first direction, so that the corresponding negative cables extend along the first direction, and another part of the plurality of negative terminal bases is located on the second bending portion extending toward the second direction, so that the corresponding negative cables extend along the second direction.
[0015] In one embodiment of the present application, the insulating body has a pair of plugging and clamping plates that are parallel to each other. The first buried segment includes a first connecting portion and a plurality of positive terminals. The first connecting portion is connected between the first exposed segment and each positive terminal, and each positive terminal is arranged corresponding to one of the plugging and clamping plates. The second buried segment includes a second connecting portion and a plurality of negative terminals. The second connecting portion is connected between the second exposed segment and each negative terminal, and each negative terminal is arranged corresponding to the other plugging and clamping plate.
[0016] In the high-current cable connector of the present application, by providing a plurality of positive terminal bases on the first exposed segment of the positive conductor, and providing a plurality of negative terminal bases on the second exposed segment of the negative conductor, and each positive terminal base is respectively arranged on different sides of the first exposed segment, and each negative terminal base is respectively arranged on different sides of the second exposed segment, the structure of the high-current cable connector is convenient for production and manufacturing, and can conveniently and quickly install a plurality of positive cables on each positive terminal base respectively and install a plurality of negative cables on each negative terminal base respectively. At the same time, the use space of each positive cable and each negative cable can be reduced, thereby improving the heat dissipation efficiency at the connection of each positive cable and each negative cable. Description of the Drawings
[0017] Figure 1 It is a three-dimensional external view of the first embodiment of the present application.
[0018] Figure 2 It is a three-dimensional external view of the first embodiment of the present application after installing the cables.
[0019] Figure 3 It is a side view of the first embodiment of the present application after installing the cables.
[0020] Figure 4 Cross-sectional view of the positive electrode conductor and the negative electrode conductor in the first embodiment of this application.
[0021] Figure 5 Schematic diagram of the usage state in the first embodiment of this application.
[0022] Figure 6 Three-dimensional external view of the second embodiment of this application.
[0023] Figure 7 Three-dimensional external view of the second embodiment of this application after installing the cable.
[0024] Figure 8 Side view of the second embodiment of this application after installing the cable.
[0025] Figure 9 Cross-sectional view of the positive electrode conductor and the negative electrode conductor in the second embodiment of this application.
[0026] Explanation of reference numerals:
[0027] 10: Insulating body;
[0028] 11: Main body;
[0029] 12: Plug-in part;
[0030] 121: Plug-in clamping plate;
[0031] 20: Positive electrode conductor;
[0032] 21: First buried section;
[0033] 211: First connection part;
[0034] 212: Positive terminal;
[0035] 22: First exposed section;
[0036] 221: Positive terminal block;
[0037] 222: First bending part;
[0038] 30: Negative electrode conductor;
[0039] 31: Second buried section;
[0040] 311: Second connection part;
[0041] 312: Negative terminal;
[0042] 32: Second exposed section;
[0043] 321: Negative terminal block;
[0044] 322: Second bending part;
[0045] A: Current connector;
[0046] B: Circuit board;
[0047] D1: First direction;
[0048] D2: Second direction;
[0049] D3: Third direction;
[0050] NC: Negative cable;
[0051] PC: Positive cable. Detailed implementation
[0052] In the description of the present application, it should be understood that the orientation or positional relationship indicated by terms such as "front side", "rear side", "left side", "right side", "front end", "rear end", "end", "longitudinal", "transverse", "vertical", "top", "bottom", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, and does 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 construed as a limiting condition of the present application.
[0053] As used herein, terms such as "first", "second", "third", "fourth", and "fifth" describe various components, components, regions, levels / or parts, and these components, components, regions, levels / or parts should not be limited by these terms. These terms are only used to distinguish one element, component, region, level, or part from another. Unless the context clearly indicates otherwise, the terms "first", "second", "third", "fourth", and "fifth" used herein do not imply an order or sequence.
[0054] Used herein and not otherwise defined, terms such as "substantially" and "about" are used to describe and account for small variations. When combined with an event or situation, these terms can include the exact moment when the event or situation occurs, as well as the approximate point close to when the event or situation occurs. For example, when combined with a numerical value, these terms can include a variation range 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%.
[0055] The detailed description and technical content of the present application will be described below in conjunction with the drawings. However, the attached drawings are only for illustrative purposes and are not used to limit the present application.
[0056] This application provides a high-current cable connector for connecting multiple positive cables PC and multiple negative cables NC. Please refer to Figure 5 As shown, the high-current cable connector in this embodiment is used for the busbar installed in the data center, so as to provide a high-current power output for the current connector A to plug in through the series connection of multiple positive cables PC and the series connection of multiple negative cables NC. However, this application is not limited thereto. Please then refer to Figures 1 to 4 As shown, the first embodiment of the high-current cable connector of this application includes an insulating body 10, a positive conductor 20, and a negative conductor 30.
[0057] The insulating body 10 is made of an insulating material such as plastic. This application does not particularly limit its specific material, as long as it is an insulating material. The insulating body 10 includes a connected main body 11 and a plugging part 12. The insulating body 10 defines a first direction D1, a second direction D2, and a third direction D3. The first direction D1 and the second direction D2 are substantially perpendicular to the third direction D3 respectively. The plugging part 12 extends out from the main body 11 in the reverse direction along the third direction D3. In this embodiment, the first direction D1 and the second direction D2 are opposite directions and parallel to each other. However, this application is not limited thereto, as long as the first direction D1 and the second direction D2 are different directions and are both substantially perpendicular to the third direction D3. More specifically, taking the attached drawings as an example, the first direction D1 in this embodiment faces upward, the second direction D2 faces downward, and the third direction D3 faces backward. However, this application is not limited thereto.
[0058] In this embodiment, the positive conductor 20 is made of a metal with good conductivity. However, this application is not limited thereto, and the positive conductor 20 can also be made of other materials with good conductivity. The positive conductor 20 includes a connected first buried section 21 and a first exposed section 22. The first buried section 21 is arranged inside the insulating body 10. In this embodiment, the first buried section 21 is inserted and fixed inside the insulating body 10, but the insulating body 10 can also be coated and fixed outside the first buried section 21 by the way of in-mold embedding. The first exposed section 22 extends along the third direction D3 and is exposed outside the insulating body 10. The positive conductor 20 has a plurality of positive connection seats 221 for connecting the respective positive cables PC. A part of the plurality of positive connection seats 221 is located on one side of the positive conductor 20, so that the respective positive cables PC connected correspondingly extend along the first direction D1. Another part of the plurality of positive connection seats 221 is located on the other different side of the positive conductor 20, so that the respective positive cables PC connected correspondingly extend along the second direction D2.
[0059] In this embodiment, the negative electrode conductor 30 is made of a metal with good electrical conductivity. However, the present application is not limited thereto, and the negative electrode conductor 30 can also be made of other materials with good electrical conductivity. The negative electrode conductor 30 includes a connected second buried section 31 and a second exposed section 32. The second buried section 31 is disposed within the insulating body 10. In this embodiment, the second exposed section 32 is inserted and fixed within the insulating body 10, but the insulating body 10 can also be coated and fixed outside the second buried section 31 by means of insert molding. The second exposed section 32 extends along the third direction D3 and is exposed outside the insulating body 10. The negative electrode conductor 30 has a plurality of negative electrode terminals 321 for connecting the respective negative electrode cables NC. A part of the plurality of negative electrode terminals 321 is located on one side of the negative electrode conductor 30, such that the respective negative electrode cables NC connected correspondingly extend along the first direction D1. Another part of the plurality of negative electrode terminals 321 is located on another different side of the negative electrode conductor 30, such that the respective negative electrode cables NC connected correspondingly extend along the second direction D2.
[0060] Thus, by respectively disposing the respective positive electrode terminals 221 on different sides of the first exposed section 22 and respectively disposing the respective negative electrode terminals 321 on different sides of the second exposed section 32, the structure of the high-current cable connector of the present application is convenient for production and manufacturing, and can conveniently and quickly mount the respective positive electrode cables PC on the respective positive electrode terminals 221 and mount the respective negative electrode cables NC on the respective negative electrode terminals 321. Therefore, the use space of the respective positive electrode cables PC and the respective negative electrode cables NC can be reduced simultaneously, and further the heat dissipation efficiency at the connection points of the respective positive electrode cables PC and the respective negative electrode cables NC can be improved.
[0061] Furthermore, the second exposed section 32 is arranged in parallel with the first exposed section 22 in an alternating manner. Specifically, through the alternating parallel arrangement of the two, the first exposed section 22 and the second exposed section 32 can be offset, so that spaces are formed on the upper, lower, left, and right sides of the two, respectively. Therefore, there is no interference between each positive terminal block 221 and each negative terminal block 321. Also, the number of positive terminal blocks 221 is the same as the number of negative terminal blocks 321, that is, the number of the positive cables PC is the same as the number of the negative cables NC, so as to ensure the overall current load and circuit. Each positive terminal block 221 is sequentially and alternately located on different sides of the positive conductor 20, and each negative terminal block 321 is also sequentially and alternately located on different sides of the negative conductor 30, so that the positive cables PC and the negative cables NC extend in the first direction D1 or the second direction D2. Each positive terminal block 221 and each negative terminal block 321 are arc-shaped, semi-circular, C-shaped, V-shaped, or U-shaped. In this embodiment, each positive terminal block 221 and each negative terminal block 321 are C-shaped, which is convenient for connecting the corresponding positive cables PC and negative cables NC. Specifically, taking the positive terminal block 221 and the positive cable PC as an example, the user only needs to place the overlapping end of the positive cable PC in the corresponding positive terminal block 221, and then clamp the positive terminal block 221 with pliers to deform it and clamp the overlapping end of the positive cable PC. The same applies to the negative terminal block 321 and the negative cable NC, so it will not be elaborated here.
[0062] In this embodiment, the first exposed section 22 has a pair of first bending portions 222, and the second exposed section 32 has a pair of second bending portions 322, but the present application is not limited thereto. Each first bending portion 222 extends by bending from the first exposed section 22 in the first direction D1 and the second direction D2, that is, each first bending portion 222 in this embodiment extends by bending from the first exposed section 22 upward and downward, so that the cross-section of the first exposed section 22 is generally in a lightning shape, as Figure 4 shown. A part of the plurality of positive terminal blocks 221 is located on the first bending portion 222 extending in the first direction D1 (upward), so that the corresponding positive cables PC connected thereto extend along the first direction D1. Another part of the plurality of positive terminal blocks 221 is located on the first bending portion 222 extending in the second direction D2 (downward), so that the corresponding positive cables PC connected thereto extend along the second direction D2. Each second bending portion 322 extends by bending from the second exposed section 32 in the first direction D1 and the second direction D2, that is, each second bending portion 322 in this embodiment extends by bending from the second exposed section 32 upward and downward, so that the cross-section of the second exposed section 32 is generally in a lightning shape, as Figure 4As shown. A part of the plurality of negative terminal connectors 321 is located on the second bent portion 322 extending in the first direction D1 (upward), so that the respective negative cables NC connected correspondingly extend along the first direction D1. Another part of the plurality of negative terminal connectors 321 is located on the second bent portion 322 extending in the second direction D2 (downward), so that the respective negative cables NC connected correspondingly extend along the second direction D2.
[0063] Thereby, the positive conductor 20 and the negative conductor 30 in the present application can be respectively formed into an integral component from the metal sheet through processing processes such as stamping / cutting and bending, etc., so as to ensure that the conductivity or resistance value of the overall component will not have too large a deviation, and there is no need for additional assembly, welding or riveting. Therefore, the production process of the positive conductor 20 and the negative conductor 30 is simple and fast. Of course, the present application is not limited to the above. For example, when the first direction D1 or the second direction D2 is parallel to the metal sheet of the first exposed section 22 or the second exposed section 32, there is no need to additionally bend to form the first bent portion 222 or the second bent portion 322, and the respective positive terminal connectors 221 or the respective negative terminal connectors 321 can be directly bent.
[0064] Refer to again Figures 1 to 3 As shown, in this embodiment, the positive terminal connector 221 is located at the end of the first exposed section 22, so that the positive cable PC connected correspondingly to the positive terminal connector 221 extends along the third direction D3, and the negative terminal connector 321 is located at the end of the second exposed section 32, so that the negative cable NC connected correspondingly to the negative terminal connector 321 extends along the third direction D3. Accordingly, in this embodiment, in addition to extending in the first direction D1 or the second direction D2, each of the positive cables PC and each of the negative cables NC also has one positive cable PC and one negative cable NC extending in the third direction D3, so that the respective positive cables PC and the respective negative cables NC form a T-shaped divergent structure, thus being able to meet the wiring requirements in multiple directions.
[0065] Please then refer to Figures 6 to 9 As shown, in the second embodiment of the present application, the main difference from the first embodiment is that the positive terminal connector 221 and the negative terminal connector 321 are not respectively provided at the ends of the first exposed section 22 and the second exposed section 32. Specifically, in the second embodiment, the respective positive terminal connectors 221 are sequentially and alternately arranged on the respective first bent portions 222, and the respective negative terminal connectors 321 are sequentially and alternately arranged on the respective second bent portions 322. Therefore, the respective positive cables PC and the respective negative cables NC all extend in the first direction D1 or the second direction D2 and are suitable for use when the configuration space in the third direction D3 is limited.
[0066] Further elaboration is as follows. In this embodiment, the insertion part 12 of the insulating body 10 has a pair of insertion clamping plates 121 that are parallel to each other. The first buried section 21 includes a first connection part 211 and a plurality of positive terminals 212. The first connection part 211 is connected between the first exposed section 22 and each positive terminal 212, and each positive terminal 212 is arranged corresponding to one of the insertion clamping plates 121. The second buried section 31 includes a second connection part 311 and a plurality of negative terminals 312. The second connection part 311 is connected between the second exposed section 32 and each negative terminal 312, and each negative terminal 312 is arranged corresponding to the other insertion clamping plate 121. Specifically, each positive terminal 212 extends obliquely from the first connection part 211 towards each negative terminal 312, and each negative terminal 312 also extends obliquely from the second connection part 311 towards each positive terminal 212. Therefore, referring back to Figure 5 As shown, when the insertion part 12 of the insulating body 10 is inserted into the circuit board B, each insertion clamping plate 121 is respectively clamped and fixed on the opposite side surfaces of the circuit board B, and each positive terminal 212 and each negative terminal 312 are respectively elastically clamped on the opposite side surfaces of the circuit board B to form an electrical lap joint.
[0067] For the high-current cable connector of the present application, by providing a plurality of positive connection seats 221 on the first exposed section 22 of the positive conductor 20, and providing a plurality of negative connection seats 321 on the second exposed section 32 of the negative conductor 30, and each positive connection seat 221 is respectively arranged on different sides of the first exposed section 22, and each negative connection seat 321 is respectively arranged on different sides of the second exposed section 32, the structure of the high-current cable connector of the present application is convenient for production and manufacturing, and can conveniently and quickly install the respective positive cables PC on each positive connection seat 221 and install the respective negative cables NC on each negative connection seat 321. Therefore, the use space of the respective positive cables PC and the respective negative cables NC can be reduced simultaneously, thereby improving the heat dissipation efficiency at the connection points of the respective positive cables PC and the respective negative cables NC.
[0068] In summary, the foregoing content disclosed in the present application is to enable those with ordinary knowledge in the art to clearly understand the technical content of the present application and implement it accordingly, rather than intending to limit the patent protection scope of the present application. In addition, there are of course various other embodiments not listed in the present application. Without departing from the spirit and essence of the present application, those skilled in the art should be able to evolve various corresponding changes and deformations according to the present application, but these corresponding changes and deformations should all fall within the protection scope of the patent applied for in the present application.
Claims
1. A high current cable connector, characterized in that: For connecting multiple positive cables and multiple negative cables, the high current cable connector includes: The insulating body is defined with a first direction, a second direction and a third direction, wherein the first direction and the second direction are respectively perpendicular to the third direction; A positive conductor, comprising a first buried section and a first exposed section connected to each other, wherein the first buried section is disposed in the insulating body, and the first exposed section extends along the third direction and is exposed outside the insulating body, the positive conductor having a plurality of positive terminal blocks for connecting the positive cables, wherein a portion of the plurality of positive terminal blocks is located on one side of the positive conductor so that the corresponding positive cables extend along the first direction, and another portion of the plurality of positive terminal blocks is located on the other side of the positive conductor so that the corresponding positive cables extend along the second direction; and A negative conductor comprises a second buried section and a second exposed section connected to each other, wherein the second buried section is arranged in the insulating body, and the second exposed section extends along the third direction and is exposed outside the insulating body, and the negative conductor has a plurality of negative terminal blocks for connecting the negative cables, wherein a portion of the plurality of negative terminal blocks are located on one side of the negative conductor so that the corresponding negative cables extend along the first direction, and another portion of the plurality of negative terminal blocks are located on the other side of the negative conductor so that the corresponding negative cables extend along the second direction.
2. The high current cable connector according to claim 1, characterized in that: The number of the plurality of positive electrode terminals is the same as the number of the plurality of negative electrode terminals.
3. The high current cable connector according to claim 1, characterized in that: The positive terminal block is located at the end of the first exposed section so that the corresponding positive cable extends along the third direction, wherein the negative terminal block is located at the end of the second exposed section so that the corresponding negative cable extends along the third direction.
4. The high current cable connector according to claim 1, characterized in that: The second exposed sections are arranged in an alternating manner and in parallel with the first exposed sections.
5. The high current cable connector according to claim 1, characterized in that: The first direction and the second direction are opposite directions and parallel to each other.
6. The high current cable connector according to claim 1, characterized in that: The positive electrode terminals are sequentially and staggeredly located on two different sides of the positive electrode conductor, and the negative electrode terminals are sequentially and staggeredly located on two different sides of the negative electrode conductor.
7. The high current cable connector according to claim 1, characterized in that: Each of the positive electrode terminal blocks and each of the negative electrode terminal blocks is arc-shaped, semicircular, C-shaped, V-shaped or C-shaped.
8. The high current cable connector according to claim 1, characterized in that: The first exposed section has a pair of first bending portions, each of which bends and extends from the first exposed section toward the first direction and the second direction, respectively, wherein a portion of the plurality of positive terminal blocks are located on the first bending portion extending toward the first direction so that the corresponding positive cables extend along the first direction, and another portion of the plurality of positive terminal blocks are located on the first bending portion extending toward the second direction so that the corresponding positive cables extend along the second direction.
9. The high current cable connector according to claim 1, characterized in that: The second exposed section has a pair of second bending portions, each of the second bending portions bends and extends from the second exposed section toward the first direction and the second direction, respectively, wherein a portion of the multiple negative terminal blocks are located on the second bending portions extending toward the first direction so that the corresponding negative cables extend along the first direction, and another portion of the multiple negative terminal blocks are located on the second bending portions extending toward the second direction so that the corresponding negative cables extend along the second direction.
10. The high current cable connector according to claim 1, characterized in that: The insulating body has a pair of plug-in clamping plates parallel to each other, the first buried section includes a first connecting portion and a plurality of positive terminals, the first connecting portion is connected between the first exposed section and each of the positive terminals, and each of the positive terminals corresponds to one of the plug-in clamping plates, the second buried section includes a second connecting portion and a plurality of negative terminals, the second connecting portion is connected between the second exposed section and each of the negative terminals, and each of the negative terminals corresponds to another of the plug-in clamping plates.