Conductive terminal assembly
By dividing connector terminals into separate components for parallel arrangement, the method addresses material waste and cost issues in manufacturing complex terminals, ensuring efficient and reliable electrical connections.
Patent Information
- Application Number
- CN202422342825.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-23
AI Technical Summary
In the prior art, when the connector terminals are discharged based on a two-dimensional expansion diagram, facing terminals with complex shapes and irregularities, a large number of blank areas appear on the material belt, resulting in waste of materials and increased costs.
Separate the conductive components into pin components and connector components, set the conductive pins and connectors in parallel, fix the splicing heads by laser welding and resistance welding, and combine insulated connectors to optimize the space layout of the material tape and improve material utilization.
It realizes the compact arrangement of conductive components, saves materials, reduces production costs, and ensures the stability and reliability of electrical connections, adapts to different installation scenarios, and improves the safety and flexibility of the circuit.
Smart Images

Figure CN223109267U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of connectors, and particularly relates to a conductive terminal assembly. Background Art
[0002] With the rapid development of the automotive industry, connectors, as an essential part of vehicle electrical systems, their performance, reliability, and cost-effectiveness have become the focus of manufacturers; connectors, also known as connectors, plugs, and sockets, are used to transmit current or signals. Connectors usually consist of terminals and conductive circuits, etc. Among them, metal stamping is a key link in the manufacturing of connector terminals, and its material utilization rate directly relates to production costs and resource consumption.
[0003] In traditional metal stamping processes, the strip layout method of connector terminals is often based on the two-dimensional development drawing of terminal parts. When dealing with terminals with regular shapes and simple structures, this layout method can still maintain a relatively high material utilization rate. However, with the increasing complexity of automotive electrical systems, the shapes and structures of connector terminals are also becoming increasingly diverse, and there are a large number of terminal parts with complex, irregular, or even special geometric features. After these complex terminals are developed in a two-dimensional plane, their shapes often exhibit asymmetrical, irregular, or polygonal features, etc. Most of the existing layout methods adopt a "one-size-fits-all" strategy, that is, the entire terminal part is directly cut and stamped on the strip according to its two-dimensional development drawing. However, the existing layout methods lack flexible optimization for shape characteristics. When facing irregularly shaped terminals, there are likely to be a large number of blank areas in the strip that cannot be effectively utilized, that is, the so-called "scrap areas", resulting in material waste and increased costs. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a conductive terminal assembly to solve the problem that when the connector terminal is stamped and formed by the strip layout method based on the two-dimensional development drawing in the prior art, in the face of complex and irregular connector terminals, it cannot be arranged flexibly, resulting in a large number of blank areas on the strip, thereby causing material waste and increased costs.
[0005] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] A conductive terminal assembly, comprising:
[0007] A first conductive component, the first conductive component includes a first pin component and a first joint component. One end of the first pin component forms a first conductive pin, and the other end forms a first splicing joint; one end of the first joint component forms a first conductive joint, and the other end forms a second splicing joint; the first splicing joint is fixed to and electrically connected to the second splicing joint;
[0008] The second conductive component, which includes a second pin component and a second joint component. One end of the second pin component forms a second conductive pin, and the other end forms a third splicing joint; one end of the second joint component forms a second conductive joint, and the other end forms a fourth splicing joint; the third splicing joint is fixed to and electrically connected to the fourth splicing joint;
[0009] The first conductive pin and the second conductive pin are arranged in parallel, and the first conductive joint and the second conductive joint are arranged in parallel.
[0010] According to the above technical means, both the first conductive component and the second conductive component are structures with irregular and asymmetric shapes. By separating the first conductive component into two parts, namely the first pin component and the first joint component, and the second conductive component into two parts, namely the second pin component and the second joint component, and with the first conductive pin and the second conductive pin being parallel, and the first conductive joint and the second conductive joint being parallel, when the first conductive component and the second conductive component are stamped and manufactured on the tape, their two-dimensional developed diagrams can be flexibly and compactly arranged. This not only optimizes the spatial layout of the tape but also increases the utilization rate of the tape, thereby achieving the purpose of saving materials and reducing production costs. At the same time, after stamping and forming, through the fixation and electrical connection between the first splicing joint and the second splicing joint, and the fixation and electrical connection between the third splicing joint and the fourth splicing joint, the stability and reliability of the electrical connection are ensured, guaranteeing the smooth transmission of current or signals between the first conductive component and the second conductive component. The structure is simple and the assembly is convenient, providing strong support for the miniaturization, lightweight and cost control of electronic products.
[0011] Further, it further includes a third conductive component and a fourth conductive component; one end of the third conductive component forms a third conductive pin, and the other end forms a third conductive joint; one end of the fourth conductive component forms a fourth conductive pin, and the other end forms a fourth conductive joint; the third conductive pin and the fourth conductive pin are arranged in parallel, and the third conductive joint and the fourth conductive joint are arranged in parallel.
[0012] According to the above technical means, through the combined action of the third conductive component and the fourth conductive component with the first conductive component and the second conductive component, a centralized connection point is provided for multiple circuits, simplifying the overall structure, enabling the terminal group to have a higher degree of modularity to be flexibly configured and expanded according to actual usage requirements, meeting different electrical connection needs, improving the overall flexibility, facilitating later maintenance and upgrading, and with the third conductive pin and the fourth conductive pin being parallel and the third conductive joint and the fourth conductive joint being parallel, when the third conductive component and the fourth conductive component are stamped and manufactured on the tape, their models can be compactly arranged, and the parallel layout saves space occupancy, ensuring the stability and reliability of the electrical connection.
[0013] Further, the first conductive pin, the second conductive pin, the third conductive pin, and the fourth conductive pin are arranged in sequence.
[0014] According to the above technical means, by arranging the first conductive pin, the second conductive pin, the third conductive pin, and the fourth conductive pin in sequence, not only the compactness and efficiency of the circuit layout are improved, and the interference and risk of incorrect connection caused by the crossing of each conductive pin are avoided, but also when stamping and manufacturing, the models of the first conductive pin, the second conductive pin, the third conductive pin, and the fourth conductive pin can be flexibly and compactly arranged on the strip, reducing the waste of blank areas, saving materials, and reducing production costs.
[0015] Further, the first conductive joint and the second conductive joint are arranged deviating from the third conductive joint and the fourth conductive joint.
[0016] According to the above technical means, the first conductive joint and the second conductive joint are arranged in a way that deviates from the third conductive joint and the fourth conductive joint, which not only avoids the potential interference or short - circuit risk of the third conductive joint and the fourth conductive joint to them, improves the safety and stability of the circuit, but also can adapt to different installation scenarios, with high flexibility and easy installation.
[0017] Further, the first splicing joint and the second splicing joint are butted against each other and fixedly connected by laser welding, and the third splicing joint and the fourth splicing joint are butted against each other and fixedly connected by laser welding.
[0018] According to the above technical means, laser welding, with its advantages of high precision, low heat - affected zone, high quality, strong flexibility, high efficiency and speed, as well as environmental protection and energy conservation, ensures the tightness and firmness of the connection between the first splicing joint and the second splicing joint, and between the third splicing joint and the fourth splicing joint, guarantees the accuracy and aesthetics of the connection position, and improves the stability and durability of the overall circuit.
[0019] Further, the first splicing joint and the second splicing joint overlap and are fixedly connected by resistance welding, and the third splicing joint and the fourth splicing joint overlap and are fixedly connected by resistance welding.
[0020] According to the above technical means, resistance welding realizes the melting and bonding between the first splicing joint and the second splicing joint, and between the third splicing joint and the fourth splicing joint through the resistance heat generated by the current passing through the contact surface. It has the advantages of high welding quality, low heat affected zone, fast welding speed, high degree of automation, environmental protection and energy saving, and wide application range, ensuring the tightness and firmness of the connection between the first splicing joint and the second splicing joint, and between the third splicing joint and the fourth splicing joint. Moreover, the lap joint method not only increases the contact area of welding, improves the stability and reliability of the connection, but also makes the welding process more rapid and efficient.
[0021] Furthermore, an insulating connector is provided between the first conductive component and the second conductive component, and the first conductive component and the second conductive component are connected to each other through the insulating connector.
[0022] According to the above technical means, connecting the first conductive component and the second conductive component through the insulating connector not only prevents the first conductive component and the second conductive component from cross - contacting and causing short - circuit and electrical interference phenomena, ensures that there is no current passing between the first conductive component and the second conductive component, enables the normal transmission of current or signals by the first conductive component and the second conductive component, but also connects the first conductive component and the second conductive component into a whole, with firm connection and convenient installation.
[0023] Furthermore, an insulating connector is provided between the third conductive component and the fourth conductive component, and the third conductive component and the fourth conductive component are connected to each other through the insulating connector.
[0024] According to the above technical means, connecting the third conductive component and the fourth conductive component through the insulating connector not only prevents the third conductive component and the fourth conductive component from cross - contacting and causing short - circuit and electrical interference phenomena, ensures that there is no current passing between the third conductive component and the fourth conductive component, enables the normal transmission of current or signals by the third conductive component and the fourth conductive component, but also connects the third conductive component and the fourth conductive component into a whole, with firm connection and convenient installation.
[0025] Furthermore, an insulating connector is provided between the second conductive component and the third conductive component, and the second conductive component and the third conductive component are connected to each other through the insulating connector.
[0026] According to the above technical means, connecting the second conductive component and the third conductive component through the insulating connector enables the first conductive component, the second conductive component, the third conductive component and the fourth conductive component to be connected in sequence into a whole. It not only has a firm connection and is convenient for installation, but also prevents the cross - contact of each conductive component from causing short - circuit and electrical interference phenomena, ensuring the normal transmission of current or signals.
[0027] Furthermore, a plurality of positioning holes are distributed on the first conductive component, the second conductive component, the third conductive component and the fourth conductive component, and each of the positioning holes on the first conductive component, the second conductive component, the third conductive component and the fourth conductive component is distributed along the length direction of the first conductive component, the second conductive component, the third conductive component and the fourth conductive component, respectively.
[0028] According to the above-mentioned technical means, during installation, the first conductive component, the second conductive component, the third conductive component and the fourth conductive component can be accurately aligned and fixed on the shell through the positioning holes, avoiding poor connection or performance degradation due to position deviation. At the same time, the distribution of the positioning holes along the length direction also enhances the overall stability of the terminal group when subjected to force, reduces the risk of loosening or damage due to vibration or impact, and ensures the overall performance and reliability of the circuit system.
[0029] Beneficial effects achieved by the utility model:
[0030] In the utility model, both the first conductive component and the second conductive component are structures of irregular and asymmetrical shapes. By separating the first conductive component into a first pin component and a first connector component, and separating the second conductive component into a second pin component and a second connector component, and the first conductive pin and the second conductive pin are parallel, and the first conductive connector and the second conductive connector are parallel, so that when the first conductive component and the second conductive component are stamped and manufactured on the material strip, their models can be flexibly and compactly arranged, which not only optimizes the spatial layout of the material strip, but also increases the utilization rate of the material strip, thereby achieving the purpose of saving materials and reducing production costs. At the same time, after stamping and forming, the stability and reliability of the electrical connection are ensured through the fixed and conductive connection between the first splicing joint and the second splicing joint, and the fixed and conductive connection between the third splicing joint and the fourth splicing joint, which ensures the smooth and unimpeded transmission of current or signals between the first conductive component and the second conductive component. The structure is simple and easy to assemble, which provides strong support for the miniaturization, lightweight and cost control of electronic products. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Figure 1 It is a three-dimensional axial side view of the utility model as a whole;
[0032] Figure 2 It is a structural schematic diagram of the first splicing joint and the second splicing joint of the utility model being connected relative to each other;
[0033] Figure 3 It is a structural schematic diagram of the overlapped first splicing joint and the second splicing joint of the utility model;
[0034] Figure 4 The utility model is a two-dimensional layout layout Figure 1 ;
[0035] Figure 5 For the two-dimensional unfolded layout of the utility model Figure 2 .
[0036] Wherein, 1 - the first conductive component; 11 - the first conductive pin; 12 - the first splicing joint; 13 - the first conductive joint; 14 - the second splicing joint; 2 - the second conductive component; 21 - the second conductive pin; 22 - the third splicing joint; 23 - the second conductive joint; 24 - the fourth splicing joint; 3 - the third conductive component; 31 - the third conductive pin; 32 - the third conductive joint; 4 - the fourth conductive component; 41 - the fourth conductive pin; 42 - the fourth conductive joint; 5 - the insulating connector; 6 - the positioning hole.
[0037] The accompanying drawings are only for illustrative purposes and should not be construed as limiting the patent. To better illustrate the utility model, some components in the accompanying drawings may be omitted, enlarged or reduced, which do not represent the dimensions of the actual product. For those skilled in the art, it is understandable that some well-known structures and their descriptions in the accompanying drawings may be omitted. The same or similar reference numerals correspond to the same or similar components. The terms describing the positional relationship in the accompanying drawings are only for illustrative purposes and should not be construed as limiting the patent. Detailed implementation manners
[0038] The following will illustrate the implementation manners of the utility model with reference to the accompanying drawings and preferred embodiments. Those skilled in the art can easily understand the other advantages and effects of the utility model from the content disclosed in this specification. The utility model can also be implemented or applied through other different specific implementation manners. Various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of the utility model. It should be understood that the preferred embodiments are only for illustrating the utility model rather than limiting the protection scope of the utility model.
[0039] It should be noted that the diagrams provided in the following embodiments only illustrate the basic concept of the utility model in a schematic manner. Therefore, only the components related to the utility model are shown in the diagrams, rather than being drawn according to the number, shape and size of the components in actual implementation. The type, number and proportion of each component in actual implementation can be arbitrarily changed, and the component layout type may also be more complex.
[0040] In the embodiments of the present application, unless otherwise clearly specified and limited, the term "connection" should be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or integrated; it can be directly connected or indirectly connected through an intermediate medium.
[0041] In the embodiments of the present application, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "comprising a..." does not exclude the presence of additional identical elements in the process, method, article or device comprising such element.
[0042] The technical solution of the present utility model will be described in detail below with reference to specific drawings.
[0043] This embodiment relates to a conductive terminal assembly, as Figure 1 and Figure 2 shown, a conductive terminal assembly, comprising: a first conductive component 1, the first conductive component 1 includes a first pin component and a first joint component, one end of the first pin component forms a first conductive pin 11, and the other end forms a first splicing joint 12; one end of the first joint component forms a first conductive joint 13, and the other end forms a second splicing joint 14; the first splicing joint 12 is fixed to and electrically connected to the second splicing joint 14; a second conductive component 2, the second conductive component 2 includes a second pin component and a second joint component, one end of the second pin component forms a second conductive pin 21, and the other end forms a third splicing joint 22; one end of the second joint component forms a second conductive joint 23, and the other end forms a fourth splicing joint 24; the third splicing joint 22 is fixed to and electrically connected to the fourth splicing joint 24; the first conductive pin 11 and the second conductive pin 21 are arranged in parallel, and the first conductive joint 13 and the second conductive joint 23 are arranged in parallel; further, as a preferred embodiment, the first conductive pin 11, the second conductive pin 21, the third conductive pin 31 and the fourth conductive pin 41 are arranged in sequence; the first conductive joint 13 and the second conductive joint 23 are arranged offset from the third conductive joint 32 and the fourth conductive joint 42.
[0044] In this embodiment, efficient and flexible circuit connection is achieved through the first conductive component 1, the second conductive component 2, the third conductive component 3, and the fourth conductive component 4. Among them, the first conductive component 1 and the second conductive component 2 are stably conductively connected through the first splicing joint 12 and the second splicing joint 14, and the third splicing joint 22 and the fourth splicing joint 24 respectively. At the same time, the first conductive pin 11 and the second conductive pin 21, and the first conductive joint 13 and the second conductive joint 23 are arranged in parallel to ensure the synchronization and stability of signal or current transmission. In addition, the introduced third conductive component 3 and fourth conductive component 4 further expand the connection ability and application range of the overall terminal group, provide a centralized connection point for multiple circuits, simplify the overall structure, make the overall terminal group have a higher degree of modularity to be flexibly configured and expanded according to actual usage requirements, meet different electrical connection needs, and the first conductive pin 11, the second conductive pin 21, the third conductive pin 31, and the fourth conductive pin 41 are arranged in parallel in sequence, and the third conductive joint 32 and the fourth conductive joint 42 also adopt a parallel design to form an orderly and compact connection layout. In particular, by setting the first conductive joint 13 and the second conductive joint 23 offset from the third conductive joint 32 and the fourth conductive joint 42, not only the risk of mutual interference during circuit connection is avoided, but also different installation scenarios can be adapted, with high flexibility, improved reliability and safety of the overall connection, simplified circuit layout, improved assembly efficiency, and wide application range;
[0045] As Figure 1 shown, due to the offset setting of the first conductive joint 13 and the second conductive joint 23, this embodiment has an irregular and asymmetric shape structure. Before stamping and forming, the two-dimensional development drawing of the conductive terminal component in the present invention needs to be arranged on the strip, as Figure 4 shown, in a layout method, the two-dimensional development drawing of the conductive terminal component in the present invention is directly arranged on the strip, where the first pin component and the first joint component of the first conductive component 1, and the second pin component and the second joint component of the second conductive component 2 are all in a stably connected state. Although this overall layout method can be integrally formed to improve production efficiency, there are a large number of blank areas on the strip that cannot be utilized, resulting in material waste and increased costs; as Figure 5As shown, another arrangement method is to arrange the two-dimensional expansion diagram of the conductive terminal assembly in the utility model on the material strip, wherein the first pin assembly and the first connector assembly of the first conductive assembly 1, the second pin assembly and the second connector assembly of the second conductive assembly 2 are all in a separated state, so that when arranging the materials, the first connector assembly and the second connector assembly can be compactly distributed with the first pin assembly, the second pin assembly, the third conductive assembly 3 and the fourth conductive assembly 4, reducing the existence of the "waste area" of the material strip, maximizing the utilization of the material strip, improving the utilization rate of the material strip, saving materials and reducing production costs.
[0046] Further, as a preferred embodiment, the first splicing joint 12 is connected to the second splicing joint 14 and is fixedly connected by laser welding, and the third splicing joint 22 is connected to the fourth splicing joint 24 and is fixedly connected by laser welding; Figure 2 As shown, this embodiment uses laser welding to firmly connect the first splicing joint 12 and the second splicing joint 14, and the third splicing joint 22 and the fourth splicing joint 24, respectively, with high precision, fast connection speed, high tightness and firmness of connection, and good quality, thereby ensuring the accuracy and aesthetics of the connection position and improving the stability and durability of the overall circuit.
[0047] Further, as a preferred embodiment, the first splice 12 and the second splice 14 are overlapped and fixedly connected by resistance welding, and the third splice 22 and the fourth splice 24 are overlapped and fixedly connected by resistance welding; Figure 3 As shown, this embodiment adopts resistance welding to firmly connect the first splicing joint 12 with the second splicing joint 14, and the third splicing joint 22 with the fourth splicing joint 24, respectively, with high precision, fast connection speed, high tightness and firmness of connection, and good quality, thereby ensuring the accuracy and aesthetics of the connection position and improving the stability and durability of the overall circuit.
[0048] In this embodiment, an insulating connector 5 is provided between the first conductive component 1 and the second conductive component 2, and the first conductive component 1 and the second conductive component 2 are connected to each other through the insulating connector 5; an insulating connector 5 is provided between the third conductive component 3 and the fourth conductive component 4, and the third conductive component 3 and the fourth conductive component 4 are connected to each other through the insulating connector 5; an insulating connector 5 is provided between the second conductive component 2 and the third conductive component 3, and the second conductive component 2 and the third conductive component 3 are connected to each other through the insulating connector 5.
[0049] like Figure 1 As shown, in this embodiment, a first conductive component 1, a second conductive component 2, a third conductive component 3 and a fourth conductive component 4 are sequentially connected to form a whole through a plurality of insulating connectors 5, which not only provides a firm connection and facilitates installation, but also prevents short circuits and electrical interference caused by fork contact of the conductive components, thereby ensuring the normal transmission of current or signals.
[0050] In this embodiment, a number of positioning holes 6 are distributed on the first conductive component 1, the second conductive component 2, the third conductive component 3, and the fourth conductive component 4. The positioning holes 6 on the first conductive component 1, the second conductive component 2, the third conductive component 3, and the fourth conductive component 4 are respectively distributed along the length directions of the first conductive component 1, the second conductive component 2, the third conductive component 3, and the fourth conductive component 4.
[0051] As Figures 1 - 3 shown, during the installation of this embodiment, the first conductive component 1, the second conductive component 2, the third conductive component 3, and the fourth conductive component 4 can be accurately aligned and fixed on the housing through the corresponding positioning holes 6, avoiding poor connection or performance degradation caused by position deviation. At the same time, the distribution of the positioning holes 6 along the length direction also enhances the overall stability of the terminal group when stressed, reducing the risk of loosening or damage caused by vibration or impact, and ensuring the overall performance and reliability of the circuit system.
[0052] The serial numbers of the embodiments of the present application above are only for description and do not represent the superiority or inferiority of the embodiments. The above is only the preferred embodiment of the present application and does not limit the patent scope of the present application. Any equivalent structural or equivalent process transformation made by using the description and drawings of the present application, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present application.
Claims
1. A conductive terminal assembly, characterized in that, include: A first conductive component (1), the first conductive component (1) comprising a first pin component and a first connector component, the first pin component having a first conductive pin (11) at one end and a first connector (12) at the other end; the first connector component having a first conductive connector (13) at one end and a second connector (14) at the other end; the first connector (12) and the second connector (14) being fixed and conductively connected to each other; A second conductive component (2), the second conductive component (2) comprising a second pin component and a second connector component, the second pin component having a second conductive pin (21) at one end and a third connector (22) at the other end; the second connector component having a second conductive connector (23) at one end and a fourth connector (24) at the other end; the third connector (22) and the fourth connector (24) being fixed and conductively connected to each other; The first conductive pin (11) and the second conductive pin (21) are arranged in parallel, and the first conductive connector (13) and the second conductive connector (23) are arranged in parallel.
2. The conductive terminal assembly according to claim 1, wherein, The invention also comprises a third conductive component (3) and a fourth conductive component (4); a third conductive pin (31) is formed at one end of the third conductive component (3), and a third conductive connector (32) is formed at the other end; a fourth conductive pin (41) is formed at one end of the fourth conductive component (4), and a fourth conductive connector (42) is formed at the other end; the third conductive pin (31) and the fourth conductive pin (41) are arranged in parallel, and the third conductive connector (32) and the fourth conductive connector (42) are arranged in parallel.
3. A conductive terminal assembly according to claim 2, characterized in that, The first conductive pin (11), the second conductive pin (21), the third conductive pin (31) and the fourth conductive pin (41) are arranged in sequence.
4. A conductive terminal assembly according to claim 3, wherein, The first conductive joint (13) and the second conductive joint (23) are arranged away from the third conductive joint (32) and the fourth conductive joint (42).
5. A conductive terminal assembly according to claim 1, characterized in that, The first splicing joint (12) and the second splicing joint (14) are butted against each other and fixedly connected by laser welding, and the third splicing joint (22) and the fourth splicing joint (24) are butted against each other and fixedly connected by laser welding.
6. The conductive terminal assembly according to claim 1, characterized in that, The first splicing joint (12) and the second splicing joint (14) are overlapped and fixedly connected by resistance welding, and the third splicing joint (22) and the fourth splicing joint (24) are overlapped and fixedly connected by resistance welding.
7. A conductive terminal assembly according to claim 3, wherein, An insulating connector (5) is provided between the first conductive component (1) and the second conductive component (2); the first conductive component (1) and the second conductive component (2) are connected to each other via the insulating connector (5).
8. A conductive terminal assembly according to claim 7, characterized in that, An insulating connector (5) is provided between the third conductive component (3) and the fourth conductive component (4), and the third conductive component (3) and the fourth conductive component (4) are connected to each other via the insulating connector (5).
9. The conductive terminal assembly according to claim 8, wherein An insulating connector (5) is provided between the second conductive component (2) and the third conductive component (3), and the second conductive component (2) and the third conductive component (3) are connected to each other through the insulating connector (5).
10. A conductive terminal assembly according to claim 2, characterized in that, A plurality of positioning holes (6) are distributed on the first conductive component (1), the second conductive component (2), the third conductive component (3) and the fourth conductive component (4), and the positioning holes (6) on the first conductive component (1), the second conductive component (2), the third conductive component (3) and the fourth conductive component (4) are respectively distributed along the length directions of the first conductive component (1), the second conductive component (2), the third conductive component (3) and the fourth conductive component (4).