connector
Patent Information
- Application Number
- CN202521581095.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-28
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-07-28
AI Technical Summary
[0005]本实用新型实施例提供一种连接器,旨在解决现有技术在制成有着多道折弯异形的整体短接片结构时,工艺较为复杂、费时费力的技术问题
[0024] In the connector of this utility model embodiment, the powder metallurgy shorting piece is made by powder metallurgy process. The powder metallurgy shorting piece includes a substrate and multiple shorting structures disposed on the substrate and interconnected with each other. The shorting structures protrude toward the corresponding insulating parts. The multiple shorting structures are connected to multiple grounding terminals. The powder metallurgy process uses metal powder as material, which is formed by molding and then sintering. It can more simply, time-savingly and labor-savingly produce an integral shorting piece structure with protruding shorting structures, realize the shorting of multiple grounding terminals, ensure that the connector is not affected by external signal interference, and effectively solve the problem in the prior art that the material thickness of the hardware sheet is limited, making it impossible to directly produce an integral shorting piece structure with multiple bends and irregular shapes.
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Figure CN224721325U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of connector technology, and in particular relates to a connector. Background Technology
[0002] Connectors are primarily used to connect network devices and mechanical equipment for data, signals, and power. Through their two-end interfaces, connectors enable the interconnection of circuits between different devices or different parts of the same device. By facilitating this connection, connectors simplify the layout of wiring between devices, optimize the spatial structure of equipment, and offer advantages such as compact size, convenience, ease of maintenance, and easy upgrades.
[0003] In the design of high-speed connector products, multiple grounding sections are often required to shield against signal interference. Therefore, multiple terminal grounding pins need to be interconnected to ensure that the signal is not affected by external interference.
[0004] Connector products typically achieve grounding shorting through shorting tabs. These shorting tabs are generally made of metal sheets such as copper, iron, or stainless steel. Due to the thickness limitations of these metal sheets, they cannot be directly made into an integral structure with multiple bends and irregular shapes. Instead, they must be divided into thin components according to the material thickness and then welded together. This process is relatively complex, time-consuming, and labor-intensive. Utility Model Content
[0005] This utility model provides a connector that aims to solve the technical problem that the existing technology has a complex, time-consuming and labor-intensive process when manufacturing an integral shorting piece structure with multiple bends and irregular shapes.
[0006] This utility model is implemented as follows: a connector, comprising:
[0007] Two insulating components that are positioned opposite each other and spaced apart;
[0008] A plurality of connection terminals disposed on the two insulating members, the plurality of connection terminals including a plurality of signal terminals and a plurality of ground terminals; and
[0009] Two shorting pieces made of powder metallurgy material are disposed between two insulating components and face the two insulating components respectively.
[0010] The powder metallurgy material shorting piece includes a substrate and a plurality of shorting structures disposed on the substrate and interconnected with each other. The shorting structures protrude toward the corresponding insulating member, and the plurality of shorting structures are connected to the plurality of grounding terminals.
[0011] Furthermore, the two powder metallurgy material shorting pieces are arranged opposite each other and in close contact.
[0012] Furthermore, the plurality of said connecting terminals are evenly arranged on the two said insulating members;
[0013] In this configuration, one grounding terminal is alternately arranged with a predetermined number of signal terminals.
[0014] Furthermore, the powder metallurgy material shorting piece also includes a connecting layer disposed on the substrate, a plurality of the shorting structures are disposed on the connecting layer, and the connecting layer is configured to cooperate with the inner side of the insulating member.
[0015] Furthermore, the insulating component is provided with a plurality of clearance holes corresponding to the plurality of short-circuit structures, and the grounding terminal is connected to the short-circuit structure through the clearance holes.
[0016] Furthermore, the shorting structure includes a plurality of shorting portions spaced apart along the width direction of the substrate, and all of the plurality of shorting portions are in contact with the grounding terminal;
[0017] The uppermost shorting portion protrudes from the top of the insulating member, and the lowermost shorting portion protrudes from the bottom of the insulating member.
[0018] Furthermore, the clearance hole includes a first hole and a second hole spaced apart along the width direction of the insulating member. The two short-circuit portions located within the coverage area of the insulating member correspond to the first hole and the second hole, respectively, and are respectively connected to the corresponding grounding terminal through the first hole and the second hole.
[0019] Furthermore, the insulating member is provided with a plurality of mating portions on the side facing the powder metallurgy material shorting piece, which are spaced apart along the length direction of the insulating member. The mating portions are embedded between two adjacent shorting portions located within the coverage area of the insulating member and in the width direction of the insulating member.
[0020] Furthermore, the bottom of the insulating component is provided with a first positioning part and a first positioning hole spaced apart, and the top two ends are respectively provided with a second positioning part and a second positioning hole;
[0021] The first positioning portion, the first positioning hole, the second positioning portion, and the second positioning hole of one insulating component are respectively fitted and engaged with the first positioning hole, the first positioning post, the second positioning hole, and the second positioning post of another insulating component.
[0022] Furthermore, the top of the insulating member is provided with a plurality of mounting holes spaced apart along its length direction, and the side of the insulating member opposite to the powder metallurgy material short connector is provided with a plurality of mounting grooves corresponding to the plurality of mounting holes and extending along the width direction of the insulating member, and the plurality of connecting terminals are respectively inserted into the plurality of mounting grooves after passing through the plurality of mounting holes.
[0023] A limiting part is provided below the mounting hole corresponding to the grounding terminal, and a limiting hole is provided on the grounding terminal, with the limiting part embedded in the limiting hole.
[0024] In the connector of this utility model embodiment, the powder metallurgy shorting piece is made by powder metallurgy process. The powder metallurgy shorting piece includes a substrate and multiple shorting structures disposed on the substrate and interconnected with each other. The shorting structures protrude toward the corresponding insulating parts. The multiple shorting structures are connected to multiple grounding terminals. The powder metallurgy process uses metal powder as material, which is formed by molding and then sintering. It can more simply, time-savingly and labor-savingly produce an integral shorting piece structure with protruding shorting structures, realize the shorting of multiple grounding terminals, ensure that the connector is not affected by external signal interference, and effectively solve the problem in the prior art that the material thickness of the hardware sheet is limited, making it impossible to directly produce an integral shorting piece structure with multiple bends and irregular shapes. Attached Figure Description
[0025] Figure 1 This is a perspective view of the connector according to an embodiment of the present utility model;
[0026] Figure 2 This is a three-dimensional disassembly diagram of the connector according to an embodiment of the present utility model;
[0027] Figure 3 This is a schematic diagram of the assembly of the insulating component and the connecting terminal according to an embodiment of the present utility model;
[0028] Figure 4 This is a perspective view of the insulating component according to an embodiment of the present utility model;
[0029] Figure 5 This is another perspective view of the insulating component according to an embodiment of the present utility model;
[0030] Figure 6 This is a three-dimensional schematic diagram of a powder metallurgy material shorting piece according to an embodiment of the present invention.
[0031] Explanation of key component symbols:
[0032] Powder metallurgy material shorting piece-10; substrate-11; shorting structure-12; shorting part-121; connecting layer-13; groove-131; insulating part-20; mounting hole-21; mounting groove-22; clearance hole-23; first hole-231; second hole-232; mating part-24; first positioning part-25; first positioning hole-26; second positioning part-27; second positioning hole-28; limiting part-29; upper edge-201; lower edge-202; connecting terminal-30; signal terminal-31; grounding terminal-32; limiting hole-321; connector-100. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model. Furthermore, it should be understood that the specific embodiments described herein are merely for explaining this utility model and are not intended to limit this utility model.
[0034] In the description of this utility model, it should be understood that the orientation or positional relationship indicated in the description of direction and positional relationship is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing this utility model and simplifying the description, and is not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0035] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0036] The following disclosure provides numerous different embodiments or examples for implementing various structures of the present invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples; such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed. In addition, examples of various specific processes and materials are provided in this invention, but those skilled in the art will recognize the application of other processes and / or the use of other materials.
[0037] Please see Figures 1 to 6 The connector 100 in this embodiment of the present invention includes:
[0038] Two insulating elements 20 are positioned opposite each other and spaced apart;
[0039] A plurality of connection terminals 30 are disposed on two insulating members 20, the plurality of connection terminals 30 including a plurality of signal terminals 31 and a plurality of ground terminals 32; and
[0040] Two powder metallurgical material shorting pieces 10 are made by powder metallurgy process. The two powder metallurgical material shorting pieces 10 are disposed between two insulating parts 20 and face the two insulating parts 20 respectively.
[0041] The powder metallurgy material shorting piece 10 includes a substrate 11 and a plurality of shorting structures 12 disposed on the substrate 11 and interconnected with each other. The shorting structures 12 protrude toward the corresponding insulating member 20, and the plurality of shorting structures 12 are connected to a plurality of grounding terminals 32.
[0042] In the connector 100 of this utility model embodiment, the powder metallurgy shorting piece 10 is made by powder metallurgy process. The powder metallurgy shorting piece 10 includes a substrate 11 and a plurality of shorting structures 12 disposed on the substrate 11 and interconnected with each other. The shorting structures 12 protrude toward the corresponding insulating member 20. The plurality of shorting structures 12 are connected to a plurality of grounding terminals 32. The powder metallurgy process uses metal powder as material, which is formed by molding and sintering. It can more simply, time-savingly and labor-savingly produce an integral shorting piece 10 structure with protruding shorting structures 12, realize the shorting of multiple grounding terminals 32, and ensure that the connector 100 is not affected by external signals. It effectively solves the problem in the prior art that due to the material thickness limitation of the hardware sheet, it is impossible to directly produce an integral shorting piece 10 structure with multiple bends and irregular shapes.
[0043] In this embodiment, the insulating component 20 is a plastic component. On one hand, the top of the insulating component 20 is provided with a plurality of mounting holes 21 spaced apart along its length direction. On the side of the insulating component 20 away from the powder metallurgy shorting piece 10, there are a plurality of mounting grooves 22 corresponding to the plurality of mounting holes 21 and extending along the width direction of the insulating component 20. A plurality of connecting terminals 30 pass through the plurality of mounting holes 21 and are embedded in the plurality of mounting grooves 22. The shape of the mounting groove 22 corresponding to the signal terminal 31 is adapted to the shape of the signal terminal 31, and the shape of the terminal of the mounting groove 22 corresponding to the ground terminal 32 is adapted to the shape of the ground terminal 32.
[0044] A limiting part 29 is provided below the mounting hole 21 corresponding to the grounding terminal 32, and a limiting hole 321 is provided on the grounding terminal 32. The limiting part 29 is embedded in the limiting hole 321. In this way, the insulating part 20 can be used to stably install the connecting terminal 30, so that multiple connecting terminals 30 are insulated and isolated from each other, and the multiple grounding terminals 32 are prevented from shaking, falling off and disconnecting from the short-circuit structure 12, thus ensuring the stability and safety of the connector 100 when connecting and disconnecting from the external interface.
[0045] On the other hand, the two insulating members 20 are arranged at intervals relative to each other, and the space between them is used to install two powder metallurgy shorting pieces 10. That is, the powder metallurgy shorting pieces 10 are located inside the connector 100. Moreover, the insulating member 20 is provided with multiple clearance holes 23 corresponding to multiple shorting structures 12. The grounding terminal 32 is directly connected to the shorting structure 12 through the clearance holes 23. By placing the powder metallurgy shorting pieces 10 inside the insulating member 20, not only can contact connection with the grounding terminal 32 be achieved, but the structural impact on the signal terminal 31 can also be avoided, and the structure of the connector 100 is made more compact.
[0046] In this embodiment, the connector 100 can be divided into two halves: one consisting of a set of connecting terminals 30, an insulating element 20 and a powder metallurgy shorting piece 10, and the other consisting of a set of connecting terminals 30, another insulating element 20 and another powder metallurgy shorting piece 10. During assembly, the two halves can be assembled into two independent structures according to the above components, and then the two halves can be installed accordingly to obtain the connector 100.
[0047] Please see Figures 1 to 3 Furthermore, multiple connection terminals 30 are evenly arranged on two insulating members 20; wherein, one grounding terminal 32 is alternately arranged with a set number of signal terminals 31.
[0048] Specifically, the number of connecting terminals 30 on the two insulating components 20 are the same and symmetrically arranged. Multiple connecting terminals 30 on a single insulating component 20 are evenly spaced, forming a regular connector 100 structure. Multiple grounding terminals 32 can provide multiple grounding paths, so even if one path fails, the others can still function normally, improving the stability and reliability of the connector 100. Furthermore, multiple grounding terminals 32 can disperse current, reduce electromagnetic interference and noise, ensure clean signal transmission, and contribute to the high precision and high-speed transmission of the connector 100.
[0049] One grounding terminal 32 and a set number of signal terminals 31 are alternately arranged to meet the short-circuit requirements and signal transmission requirements of the connector 100. The set number of signal terminals 31 is specifically set according to the signal transmission requirements of the connector 100, such as 1, 2, 3, etc.
[0050] exist Figures 1 to 3 In the embodiment shown, the number is set to 2, that is, 1 ground terminal 32 and 2 signal terminals 31 are alternately arranged on the insulating member 20 in the pattern of 1 ground terminal 32-2 signal terminals 31-1 ground terminal 32-2 signal terminals 31-1 ground terminal 32... and both ends of the connector 100 are ground terminals 32. These two ground terminals 32 have extensions that extend outward for grounding connection.
[0051] In this embodiment, the substrate 11 and the plurality of shorting structures 12 are integrally formed. The plurality of shorting structures 12 are disposed on the outer surface of the substrate 11, facing the insulating member 20, to facilitate connection with the plurality of grounding terminals 32 disposed on the insulating member 20. The inner surface of the substrate 11 is planar, that is, the inner surfaces of the two powder metallurgy material shorting pieces 10 are planar. Please refer to [link to relevant documentation]. Figure 1 and Figure 2 Two powder metallurgical shorting pieces 10 are positioned opposite each other and attached between two insulating parts 20, resulting in a flatter, more stable, and more compact structure, which helps to improve the structural stability and compactness of the connector 100.
[0052] Please see Figures 4 to 6 Furthermore, the powder metallurgy material shorting piece 10 also includes a connecting layer 13 disposed on the substrate 11, a plurality of shorting structures 12 disposed on the connecting layer 13, and the connecting layer 13 is configured to cooperate with the inner side of the insulating member 20.
[0053] In this embodiment, the powder metallurgy shorting piece 10 is an integral structure, that is, the substrate 11, the connecting layer 13 and the multiple shorting structures 12 are an integral structure. The connecting layer 13 is higher than the surface of the substrate 11 by a certain height. It can not only connect the multiple shorting structures 12 together, but also cooperate with the inner side of the insulating member 20, so that the combination of the powder metallurgy shorting piece 10 and the insulating member 20 is more stable and compact.
[0054] Specifically, the connecting layer 13 is provided with two grooves 131 distributed along its length and spaced apart in its width direction. The two grooves 131 correspond to the upper and lower ends of the insulating member 20, respectively. The upper edge 201 and lower edge 202 of the inner side of the insulating member 20 are respectively embedded in the two grooves 131, so that the insulating member 20 and the powder metallurgy material shorting piece 10 are more tightly bonded, thereby improving the structural stability of the connector 100.
[0055] In this embodiment, the powder metallurgy shorting piece 10 is made of metal powder, such as copper, iron, stainless steel or alloy. Since the structure formed after sintering by powder metallurgy is more brittle than the original metal raw material, two insulating parts 20 are used to sandwich the powder metallurgy shorting piece 10 in close contact. The elasticity of the insulating parts 20 is used to improve the safety of the powder metallurgy shorting piece 10.
[0056] It is understood that the multiple shorting structures 12 are the multiple bent irregular parts mentioned in the background art. The thicknesses of the substrate 11, the shorting structure 12 and the connecting layer 13 are different. If the powder metallurgy material shorting piece 10 is directly manufactured by the traditional stamping process, it will be difficult to achieve and the technical difficulty is relatively high. However, this embodiment adopts the powder metallurgy process, which can be achieved more simply and conveniently.
[0057] Please see Figures 1 to 6 Furthermore, the shorting structure 12 includes a plurality of shorting portions 121 spaced apart along the width direction of the substrate 11, and all of the plurality of shorting portions 121 are in contact with the grounding terminal 32; wherein, the uppermost shorting portion 121 is exposed from the top of the insulating member 20, and the lowermost shorting portion 121 is exposed from the bottom of the insulating member 20.
[0058] In this embodiment, the shorting structure 12 is not a single piece, but is formed by combining multiple shorting portions 121. Each shorting portion 121 is a block-shaped protrusion on the substrate 11. Each shorting portion 121 of the shorting structure 12 is in contact with the grounding terminal 32 to ensure the grounding connection effect. The uppermost and lowermost shorting portions 121 are exposed from the insulating member 20, which facilitates the determination of the alignment and contact connection between the grounding terminal 32 and the shorting structure 12. Moreover, the space between each shorting portion 121 is used to cooperate with the insulating member 20 (such as the upper edge 201 and lower edge 202 of the insulating member 20 mentioned above), ensuring the structural fit between the insulating member 20 and the powder metallurgy material shorting piece 10.
[0059] The number of shorting sections 121 can be set according to actual needs. Figure 1 and Figure 6 In the embodiment shown, there are four shorting portions 121. From top to bottom, the first shorting portion 121 and the fourth shorting portion 121 are exposed from the top and bottom of the insulating member 20, respectively, and the second shorting portion 121 and the third shorting portion 121 are located within the coverage area of the insulating member 20.
[0060] Please see Figures 2 to 5 Furthermore, the clearance hole 23 includes a first hole 231 and a second hole 232 spaced apart along the width direction of the insulating member 20. Two short-circuit portions 121 located within the coverage area of the insulating member 20 correspond to the first hole 231 and the second hole 232 respectively, and are respectively connected to the corresponding grounding terminal 32 through the first hole 231 and the second hole 232.
[0061] The dimensions of the first hole 231 and the second hole 232 are adapted to the dimensions of the two shorting parts 121 mentioned above. If the dimensions are similar or equal, it ensures that the two shorting parts 121 can make full contact with the grounding terminal 32. The two shorting parts 121 mentioned above are the second shorting part 121 and the third shorting part 121 mentioned above.
[0062] Please see Figures 2 to 6 Furthermore, the insulating member 20 is provided with a plurality of mating parts 24 distributed at intervals along the length direction of the insulating member 20 on the side facing the powder metallurgy material shorting piece 10. The mating parts 24 are embedded between two shorting parts 121 that are adjacent in the width direction of the insulating member 20 and are located within the coverage area of the insulating member 20.
[0063] Multiple mating portions 24 are spaced apart along the length of the insulating member 20 to correspond to multiple shorting structures 12. In this embodiment, the clearance hole 23 is divided into a first hole 231 and a second hole 232 that are spaced apart. The mating portion 24 is provided in the space between the two holes, and the mating portion 24 is embedded between the two shorting portions 121 (between the second shorting portion 121 and the third shorting portion 121 mentioned above). This makes the insulating member 20 and the powder metallurgy material shorting piece 10 more tightly bonded. Combined with the upper edge 201 and lower edge 202 of the insulating member 20 mentioned above, the tightness of the bonding between the insulating member 20 and the powder metallurgy material shorting piece 10 is comprehensively improved, thereby improving the structural stability and compactness of the connector 100.
[0064] Please see Figures 4 to 6 Furthermore, the bottom of the insulating member 20 is provided with a first positioning part 25 and a first positioning hole 26 spaced apart, and the top two ends are respectively provided with a second positioning part 27 and a second positioning hole 28; the first positioning part 25, the first positioning hole 26, the second positioning part 27 and the second positioning hole 28 of one insulating member 20 are respectively fitted and engaged with the first positioning hole 26, the first positioning post, the second positioning hole 28 and the second positioning post of another insulating member 20.
[0065] Specifically, the two insulating parts 20 have basically the same structure. The first positioning part 25 can be a positioning post structure with strip-shaped protrusions around it. The first positioning hole 26 is a hole-shaped structure that matches the shape of the cross-section of the first positioning part 25. When the first positioning part 25 and the first positioning hole 26 of one insulating part 20 are fitted and matched with the first positioning hole 26 and the first positioning part 25 of the other insulating part 20, the bottoms of the two insulating parts 20 can be fixed together.
[0066] The second positioning part 27 can be a block-shaped protrusion, and the second positioning hole 28 is a hole-shaped structure that matches the shape of the cross-section of the second positioning part 27. When the second positioning part 27 and the second positioning hole 28 of one insulating member 20 are fitted and engaged with the second positioning hole 28 and the second positioning part 27 of another insulating member 20, the top ends of the two insulating members 20 can be fixed together, thereby simply and effectively fixing the connector 100 in four directions, ensuring structural stability, and also facilitating the disassembly and assembly of the connector 100.
[0067] In addition, the powder metallurgy shorting piece 10 is also provided with corresponding through holes, such as two through holes at its bottom, so that the two first positioning posts can be inserted, thereby making the powder metallurgy shorting piece 10 more stably installed between the two insulating parts 20.
[0068] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A connector, characterized in that, include: Two insulating components that are positioned opposite each other and spaced apart; Multiple connection terminals disposed on the two insulating members, the multiple connection terminals including multiple signal terminals and multiple ground terminals; as well as Two shorting pieces made of powder metallurgy material are disposed between two insulating components and face the two insulating components respectively. The powder metallurgy material shorting piece includes a substrate and a plurality of shorting structures disposed on the substrate and interconnected with each other. The shorting structures protrude toward the corresponding insulating member, and the plurality of shorting structures are connected to the plurality of grounding terminals.
2. The connector according to claim 1, characterized in that, The two shorting pieces of the powder metallurgy material are arranged opposite each other and in close contact.
3. The connector according to claim 1, characterized in that, The plurality of the connecting terminals are evenly arranged on the two insulating members; In this configuration, one grounding terminal is alternately arranged with a predetermined number of signal terminals.
4. The connector according to claim 1, characterized in that, The powder metallurgy material shorting piece also includes a connecting layer disposed on the substrate, and a plurality of the shorting structures are disposed on the connecting layer, and the connecting layer is configured to cooperate with the inner side of the insulating member.
5. The connector according to claim 1, characterized in that, The insulating component is provided with a plurality of clearance holes corresponding to the plurality of short-circuit structures, and the grounding terminal is connected to the short-circuit structure through the clearance holes.
6. The connector according to claim 5, characterized in that, The shorting structure includes a plurality of shorting portions spaced apart along the width direction of the substrate, and all of the plurality of shorting portions are in contact with the grounding terminal; The uppermost shorting portion protrudes from the top of the insulating member, and the lowermost shorting portion protrudes from the bottom of the insulating member.
7. The connector according to claim 6, characterized in that, The clearance hole includes a first hole and a second hole spaced apart along the width direction of the insulating member. The two short-circuit portions located within the coverage area of the insulating member correspond to the first hole and the second hole, respectively, and are respectively connected to the corresponding grounding terminal through the first hole and the second hole.
8. The connector according to claim 6, characterized in that, On the side of the insulating member facing the powder metallurgy material shorting piece, a plurality of mating parts are provided at intervals along the length direction of the insulating member. The mating parts are embedded between two adjacent shorting parts located within the coverage area of the insulating member and in the width direction of the insulating member.
9. The connector according to claim 1, characterized in that, The bottom of the insulating component is provided with a first positioning part and a first positioning hole spaced apart, and the top two ends are respectively provided with a second positioning part and a second positioning hole; The first positioning portion, the first positioning hole, the second positioning portion, and the second positioning hole of one insulating member are respectively fitted and engaged with the first positioning hole, the first positioning portion, the second positioning hole, and the second positioning portion of another insulating member.
10. The connector according to claim 1, characterized in that, The top of the insulating component is provided with a plurality of mounting holes spaced apart along its length. On the side of the insulating component opposite to the powder metallurgy short connector, there are a plurality of mounting grooves corresponding to the plurality of mounting holes and extending along the width direction of the insulating component. The plurality of connecting terminals pass through the plurality of mounting holes and are embedded in the plurality of mounting grooves. A limiting part is provided below the mounting hole corresponding to the grounding terminal, and a limiting hole is provided on the grounding terminal, with the limiting part embedded in the limiting hole.