High-voltage connection terminal bodies, cable assemblies, and connectors.
The terminal body design addresses poor structural stability and conductivity issues by using a dual wiring plate arrangement with a boss and through hole alignment structure, ensuring simultaneous electrical connection and improved stability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- TYCO ELECTRONICS (SHANGHAI) CO LTD
- Filing Date
- 2026-01-13
- Publication Date
- 2026-04-10
AI Technical Summary
Existing connector terminal bodies exhibit poor structural stability and conductivity due to long conductive paths and potential relative movement between wiring plates during ultrasonic welding, leading to low current-carrying performance.
A terminal body design featuring a first and second insertion plate forming an insertion slot, with a first and second wiring plate connected via a boss and through hole, and an alignment structure ensuring simultaneous electrical connection to the core of the electric wire through both plates, enhanced by a positioning mechanism for stability.
Improves conductivity and current-carrying performance by allowing simultaneous electrical connection to both wiring plates, enhancing structural stability and reducing relative movement, thus improving the overall electrical connection efficiency.
Smart Images

Figure 2026063092000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of connection structures, and more particularly, to a terminal body for high-voltage connection, a cable assembly, and a connector.
Background Art
[0002] The terminal body of an existing connector generally includes an insertion part and a wiring part electrically connected to the insertion part. The connection between the wiring part and the electric wire is realized by ultrasonic welding technology. In use, an external terminal is inserted into the insertion part for electrical connection. At this time, the combined terminal is electrically connected to the electric wire through the connector. The insertion part includes a first contact plate and a second contact plate, and the external terminal can be inserted into the gap between the first contact plate and the second contact plate and is directly electrically connected to the first contact plate and the second contact plate through the shortest conductive path. A single-layer insertion plate can only be directly electrically connected to either the first insertion plate or the second insertion plate. The unconnected part has a long conductive path, a small conductive part, and low current-carrying performance. Further, when the wiring part includes a first wiring plate connected to the first insertion plate and a second wiring plate connected to the second insertion plate, and the first wiring plate is attached to the second wiring plate, when the first wiring plate or the second wiring plate is ultrasonically welded to the core of the electric wire, relative movement may occur between the first connection plate and the second connection plate, which may hinder the electrical connection between the first wiring plate and the second wiring plate.
Summary of the Invention
Problems to be Solved by the Invention
[0003] An object of the present invention is to provide a terminal body for high-voltage connection, a cable assembly, and a connector in order to solve the technical problem that the structural stability and conductivity of the arrangement of the wiring part in the prior art are poor.
Means for Solving the Problems
[0004] The present invention An insertion section comprising a first insertion plate and a second insertion plate, and A wiring section comprising a first wiring plate, a second wiring plate, and an alignment structure. Includes, A gap is formed between the first insertion plate and the second insertion plate, and the first and second insertion plates together form an insertion slot (or insertion opening) into which a mating terminal is inserted. This is achieved by providing a terminal body for high-voltage connection, wherein the first wiring plate is electrically connected to the first insertion plate, the second wiring plate is electrically connected to the second insertion plate, the first wiring plate has a first outer surface and a first inner surface, the second wiring plate has a second outer surface and a second inner surface, the first inner surface is positioned opposite the second inner surface, and the alignment structure comprises a through hole and a boss, the through hole is provided in the first wiring plate, the boss is provided on the second inner surface, the boss is housed in the through hole and is configured to be electrically connected to the core of the wire together with the first outer surface.
[0005] In the embodiment of the first aspect, the upper surface of the boss and the first outer surface form a connecting surface configured to connect the core of the electric wire, and the connecting surface is planar.
[0006] In the embodiment of the first aspect, the boss is a boss formed by stamping (or pressing) the second wiring plate.
[0007] In the embodiment of the first aspect, the boss and the hole walls of the through hole are gap-fitted.
[0008] In the embodiment of the first aspect, the boss and the hole wall of the through hole are interlocking.
[0009] In the embodiment of the first aspect, the first inner surface is fully attached to and electrically connected to the second inner surface.
[0010] In the first embodiment, the peripheral edge of the first wiring plate and the peripheral edge of the second wiring plate are aligned.
[0011] In the embodiment of the first aspect, the wiring section is flat (planar).
[0012] In the embodiment of the first aspect, the thickness of the wiring section is greater than the thickness of the first connection plate or the second connection plate.
[0013] In the embodiment of the first aspect, the wiring section further comprises a connecting bridge connecting a first connecting plate and a second connecting plate, the connecting bridge being plastically deformable, and the insertion of the first wiring plate and the second wiring plate can be achieved by bending the connecting bridge, and the terminal body is an integral piece (or integrated type).
[0014] In the embodiment of the first aspect, the first insertion plate and the second insertion plate are arranged facing each other, and the first insertion plate and the first wiring plate are connected to each other via a bend, or the second insertion plate and the second wiring plate are connected to each other via a bend.
[0015] In an embodiment of the first aspect, the wiring section further includes a positioning structure, the positioning structure includes a positioning groove and a positioning pillar (or positioning column), one of the positioning groove and the positioning pillar being located on a first inner surface, the other of the positioning groove and the positioning pillar being located on a second inner surface, the positioning pillar being fitted into and inserted into the positioning groove to form an interlocking fit.
[0016] In the embodiment of the first aspect, the cross-sectional area of the positioning groove is smaller than the cross-sectional area of the through hole.
[0017] In the embodiment of the first aspect, the positioning pillar is a positioning pillar formed by a room-temperature riveting method (or cold riveting).
[0018] In a second embodiment, the present invention provides a cable assembly comprising a high-voltage terminal body, further including an electric wire and the terminal body, wherein the core of the electric wire and the wiring portion of the terminal body are electrically connected.
[0019] In the second embodiment, the core of the electric wire is welded to the wiring portion of the terminal body.
[0020] In the second embodiment, the core of the electric wire is in contact with the first outer surface of the wiring section.
[0021] In a third aspect, the present invention further provides a connector comprising a connecting housing and the above-described high-voltage connecting terminal body, wherein the connecting housing comprises a terminal cavity configured to house the terminal body, and the terminal cavity is configured to permanently support the terminal body. [Effects of the Invention]
[0022] Compared with the prior art, the technical effect of the present invention is that the first wiring plate of the high-voltage connection terminal body is electrically connected to the first insertion plate, and the second wiring plate is electrically connected to the second insertion plate. When the combined terminal is inserted into the insertion slot formed by the first insertion plate and the second insertion plate, the combined terminal is electrically connected to the insertion portion and is electrically connected to the core of the electric wire through the wiring portion. In addition, an alignment structure is provided in the wiring portion. The alignment structure includes a through hole provided on the first inner surface and a boss provided on the second inner surface. The boss is accommodated in the through hole and is used to be electrically connected to the core of the electric wire together with the first outer peripheral surface. When the core of the electric wire is connected to the wiring portion, it is not only electrically connected to the first wiring plate through the first outer peripheral surface, but can also be electrically connected to the second wiring plate through the boss. Since the core of the electric wire can be electrically connected to both the first wiring plate and the second wiring plate simultaneously, the conductivity and current-carrying performance of the wiring portion are improved, and the structural stability of the terminal body is improved by the double arrangement of the first wiring plate and the second wiring plate.
Brief Description of the Drawings
[0023] To make the objectives, technical solutions, and advantages of the present application clearer and easier to understand, the present application will be described in more detail below by referring to the attached drawings and embodiments. It should be understood that the specific embodiments described in this specification are only for explaining the present invention and do not limit the present invention. [Figure 1] It is a three-dimensional structure diagram of the terminal body provided by the embodiment of the present invention viewed from an angle. [Figure 2] It is a three-dimensional structure diagram of the terminal body of FIG. 1 viewed from another perspective. [Figure 3] It is a cross-sectional view of the terminal body of FIG. 1. [Figure 4] It is a three-dimensional structure diagram of the connection terminal provided by one embodiment of the present invention. [Figure 5] It is a longitudinal sectional view of the connection terminal of FIG. 4. [Figure 6]This is a cross-sectional view of the connection terminals in Figure 4. [Figure 7] Figure 4 is an exploded perspective view of the connection terminals. [Figure 8] Figure 4 is a three-dimensional structural diagram of the limiting member for the connection terminal. [Figure 9] This is a three-dimensional structural diagram of a connector provided by another embodiment of the present invention. [Figure 10] Figure 9 is an exploded view of the connection terminals. [Figure 11] Figure 9 is a three-dimensional structural diagram of the limiting member for the connection terminal. [Modes for carrying out the invention]
[0024] Herein, embodiments of the present invention will be described in detail, and examples of embodiments are shown in the accompanying figures; where constant or similar reference numerals always represent identical or similar components or components having identical or similar functionality. The embodiments described below with reference to the accompanying figures are illustrative and intended to illustrate the present invention, but should not be considered as any limitation of the present invention.
[0025] In this specification, the directions and positional relationships indicated by terms such as "length," "width," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "internal," and "external" are based on the directions and positional relationships shown in the attached figures and are used solely to illustrate the present invention. They should be understood as being used for explanatory convenience and not to indicate or imply that the shown devices or elements must have a particular orientation or are configured and operate in a particular orientation.
[0026] Furthermore, the terms “the first” and “the second” are for explanatory convenience only and should not be interpreted as indicating or suggesting relative importance or implicitly indicating the number of technical features described. Features limited by “the first” or “the second” may explicitly or implicitly indicate that they include one or more features. In this specification, “multiple / a plurality of” means two or more unless otherwise explicitly and specifically provided.
[0027] In this specification, unless otherwise explicitly stated and limited, terms such as “mount,” “connect with each other,” “connect,” and “fix” should be interpreted generally. For example, “connect” can be interpreted as being permanently connected, detachably connected, or integrally connected; “connect” can be interpreted as being mechanically connected or electrically connected; “connect” can also be interpreted as being directly connected or indirectly connected through an intermediary, or as internal communication between two components or an interaction relationship between two components. To a person skilled in the art, the specific meaning of the aforementioned terms in this application may be interpreted according to specific conditions.
[0028] To further clarify the purpose, technical solution, and advantages of this application, the application will be described in more detail below with reference to the attached drawings and embodiments.
[0029] This invention provides a terminal body 100 that can be inserted into a mating terminal to achieve an electrical connection with the mating terminal.
[0030] Referring to Figures 1 and 2, the terminal body 100 may be a high-voltage connection terminal body 100, and the terminal body 100 includes an insertion portion 10 and a wiring portion 20.
[0031] The insertion section 10 includes a first insertion plate 11 and a second insertion plate 12. There is a gap between the first insertion plate 11 and the second insertion plate 12, and the first insertion plate 11 and the second insertion plate 12 together surround an insertion slot 101 into which a mating terminal is inserted. The insertion slot 101 is a cavity with an opening, and the mating terminal extends from the opening of the cavity into the cavity, interfering with the insertion section 10 to achieve an electrical connection with the insertion section 10. In this embodiment, the first insertion plate 11 and the second insertion plate 12 are parallel and spaced apart. When the mating terminal is inserted into the insertion slot 101, the mating terminal contacts both the first insertion plate 11 and the second insertion plate 12, and electrically connects with both of them. The first insertion plate 11 and the second insertion plate 12 are the same size and are arranged facing each other.
[0032] The wiring section 20 has a planar shape and a connection surface that connects to the core of the electric wire. After the core of the electric wire is connected to the connection surface, the wiring section 20 is electrically connected to the electric wire, and the insertion section 10 is electrically connected to the electric wire via the wiring section 20.
[0033] Referring to Figures 1 and 2, specifically, the wiring section 20 includes a first wiring plate 21, a second wiring plate 22, and a connecting bridge 23, the connecting bridge 23 connecting the first wiring plate 21 and the second wiring plate 22, and the first wiring plate 21 and the second wiring plate 22 are electrically connected via the connecting bridge 23. The first wiring plate 21 is electrically connected to the first insertion plate 11, and the second wiring plate 22 is electrically connected to the second insertion plate 12.
[0034] Optionally, the first wiring plate 21 and the first insertion plate 11 can be mechanically connected via the bent portion 111 and electrically connected, the first wiring plate 21 and the first insertion plate 11 are arranged in a staggered pattern in the vertical direction, the first insertion plate 11 has a higher horizontal position than the first wiring plate 21, and the bent portion 111 extends in the vertical direction. Alternatively, the second wiring plate 22 and the second insertion plate 12 can be located on the same horizontal plane and directly connected, and the second wiring plate 22 and the second insertion plate 12 are electrically connected.
[0035] In other embodiments, the second wiring plate 22 and the second insertion plate 12 can be mechanically connected via the bent portion 111 and electrically connected. The second wiring plate 22 and the second insertion plate 12 are arranged in a staggered pattern in the vertical direction, the second insertion plate 12 is at a higher horizontal position than the second wiring plate 22, and the bent portion 111 extends in the vertical direction. The first wiring plate 21 and the first insertion plate 11 can be located on the same horizontal plane and directly connected, and the first wiring plate 21 and the first insertion plate 11 are electrically connected.
[0036] In this configuration, the bent portion 111 may be provided only between the first wiring plate 21 and the first insertion plate 11. Alternatively, the bent portion 111 may be provided only between the second wiring plate 22 and the second insertion plate 12. Alternatively, the bent portion 111 may be provided between the first wiring plate 21 and the first insertion plate 11, and between the second wiring plate 22 and the second insertion plate 12. In this embodiment, referring to Figure 1, the bent portion 111 may be provided only between the first wiring plate 21 and the first insertion plate 11.
[0037] In one embodiment, the thickness of the wiring section 20 is greater than the thickness of the first wiring plate 21 or the second wiring plate 22. That is, the first wiring plate 21 and the second wiring plate 22 are not on the same plane. They can optionally be fitted together via a step structure. In this embodiment, the first wiring plate 21 has an upward-facing first outer surface and a downward-facing first inner surface, and the second wiring plate 22 has a downward-facing second outer surface and an upward-facing second inner surface, with the first inner surface facing the second inner surface. Here, the peripheral edges of the first wiring plate 21 and the peripheral edges of the second wiring plate 22 are aligned, that is, the first wiring plate 21 and the second wiring plate 22 are the same size and stacked vertically on top of each other. Furthermore, the core of the electric wire can be welded to the first wiring plate 21, or to the second wiring plate 22, or to both the first wiring plate 21 and the second wiring plate 22, using ultrasonic welding technology.
[0038] Referring to Figures 1 and 3, in one embodiment, the first wiring plate 21 is provided with a through hole 211 that penetrates the first outer surface and the first inner surface, and a boss 221 is provided in a convex shape on the second inner surface, the boss 221 penetrating the through hole 211 and configured to connect to the core of the electric wire together with the first outer surface. In other words, the core of the electric wire is connected to the first wiring plate 21 via the first outer surface and to the second wiring plate 22 via the boss 221, so that the core of the electric wire can be electrically connected directly to both the first wiring plate 21 and the second wiring plate 22 at the same time. Conductivity and electrical conductivity are improved, and structural stability is also improved by the double arrangement of the first wiring plate 21 and the second wiring plate 22. When a mating terminal is inserted into the insertion slot 101 formed by the first insertion plate 11 and the second insertion plate 12, the mating terminal is electrically connected to the insertion part 10 and electrically connected to the core of the electric wire via the wiring part 20. Of these, the boss 221 can be formed by stamping via the second wiring plate 22, so the boss 221 can be formed quickly, saving material and cost.
[0039] Preferably, the upper surface of the boss 221 and the first outer surface are integrated to form a connection surface for connecting the core of the electric wire. Since the connection surface is planar, the core of the electric wire can be connected to the boss 221 and the first outer surface on the same plane, improving structural stability and reducing the occurrence of poor contact.
[0040] In the above embodiment, the first inner surface and the second inner surface may be spaced apart. In this case, the second wiring plate 22 is electrically connected only to the core of the wire via the boss 221.
[0041] In this embodiment, at least a portion of the first wiring plate 21 is in contact with at least a portion of the second wiring plate 22. That is, at least a portion of the inner surface of the first is in contact with at least a portion of the inner surface of the second, and the connection of a portion of the first wiring plate 21 and a portion of the second wiring plate 22 to the core of the electric wire improves the current-carrying performance of the wiring section 20 and prevents the first wiring plate 21 and the second wiring plate 22 from moving up and down relative to each other. Referring to Figures 1 and 3, preferably, the first inner surface is completely attached to the second inner surface and electrically connected to further improve the current-carrying performance, and structural stability is enhanced so that the first wiring plate 21 and the second wiring plate 22 do not deform.
[0042] In another embodiment, a portion of the first wiring plate 21 and a portion of the second wiring plate 22 are stacked and in contact with each other. That is, a portion of the first wiring plate 21 and a portion of the second wiring plate 22 are stacked vertically on top of each other, and at least a portion of the inner surface of the first and at least a portion of the inner surface of the second are in contact. Such a stacked arrangement facilitates contact and connection between a portion of the first wiring plate 21 and a portion of the second wiring plate 22, while also reducing the space occupied compared to a non-stacked arrangement.
[0043] The through-hole 211 may be provided in the central region of the first wiring plate 21, or it may be provided on the peripheral edge of the first wiring plate 21 and intersect with its side end face, similar to how the cross-sectional area of the first wiring plate 21 is smaller than the cross-sectional area of the second wiring portion 20. In this case, the end of the second wiring plate 22 may be provided with a convex strip similar to that used for crimping the second wiring plate 22, or a stepped structure may be formed from the second wiring plate 22.
[0044] The terminal body 100 used for high-voltage connections has a first wiring plate 21 electrically connected to a first insertion plate 11, and a second wiring plate 22 electrically connected to a second insertion plate 12. When a aligning terminal is inserted into an insertion slot 101 formed between the first insertion plate 11 and the second insertion plate 12, the aligning terminal is electrically connected to the insertion portion 10 and electrically connected to the core of the electric wire via the wiring portion 20. The wiring portion 20 is provided with an alignment structure. The alignment structure includes a through hole 211 provided on the first inner surface and a boss 221 provided on the second inner surface. The boss 221 is housed in the through hole 211 and used together with the first outer surface to electrically connect to the core of the electric wire. Therefore, when the core of the electric wire is connected to the wiring portion 20, it is possible to electrically connect not only to the first wiring plate 21 via the first outer surface, but also to the second wiring plate 22 via the boss 221. Since the core of the electric wire can be electrically connected to both the first wiring plate 21 and the second wiring plate 22 simultaneously, the conductivity and current-carrying performance of the wiring section 20 can be improved. At the same time, the double arrangement of the first wiring plate 21 and the second wiring plate 22 improves the structural stability of the terminal body 100.
[0045] In one embodiment, the boss 221 and the hole wall of the through hole 211 are in a clearance fit, meaning there is a gap between the side wall of the boss 221 and the side wall of the through hole 211. The cross-section of the boss 221 is square, and correspondingly the cross-section of the through hole 211 is also square. Therefore, the boss 221 has four side walls, and at least one of the four side walls is spaced apart from the side wall of the through hole 211, thus reducing the machining accuracy requirements for the boss 221 and the through hole 211 and making it convenient to align the boss 221 and the through hole 211.
[0046] In another embodiment, the boss 221 and the through hole 211 can form an interference fit, that is, the cross-sectional area of the boss 221 is slightly larger than the cross-sectional area of the through hole 211, and the boss 221 is inserted into the through hole 211 by a slight extrusion deformation. This not only enables a fixed connection between the first wiring plate 21 and the second wiring plate 22 and an electrical connection between the boss 221 and the core of the wire, but also limits the relative displacement between the first wiring plate 21 and the second wiring plate 22.
[0047] In another embodiment, the boss 221 and the through-hole 211 are in a transitional fit. A transitional fit means that during assembly of the through-hole 211 and the boss 221, a clearance fit or a tight fit may occur. The tolerances of the through-hole 211 and the tolerances of the boss 221 overlap. In this way, the tolerances of the boss 221 and the through-hole 211 are further relaxed, reducing the requirements for machining precision.
[0048] However, in order to achieve electrical connection with the core of the wire, the boss 221 usually has a larger cross-section. Due to the limitations of stamping technology, it is difficult to ensure the size accuracy of the boss 221, and the tolerance of the fit between the through hole 211 and the boss 221 becomes large, making it impossible to meet the requirements for a tight fit. In this regard, in this embodiment, referring to Figures 1 and 3, the terminal body 100 further includes a positioning mechanism. The positioning mechanism includes a positioning pillar 222 and a positioning groove 212. The positioning pillar 222 and the positioning groove 212 are provided on the first wiring plate 21 and the second wiring plate 22, respectively. In this embodiment, the positioning groove 212 is provided on the first inner surface of the first wiring plate 21, and the positioning pillar 222 protrudes from the second inner surface of the second wiring plate 22. In other embodiments, the positioning groove 212 can be formed on the second inner surface of the second wiring plate 22, and the positioning pillar 222 can be projected from the first inner surface of the first wiring plate 21. The positioning pillar 222 is fitted into the positioning groove 212, forming an interlocking fit. The aforementioned interlocking fit means that because the cross-sectional area of the positioning pillar 222 is slightly larger than the cross-sectional area of the positioning groove 212, the positioning pillar 222 is pressed into the positioning groove 212 and deforms slightly, engaging with the positioning groove 212 by friction. This interlocking fit between the positioning pillar 222 and the positioning groove 212 fixes the positions of the first wiring plate 21 and the second wiring plate 22, prevents separation of the first wiring plate 21 and the second wiring plate 22, and suppresses relative movement between the first wiring plate 21 and the second wiring plate 22.
[0049] The cross-sectional area of the positioning groove 212 is smaller than the cross-sectional area of the through hole 211 in order to facilitate the machining of the positioning pillar 222, thereby achieving a tight fit between the positioning pillar 222 and the positioning groove 212. In particular, by forming the positioning pillar 222 using the room-temperature riveting method of the second wiring plate 22, the positioning pillar 222 can be formed quickly and the accuracy of the positioning pillar 222 size can be ensured. In this case, the bottom of the positioning groove 212 does not have to be a through groove. In this embodiment, the bottom of the positioning groove 212 is made a through groove to facilitate machining.
[0050] In this embodiment, multiple positioning grooves 212 are provided at intervals, and multiple positioning pillars 222 are provided, with each positioning pillar 222 fitted into one positioning groove 212. The one-to-one connection between the multiple positioning pillars 222 and the multiple positioning grooves 212 enables the positioning function of the first wiring plate 21 and the second wiring plate 22, and prevents the first wiring plate 21 and the second wiring plate 22 from shaking relative to each other.
[0051] In another embodiment, at least a portion of the first wiring plate 21 and at least a portion of the second wiring plate 22 are stacked and in contact. Since the first inner surface and the second inner surface are partially in contact and connected, the boss 221 and through hole 211 may not be provided, and the positioning pillar 222 and positioning groove 212 may not be provided. The contact and connection between the first inner surface and the second inner surface improves the conductivity and current-conductivity of the wiring section 20. In yet another embodiment, referring to Figure 4, the terminal body 100 may consist only of the positioning pillar 222 and the positioning groove 212. The positioning pillar 222 and positioning groove 212 are for restricting the relative movement of the first wiring plate 21 and the second wiring plate 22. Furthermore, when welding the wiring using ultrasonic welding technology, arranging the positioning pillar 222 and positioning groove 212 improves the structural stability of the wiring section 20 and prevents damage to the wiring section 20. Furthermore, since at least a portion of the first wiring plate 21 and at least a portion of the second wiring plate 22 are stacked and in contact, that is, the first wiring plate 21 and the second wiring plate 22 are electrically connected, the core of the electric wire can be electrically connected to both the first wiring plate 21 and the second wiring plate 22 simultaneously, thereby improving the conductivity and current-carrying performance of the wiring section 20. In addition, by stacking the first wiring plate 21 and the second wiring plate 22, the space occupied by the wiring section 20 can be reduced, and the structural stability of the wiring section 20 can be improved.
[0052] Preferably, the first insertion plate 11, the first wiring plate 21, the connecting bridge 23, the second wiring plate 22, and the second insertion plate 12 are sequentially connected and integrally formed. By plastically deforming both the wiring portion 20 and the bending portion 111 and bending the connecting bridge 23, the first wiring plate 21 and the second wiring plate 22 are connected, and by deforming the bending portion 111, horizontal and vertical displacement between the first wiring plate 21 and the first insertion plate 11 can be achieved. During processing, the sheet material can be made into a U shape, including the first insertion plate 11, the first wiring plate 21, the connecting bridge 23, the second wiring plate 22, and the second insertion plate 12, respectively, and the wiring portion 20 is bent to insert the boss 221 into the through hole 211. Furthermore, by inserting the positioning pillar 222 into the positioning groove 212, the wiring section 20 can be processed, and then by bending the bending section 111, the insertion section 10 can be processed by achieving a spaced arrangement between the first insertion plate 11 and the second insertion plate 12. In this embodiment, by using a metal material for the sheet material, good conductivity and plastic deformability are achieved.
[0053] Referring to Figures 4 and 7, in order to install the terminal body 100 and the limiting member 30, the terminal body 100 is provided with an installation structure in its insertion portion 10, and the limiting member 30 is connected to the terminal body 100 via the installation structure. The installation structure is positioned on the first insertion plate 11 and the second insertion plate 12, respectively, for fixing the limiting member 30. The installation structure includes at least one first limiting groove 102 positioned on the edge of the first insertion plate 11 and at least one second limiting groove 103 positioned on the edge of the second insertion plate 12. The first limiting groove 102 and the second limiting groove 103 are used for engaging the limiting member 30. The limiting member 30 can be connected to the terminal body 100 via the installation structure. The limiting member 30 is used to restrict the separation or opening of the first insertion plate 11 and the second insertion plate 12, and / or to restrict the approach or closing of the first insertion plate 11 and the second insertion plate 12. The limiting member 30 can be connected to the insertion part 10 via the installation structure. The first limiting groove 102 and the second limiting groove 103 provide the connection position for the limiting member 30 and are used to restrict the relative movement between the limiting member 30 and the insertion part 10.
[0054] In this embodiment, the first insertion plate 11 has a first front end face facing forward, a first left end face facing left, and a first right end face facing right, and the second insertion plate 12 has a second front end face facing forward, a second left end face facing left, and a second right end face facing right, and the ends of the first insertion plate 11 refer to the first left end face and the first right end face. That is, a first limiting groove 102 is provided on at least one of the first left end face and the first right end face, and the ends of the second insertion plate 12 refer to the second left end face and the second right end face, that is, a second limiting groove 103 is provided on at least one of the second left end face and the second right end face. Referring to Figure 7, in this embodiment, one first limiting groove 102 is provided on the first left end face, one first limiting groove 102 is provided on the first right end face, one second limiting groove 103 is provided on the second left end face, and one second limiting groove 103 is provided on the second right end face. The limiting member 30 can be connected to the first limiting groove 102 and the second limiting groove 103, and specifically, it can engage with the first limiting groove 102 and the second limiting groove 103, preventing the limiting member 30 from moving back and forth relative to the terminal body 100.
[0055] Because the terminal body 100 is small in size, the groove bottoms of the first limiting groove 102 and the second limiting groove 103 are generally concave arc surfaces during the processing and manufacturing process. When the limiting member 30 is connected to the first limiting groove 102 and the second limiting groove 103, it cannot contact the concave arc surface. For this reason, please refer to Figure 7 in this embodiment. Referring to Figure 7, a first limiting lug 131 is provided convexly at the groove bottom of the first limiting groove 102, and the extended length of the first limiting lug 131 is smaller than the groove depth of the first limiting groove 102. A second limiting lug 132 is provided convexly at the groove bottom of the second limiting groove 103. The extended length of the second limiting lug 132 is smaller than the groove depth of the second limiting groove 103, and both the first limiting lug 131 and the second limiting lug 132 are used for covering by the limiting member 30.
[0056] The first insertion plate 11 is positioned in front of the first wiring plate 21. The first insertion plate 11 has a first left end face facing left and a first right end face facing right, and is provided with two first limiting grooves 102, which are located on the first left end face and the first right end face, respectively. The second insertion plate 12 is positioned in front of the second wiring plate 22, and the second insertion plate 12 has a second left end face facing left and a second right end face facing right, and is provided with two second limiting grooves 103, which are located on the second left end face and the second right end face, respectively.
[0057] A restricting projection is provided in a convex shape on the front end surface of the insertion portion 10. Specifically, referring to Figures 4 and 5, the first insertion plate 11 also has a first front end surface facing forward, and the second insertion plate 12 also has a second front end surface facing forward, and the first insertion plate 11 has a first restricting projection 141 convexly provided on its first front end surface, or the second insertion plate 12 has a second restricting projection 142 convexly provided on its second front end surface, or the first insertion plate 11 has a first restricting projection 141 convexly provided on its first front end surface, and the second insertion plate 12 has a second restricting projection 142 convexly provided on its second front end surface. Both the first restricting projection 141 and the second restricting projection 142 are used for covering by the restricting member 30.
[0058] Furthermore, the present invention provides a sheet material for manufacturing the terminal body 100 described in the above embodiment. This sheet material is flattened, plastically deformable, and includes an insertion portion 10 and a wiring portion 20, the insertion portion 10 being provided with a spacer groove extending toward the connecting portion. The spacer groove separates the insertion portion 10 into a first insertion plate 11 and a second insertion plate 12. The wiring portion 20 includes a first wiring plate 21, a second wiring plate 22, and a connecting bridge 23 corresponding to the spacer groove, the connecting bridge 23 being located between the first wiring plate 21 and the second wiring plate 22 and plastically deformable, the first insertion plate 11 extending continuously from the first wiring plate 21, and the second insertion plate 12 extending continuously from the second wiring plate 22. During processing, the first wiring plate 21 and the second wiring plate 22 are overlapped and mounted by bending the connecting bridge 23. The joint between the first insertion plate 11 and the first wiring plate 21, or the joint between the second insertion plate 12 and the wiring plate 22, is bent to form a bent portion 111, thereby separating the first insertion plate 11 and the second insertion plate 12 and forming an insertion slot 101. In this embodiment, the joint between the first insertion plate 11 and the first wiring plate 21 is bent to form a bent portion 111, and the end of the first insertion plate 11 and the end of the second insertion plate 12 after bending are aligned. By using the above method, the terminal body 100 can be processed to save material while simultaneously enabling mass production, which is convenient for rapid prototyping.
[0059] The present invention provides a connection terminal comprising a limiting member 30 improved in the above embodiment and a high-voltage connection terminal body 100. Here, the terminal body 100 has the same structure and performs the same role as the terminal body 100 described in the above embodiment, and will not be repeated here.
[0060] The explanation will be given with reference to Figures 8 and 11. The limiting member 30 includes a limiting structure and a mating structure. The mating structure is fixedly aligned with a mounting structure provided on the terminal body 100. The limiting member 30 is fixed to the terminal body 100 via a connection between the mating structure and the mounting structure, and the limiting structure is positioned across the gap between the first insertion plate 11 and the second insertion plate 12, limiting the opening between the first insertion plate 11 and the second insertion plate 12, so that the limiting structure avoids the opening of the cavity, allowing the mating terminal to be inserted into the cavity through the opening of the cavity, thereby enabling insertion of the mating terminal into the insertion slot 101.
[0061] Specifically, refer to Figures 8 and 11. The limiting structure includes a first panel 31, a limiting plate 33, and a second panel 32. The aligned limiting structure includes a first hook 341 and a second hook 342. The first panel 31 and the second panel 32 face each other and are separated, the limiting plate 33 is configured to connect the first panel 31 and the second panel 32, the first hook 341 is connected to the first panel 31, and the second hook 342 is connected to the second panel 32. The first hook 341 and the second hook 342 are each hooked onto a mounting structure to restrict the detachment of the limiting member 30 from the terminal body 100. Referring to Figures 4 and 6, in this embodiment, two first hooks 341 are provided, connected to the left and right sides of the first panel 31, respectively. The first hook 341 is fitted into the first restricting groove 102, and the width of the first hook 341 matches the width of the first restricting groove 102, and the two side walls of the first restricting groove 102 can restrict the movement of the first hook 341 in the front-rear direction. In addition, two second hooks 342 are provided and connected to the left and right sides of the second panel 32, respectively. The second hooks 342 are fitted into the second restricting groove 103. The second hooks 342 are insertable into the second restricting groove 103. The width of the second hooks 342 matches the width of the second restricting groove 103, and the two side walls of the second restricting groove 103 can restrict the movement of the second hooks 342 in the front-rear direction. In this way, the first hook 341 and the second hooks 342 restrict the restricting member 30 in the front-rear direction.
[0062] Referring to Figure 6, specifically, the first hook 341 can be hooked onto the first limiting lug 131, and the second hook 342 can be hooked onto the second limiting lug 132. Note that "hooking" means that the first hook 341 is bent into a C-shape to enclose the first limiting lug 131, and the second hook 342 is bent into a C-shape to enclose the second limiting lug 132. That is, the cross-sections of both the first hook 341 and the second hook 342 are C-shaped, and the first hook 341 hooks onto the side of the first insertion plate 11 facing the second insertion plate 12, and the second hook 342 hooks onto the side of the second insertion plate 12 facing the first insertion plate 11, thereby restricting the vertical movement of the limiting member 30. Preferably, the first hook 341 can clamp the first limiting lug 131 via a C-shaped structure, and the second hook 342 can clamp the second limiting lug 132 via a C-shaped structure. The setting of the first limiting lug 131 provides a clamping support point for the first hook 341, and the setting of the second limiting lug 132 provides a clamping support point for the second hook 342. Such clamping settings improve the connection stability between the limiting member 30 and the terminal body 100. During processing, the initial state of the first hook 341 and the second hook 342 can be a long strip that is bent inward to wrap around the first limiting lug 131 and the second limiting lug 132, respectively.
[0063] Referring to Figure 5, the insertion section 10 is located between the first panel 31 and the second panel 32. That is, the first panel 31 is attached to the side of the first insertion plate 11 that faces away from the second insertion plate 12, and the second panel 32 is attached to the side of the second insertion plate 12 that faces away from the first insertion plate 11. The first panel 31 and the second panel 32 can restrict the opening of the insertion section 10.
[0064] During processing, the accuracy of the first limiting groove 102 and the first hook 341 cannot be guaranteed because the terminal body 100 and the limiting member 30 are small. In order to ensure that the first hook 341 can be hooked onto the first limiting lug 131, the width of the first limiting groove 102 is generally slightly larger than the width of the first hook 341. For this reason, referring to Figures 4 and 9, the first left end face and the first right end face are provided with first punching grooves 104 formed by punching, respectively, and the first punching grooves 104 are located near the first limiting groove 102, specifically, the first punching grooves 104 are located behind the first limiting groove 102. When the first hook 341 is hooked onto the first limiting lug 131, the first punching groove 104 is formed behind the first limiting groove 102.
[0065] Under the action of punching, the portion between the first limiting groove 102 and the first punching groove 104 is pressed toward the first limiting groove 102 by the punching pressure, so that the width of the first limiting groove 102 is reduced, i.e., the arrangement of the first punching groove 104 is used to reduce the width of the first limiting groove 102 so that the two groove walls of the first limiting groove 102 can clamp the first hook 341. A second punching groove 105 is provided on the second left end face and the second right end face, respectively, and the second punching groove 105 is formed by punching, and the second punching groove 105 opens in the vicinity of the second limiting groove 103, specifically the second punching groove 105 is positioned behind the second limiting groove 103, and the arrangement of the second punching groove 105 is used to reduce the width of the second limiting groove 103. The effect of the second punching groove 105 is the same as that of the first punching groove 104, so it will not be repeated here.
[0066] Referring to Figure 4, in one embodiment, the first panel 31, the limiting plate 33, and the second panel 32 together form a U-shape. During assembly, the terminal body 100 is inserted into the U-shaped groove of the limiting member 30, and the limiting plate 33 is located at the front end of the terminal body 100, that is, the limiting plate 33 shields the opening of the insertion portion 10 facing forward. At this time, the insertion portion 10 has an opening facing left or right, and the mating terminal can be inserted into the cavity from the left opening or the right opening, that is, the mating terminal can be inserted into the insertion slot 101 from the left or the right side.
[0067] Referring to Figures 4 and 7, the limiting member 30 is provided with fixing holes 301, and the limiting projection provided at the front end of the insertion portion 10 is fitted into the fixing holes 301 and inserted. The limiting member 30 can be positioned in a way that prevents lateral movement of the limiting member 30 through the insertion coordination between the limiting projection and the fixing holes 301. In this embodiment, there are two fixing holes 301, and the two fixing holes 301 are fitted to the first limiting projection 141 and the second limiting projection 142, respectively. The first limiting projection 141 and the second limiting projection 142 are located in positions for installing the limiting member 30. When installing the limiting member 30, first, the first limiting projection 141 and the second limiting projection 142 are fitted into the two fixing holes 301, respectively, and inserted to connect the mounting structure and the installation structure.
[0068] Referring to Figure 5, preferably, the limiting plate 33 and the front end surface of the terminal body 100 are spaced apart. That is, the distance between the limiting plate 33 and the mating structure is greater than the distance between the first front end surface and the first limiting groove 102, so that an installation margin is provided for the connection between the mating structure and the installation structure, and it is possible to avoid a situation in which the mating structure and the installation structure cannot be fitted together due to a manufacturing error.
[0069] The limiting member 30 in the above embodiment can be a single piece formed by bending a plastically deformable flat (planar or oblate) shaped material. The oblate shaped material is in the form of a long strip, with two extending ends having strip-shaped portions extending in the width direction. The two ends of the oblate shaped material are bent at 90° to form a first panel 31 and a second panel 32 that are parallel to each other, and the intermediate portion perpendicular to the first panel 31 and the second panel 32 forms a limiting plate 33. The strip-shaped material is bent inward to form a first hook 341 and a second hook 342. Such an arrangement not only saves material but also facilitates the processing and manufacturing of the limiting member 30. At the same time, since the limiting plate 33 is a single integrated structure and there are no solder joints between the limiting plate 33 and the first panel 31 and the second panel 32, the structural stability of the limiting plate 33 is improved, and damage to the limiting plate 33 from the solder joints due to excessive opening force of the first insertion plate 11 and the second insertion plate 12 can be prevented.
[0070] Refer to Figures 9 and 10. In another embodiment, two limiting plates 33 are provided. The first panel 31, the second panel 32, and the two limiting plates 33 are enclosed together to form a ring, and the two limiting plates 33 are positioned on the left and right sides of the insertion portion 10, respectively. That is, the first panel 31, limiting plate 33, second panel 32, and limiting plate 33 are connected in sequence to form a ring. In this case, the two limiting plates 33 avoid the opening of the cavity facing forward, and the mating terminal can be inserted into the cavity from the front to the back through the opening, thereby enabling the mating terminal and the insertion portion 10 to be inserted and mated.
[0071] Referring to Figure 9, when the joint structure is located at the rear end of the limiting member 30, the limiting plate 33 is located at the front of the joint structure, and the front end face of the limiting plate 33 can be made flush with the front end face of the insertion portion 10. This protects the limiting projection and prevents it from wearing down, restricts the front end of the insertion portion 10, and further restricts the openings of the first insertion plate 11 and the second insertion plate 12. In addition, the rear end face of the first hook 341 is flush with the rear end face of the first panel 31, and the rear end face of the second hook 342 is flush with the rear end face of the second panel 32, facilitating the cutting of the planar sheet material forming the limiting member 30 and saving on processing costs.
[0072] In the above embodiment, the limiting member 30 can be a single piece formed by bending a plastically deformable flat material, which has a square zigzag shape and has two serrations (or sawtooth-like structures) and two recesses, the two serrations and two recesses arranged in a staggered pattern. Two sides of the serrations extend along the width direction of the strip material, and the flat material is bent along the width direction of the serrations, with the bend becoming the intersection of the serrations and the recesses, where the two extended ends are aligned and welded to form an annular shape. At this point, the cross-section of the limiting member 30 is square, the two serrations are the first panel 31 and the second panel 32 respectively, and the two recesses are both limiting plates 33. The strip material is bent inward to form hook-shaped first hooks 341 and second hooks 342. This configuration saves material and facilitates the processing and manufacturing of the limiting member 30.
[0073] The aforementioned terminal body 100 can be mated and connected by providing multiple different restricting members 30. In this embodiment, the terminal body 100 can satisfy the requirement that the mating terminals can be inserted in two different directions by providing two different restricting members 30 for mating connection. This terminal body 100 is highly applicable and convenient for mass production. Existing restricting members 30 are generally arranged to mate separately with different terminal bodies 100, and the insertion portion 10 is wound to achieve a restricting effect on the terminal body 100. In this embodiment, the restricting member 30 uses less material, the restricting member 30 is a single piece, there is no need to wrap the insertion portion 10, it is convenient to process, saves material, and has strong structural stability.
[0074] Referring to Figures 4 and 9, in order to facilitate contact and connection between the mating terminal and the insertion portion 10, the connecting terminal further includes an elastic contact member 40 located between the first insertion plate 11 and the second insertion plate 12. The elastic contact member 40 is connected to the first insertion plate 11 and can be electrically connected to the first insertion plate 11, and the elastic contact member 40 is also connected to the second inner surface and can be electrically connected to the second insertion plate 12. In this embodiment, referring to Figure 6, it is also possible to connect the first insertion plate 11 and the second insertion plate 12 with the elastic contact member 40. When the mating terminal is inserted into the insertion slot 101, it is inserted between the two elastic contact members 40, and the elastic contact members 40 elastically deform to elastically contact the upper and lower surfaces of the mating terminal, thereby achieving attachment with the mating terminal. The elastic contact member 40 is also electrically connected to the insertion portion 10, and the elastic contact member 40 achieves electrical connection with the mating terminal through elastic contact and connection. In this way, the connecting terminal is electrically connected to the insertion portion 10 via the elastic contact member 40, and poor contact during electrical connection can be avoided by the elastic contact.
[0075] Referring to Figures 7 and 10, the elastic contact member 40 may have a clamp hole 401, and the connection terminal may further include a clamp block 15. The clamp block 15 protrudes from the side of the first insertion plate 11 facing the second insertion plate 12, or from the side of the second insertion plate 12 facing the first insertion plate 11, and the clamp block 15 is inserted into the clamp hole 401 to form a crimp fit. In this embodiment, a clamp block 15 is provided on both the first insertion plate 11 and the second insertion plate 12, and two elastic contact members 40 are provided, each engaging with the clamp block 15 via the clamp hole 401, thereby enabling a detachable connection of the terminal body 100 and convenient for the quick assembly of the connection terminal.
[0076] To enable a quick connection between the connection terminals and the connector housing, the limiting member 30 also includes a clamping elastic piece 35. The clamping elastic piece 35 can be connected to the first panel 31, the second panel 32, or the limiting plate 33. In this embodiment, two clamping elastic pieces 35 are provided, which are connected to the first panel 31 and the second panel 32, respectively. The clamping elastic piece 35 can engage with the mating socket of the connector housing by elastic deformation.
[0077] To facilitate the alignment of the connection terminals and the connector housing, referring to Figures 8 and 11, the limiting member 30 further includes a guide assembly, which is connected to the first panel 31, the second panel 32, or the limiting plate 33, and the guide assembly includes two guide convex strips 36, which can be positioned on the left and right sides of the clamp elastic piece 35, respectively, and the guide convex strips 36 extend in the front-rear direction. The connector housing has a sliding rail provided therein, and the guide convex strips 36 are slidably connected to the sliding rail to guide the mounting of the terminal body 100.
[0078] In this embodiment, two guide assemblies are provided and connected to the first panel 31 and the second panel 32, respectively. The distance between the two guide convex strips 36 provided on the first panel 31 is different from the distance between the two guide convex strips 36 provided on the second panel 32. Correspondingly, the sliding rails in the mating socket of the connector housing are also provided at different intervals, so that when installing the connection terminals, it is possible to determine whether the connection terminals are assembled correctly by distinguishing whether the guide assemblies are mated with the sliding rails.
[0079] The present invention further provides a cable assembly comprising a high-voltage terminal body 100. The cable assembly includes an electric wire and the terminal body 100 described in the above-described embodiment, wherein the core of the electric wire is electrically connected to the wiring portion 20 of the terminal body 100. Of these, the terminal body 100 has the same structure and performs the same role as the terminal body 100 described in the above-described embodiment, and will not be repeated here. In one embodiment, the electrical connection with the wiring portion 20 can be achieved by welding the core of the electric wire to the wiring portion 20 using ultrasonic welding technology. Furthermore, since the core of the electric wire of the terminal body 100 and the wiring portion 20 are welded and connected using ultrasonic welding technology, structural stability is improved. In another embodiment, the core of the electric wire can be connected by bringing it into contact with the first outer surface of the connection portion in order to achieve an electrical connection between the core of the electric wire and the terminal body. The above-described contact and connection may be a fixed connection, a movable connection, or a detachable connection.
[0080] The present invention provides a connector including a connection housing and a terminal body 100 for high-voltage connection, which are improved in the embodiments described above. The connection housing is provided with a terminal cavity for housing the terminal body 100 in order to permanently install the terminal body 100. The terminal body 100 has the same structure and performs the same role as the terminal body 100 described in the embodiments described above, and will not be repeated here.
[0081] As described above, the embodiments described herein are for illustrating, and not limiting, the technical solutions of the present invention. Although the present application has been described in detail with reference to the embodiments described above, it will be understood by those skilled in the art that the technical solutions described in each of the embodiments described above can still be modified, or some technical features in the technical solutions can be equivalently substituted, and that these modifications or equivalent substitutions will not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions in the various embodiments of the present application, and that all should be included within the scope of protection of the present application. [Explanation of Symbols]
[0082] 100 ... Terminal body 10 ... Insertion part 101… Insertion slot 102 … First limiting groove 103... Second limiting groove 104 ... First punching groove 105... Second punching groove 11… First insertion plate 111 ... Bending section 12… Second insertion plate 131... First restriction lag 132... Second restriction lag 141 … First limiting projection 142 … Second limiting projection 15… Clamp block 20 … Wiring section 21… First wiring plate 211 ... Through hole 212 … Positioning groove 22… Second wiring plate 221... Boss 222… Positioning pillar 23… Connecting Bridge 30… Restricting member 301…Fixing hole 31… Panel 1 32… Second panel 33… Restriction plate 341... First hook 342... The second hook 35… Clamp elastic piece 36… Guide convex strip 40 … Elastic contact member 401… Clamp hole
Claims
1. An insertion section comprising a first insertion plate and a second insertion plate, and Wiring section comprising a first wiring plate, a second wiring plate, and an alignment structure. Includes, A gap is formed between the first insertion plate and the second insertion plate, and the first and second insertion plates together form an insertion slot into which a matching terminal is inserted. A high-voltage terminal body comprising a first wiring plate electrically connected to a first insertion plate, a second wiring plate electrically connected to a second insertion plate, the first wiring plate having a first outer surface and a first inner surface, the second wiring plate having a second outer surface and a second inner surface, the first inner surface being positioned opposite the second inner surface, and the alignment structure comprising a through hole and a boss, the through hole being provided in the first wiring plate, the boss being provided on the second inner surface, the boss being housed in the through hole and configured to be electrically connected to the core of a wire together with the first outer surface.
2. The high-voltage terminal body for connection according to claim 1, wherein the upper surface of the boss and the first outer surface form a connection surface configured to connect the core of the electric wire, and the connection surface is flat.
3. The high-voltage connection terminal body according to claim 1, wherein the boss is a boss formed by stamping the second wiring plate.
4. The high-voltage connection terminal body according to claim 1, wherein the boss and the hole wall of the through hole are fitted with a gap.
5. The high-voltage connection terminal body according to claim 1, wherein the boss and the hole wall of the through hole are fitted in the middle.
6. The high-voltage terminal body for connection according to claim 1, wherein the first inner surface is fully attached to and electrically connected to the second inner surface.
7. The high-voltage connection terminal body according to claim 1, wherein the peripheral edge of the first wiring plate and the peripheral edge of the second wiring plate are aligned.
8. The high-voltage connection terminal body according to claim 1, wherein the wiring portion has a flat planar shape.
9. The high-voltage connection terminal body according to claim 1, wherein the thickness of the wiring portion is greater than the thickness of the first connection plate or the second connection plate.
10. The wiring section further comprises a connecting bridge connecting the first connecting plate and the second connecting plate, the connecting bridge being plastically deformable, and the insertion of the first wiring plate and the second wiring plate can be achieved by bending the connecting bridge, and the terminal body is an integral piece, as described in claim 1.
11. The high-voltage connection terminal body according to claim 1, wherein the first insertion plate and the second insertion plate are arranged facing each other, the first insertion plate and the first wiring plate are connected to each other via a bent portion, or the second insertion plate and the second wiring plate are connected to each other via a bent portion.
12. The wiring section further comprises a positioning structure, the positioning structure comprising a positioning groove and a positioning pillar, one of the positioning groove and the positioning pillar being arranged on the first inner surface, the other of the positioning groove and the positioning pillar being arranged on the second inner surface, and the positioning pillar being fitted into the positioning groove and inserted to form a crimped fit, the high-voltage connection terminal body according to claim 1.
13. The high-voltage connection terminal body according to claim 12, wherein the cross-sectional area of the positioning groove is smaller than the cross-sectional area of the through hole.
14. The high-voltage connection terminal body according to claim 12, wherein the positioning pillar is a positioning pillar formed by a room-temperature riveting method.
15. A cable assembly comprising a high-voltage terminal body, the terminal body comprising an electric wire and the terminal body according to any one of claims 1 to 14, wherein the core of the electric wire and the wiring portion of the terminal body are electrically connected.
16. The cable assembly according to claim 15, wherein the core of the electric wire is welded to the wiring portion of the terminal body.
17. The cable assembly according to claim 15, wherein the core of the electric wire is in contact with the first outer surface of the wiring portion.
18. A connector comprising a connecting housing and a terminal body for high-voltage connection according to any one of claims 1 to 14, wherein the connecting housing comprises a terminal cavity configured to house the terminal body, and the terminal cavity is configured to permanently support the terminal body.