Cable connector and connector assembly
By introducing a retaining strip structure, a conductive mounting frame, and a shielding component into the cable connector, the problems of large board area occupied by electrical connectors and high insertion and extraction forces in connector assemblies are solved, achieving high-density layout and improved reliability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- DONGGUAN LUXSHARE TECH CO LTD
- Filing Date
- 2025-05-21
- Publication Date
- 2026-05-29
AI Technical Summary
Existing connector assemblies suffer from several drawbacks: electrical connectors occupy a large area on the board, making it difficult to achieve high-density arrangement; and the insertion and extraction forces between cable connectors and electrical connectors are large, which can easily lead to loosening of the cable module.
A cable connector is designed, including a housing, a cable module, and a retaining strip structure. The retaining strip prevents the cable module from detaching from the housing, and the structure is improved in terms of structural strength and shielding effect by combining a conductive mounting frame and a shielding component.
It improves the reliability and signal transmission capability of cable connectors, enhances the structural strength and shielding effect of connector assemblies, and adapts to the needs of high-density layout.
Smart Images

Figure CN122118440A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a cable connector and a connector assembly, belonging to the field of connector technology. Background Technology
[0002] Connector assemblies in related technologies typically include electrical connectors and cable connectors that mate with the electrical connectors. With increasingly demanding signal transmission requirements, the electrical connectors in these technologies occupy a large area of the board, which is not conducive to the arrangement of high-density conductive terminals.
[0003] Furthermore, with the continuous increase in terminal density, the insertion and extraction forces may increase when the cable connector mates with the electrical connector, which can easily lead to loosening of the cable module. Therefore, how to improve the structural strength of the cable connector is also a technical problem faced by those skilled in the art. Summary of the Invention
[0004] The purpose of this invention is to provide a cable connector and connector assembly with an improved structure.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a cable connector, comprising:
[0006] A housing, wherein the housing is provided with a receiving space;
[0007] A cable module, at least partially housed within the receiving space, the cable module comprising a cable module, a metal shielding surrounding element at least partially sleeved on the cable module, and a fixing block fixed to the cable module and the metal shielding surrounding element; the cable module includes a plurality of cable conductive terminals; and
[0008] A first stop bar is inserted into the receiving housing and abuts against the cable module to prevent the cable module from detaching from the receiving housing.
[0009] As a further improvement of the present invention, the cable connector further includes a second stop bar, which is inserted into the receiving housing and abuts against the cable module to prevent the cable module from detaching from the receiving housing.
[0010] As a further improvement of the present invention, the fixing block includes a base part, a first positioning block connected to one side of the base part and protruding from the base part, and a second positioning block connected to the other side of the base part and protruding from the base part; the first stop bar and the second stop bar respectively abut against the first positioning block and the second positioning block to prevent the cable module from detaching from the housing.
[0011] As a further improved technical solution of the present invention, the housing includes a first outer wall and a second outer wall opposite to the first outer wall, the housing space is located between the first outer wall and the second outer wall, the first outer wall is provided with a first mounting slot communicating with the housing space, the second outer wall is provided with a second mounting slot communicating with the housing space, and the first positioning block and the second positioning block are respectively inserted into the first mounting slot and the second mounting slot.
[0012] As a further improved technical solution of the present invention, the first outer wall is provided with a first pin hole, the second outer wall is provided with a second pin hole, and the first stop bar and the second stop bar are respectively inserted into the receiving housing through the first pin hole and the second pin hole.
[0013] As a further improvement of the present invention, the cable module comprises several units arranged side by side, and the cable connector further includes a covering shell formed on the cable module and fixed together with the receiving shell.
[0014] As a further improvement of the present invention, the cable module includes an insulator, a terminal module mounted on the insulator, a cable electrically connected to the terminal module, and a covering block at least partially fixed on the terminal module and the cable;
[0015] The terminal module includes a retaining block, and the cable conductive terminal is fixed to the retaining block. Each cable conductive terminal includes a mating part, a cable connecting part, and an intermediate part connecting the mating part and the cable connecting part. The intermediate part is at least partially fixed to the retaining block. The mating part extends to one side and protrudes from the retaining block, and the cable connecting part extends to the other side and protrudes from the retaining block to be electrically connected to the cable.
[0016] As a further improved technical solution of the present invention, the metal shielding surround includes a first outer wall portion, a second outer wall portion opposite to the first outer wall portion, a third outer wall portion, a fourth outer wall portion opposite to the third outer wall portion, and a shielding cavity formed by the first outer wall portion, the second outer wall portion, the third outer wall portion and the fourth outer wall portion, wherein the insulator is at least partially housed in the shielding cavity.
[0017] As a further improvement of the present invention, the metal shielding surround is provided with an inwardly protruding anti-reverse spring, which is configured to lock with the insulator.
[0018] As a further improvement of the present invention, the cable module includes a shielding clamp for clamping the cable. The shielding clamp includes a first clamping portion and a second clamping portion. The cable is provided with a shielding layer, and the shielding layer is clamped between the first clamping portion and the second clamping portion.
[0019] The first clamping plate portion includes a first protruding piece portion and a second protruding piece portion; the second clamping plate portion includes a third protruding piece portion and a fourth protruding piece portion; the first protruding piece portion and the third protruding piece portion abut against each other to form a first insertion protruding piece; the second protruding piece portion and the fourth protruding piece portion abut against each other to form a second insertion protruding piece.
[0020] The metal shielding surround includes a first clamping groove and a second clamping groove, wherein the first inserting tab is inserted into the first clamping groove and the second inserting tab is inserted into the second clamping groove.
[0021] The present invention also discloses a connector assembly comprising:
[0022] A cable connector, wherein the cable connector is the aforementioned cable connector; and
[0023] An electrical connector that mates with the cable connector, the electrical connector comprising:
[0024] The mounting frame is a conductive mounting frame and has an installation space.
[0025] A shielding assembly, at least partially located within the mounting space, in contact with the mounting frame; the shielding assembly includes a first shielding plate assembly, a second shielding plate assembly, a third shielding plate assembly, and a fourth shielding plate assembly; the first and second shielding plate assemblies are spaced apart along a second direction; the third and fourth shielding plate assemblies are spaced apart along a third direction; the first and second shielding plate assemblies are perpendicularly inserted into the third and fourth shielding plate assemblies to form a plurality of shielding units; each shielding unit includes an accommodating space extending along a first direction; the first, second, and third directions are mutually perpendicular; and
[0026] A terminal module, the terminal module being housed in the accommodating space, the terminal module comprising an insulating block and a plurality of conductive terminals disposed on the insulating block;
[0027] In this embodiment, the cable module of the cable connector is at least partially inserted into the accommodating space, the metal shielding surrounding the cable connector is in contact with the shielding assembly, and the cable conductive terminal of the cable connector is in contact with the conductive terminal.
[0028] As a further improvement of the present invention, the mounting frame is a metal mounting frame.
[0029] As a further improved technical solution of the present invention, the mounting frame includes a first wall portion, a second wall portion opposite to the first wall portion, a third wall portion, and a fourth wall portion opposite to the third wall portion, and the mounting space is jointly enclosed by the first wall portion, the second wall portion, the third wall portion, and the fourth wall portion;
[0030] The mounting frame includes a mating surface and a mounting surface opposite to the mating surface;
[0031] The inner side of the first wall portion is also provided with a first mounting groove that penetrates the mounting surface along the first direction, and the inner side of the second wall portion is also provided with a second mounting groove that penetrates the mounting surface along the first direction.
[0032] The first shielding plate assembly includes a first metal plate, the first metal plate including a first mounting portion located at one end of the first metal plate along the third direction and a second mounting portion located at the other end of the first metal plate along the third direction, the first mounting portion being inserted into the first mounting groove and the second mounting portion being inserted into the second mounting groove.
[0033] As a further improved technical solution of the present invention, the inner side of the first wall portion is further provided with a third mounting groove that penetrates the mounting surface along the first direction, and the inner side of the second wall portion is further provided with a fourth mounting groove that penetrates the mounting surface along the first direction.
[0034] The second shielding plate assembly includes a second metal plate, the second metal plate including a third mounting portion located at one end of the second metal plate along the third direction and a fourth mounting portion located at the other end of the second metal plate along the third direction, the third mounting portion being inserted into the third mounting groove and the fourth mounting portion being inserted into the fourth mounting groove.
[0035] As a further improved technical solution of the present invention, the inner side of the third wall portion is further provided with a fifth mounting groove that penetrates the mounting surface along the first direction, and the inner side of the fourth wall portion is further provided with a sixth mounting groove that penetrates the mounting surface along the first direction.
[0036] The third shielding plate assembly includes a third metal plate, the third metal plate including a fifth mounting portion located at one end of the third metal plate along the second direction and a sixth mounting portion located at the other end of the third metal plate along the second direction, the fifth mounting portion being inserted into the fifth mounting groove and the sixth mounting portion being inserted into the sixth mounting groove.
[0037] As a further improvement of the present invention, the fifth mounting part is provided with a first locking spring arm, and the sixth mounting part is provided with a second locking spring arm;
[0038] The fifth mounting slot includes a first flared slot, and the first locking spring arm is locked in the first flared slot;
[0039] The sixth mounting slot includes a second flared slot, and the second locking spring arm is locked in the second flared slot.
[0040] As a further improved technical solution of the present invention, the inner side of the third wall portion is also provided with a seventh mounting groove that penetrates the mounting surface along the first direction, and the inner side of the fourth wall portion is also provided with an eighth mounting groove that penetrates the mounting surface along the first direction.
[0041] The fourth shielding plate assembly includes a fourth metal plate, the fourth metal plate including a seventh mounting portion located at one end of the fourth metal plate along the second direction and an eighth mounting portion located at the other end of the fourth metal plate along the second direction, the seventh mounting portion being inserted into the seventh mounting slot and the eighth mounting portion being inserted into the eighth mounting slot.
[0042] As a further improved technical solution of the present invention, the first shielding sheet assembly includes a first metal plate, the first metal plate includes a first main body, and the first main body is provided with a plurality of first retaining grooves extending downward through the first main body in the first direction.
[0043] The second shielding plate assembly includes a second metal plate, the second metal plate includes a second main body, and the second main body is provided with a plurality of second retaining grooves extending downward through the second main body in the first direction;
[0044] The third shielding plate assembly includes a third metal plate, the third metal plate includes a third main body, and the third main body is provided with a plurality of third retaining grooves extending upward through the third main body in the first direction.
[0045] The fourth shielding plate assembly includes a fourth metal plate, the fourth metal plate includes a fourth main body, and the fourth main body is provided with a plurality of fourth retaining grooves extending upward through the fourth main body along the first direction.
[0046] A first retaining groove of the first metal plate corresponds to a third retaining groove of the third metal plate, so that the first metal plate and the third metal plate can be inserted into each other;
[0047] The other first retaining groove of the first metal plate corresponds to the fourth retaining groove of the fourth metal plate, so that the first metal plate and the fourth metal plate can be inserted into each other;
[0048] One of the second retaining slots of the second metal plate corresponds to another third retaining slot of the third metal plate, so that the second metal plate and the third metal plate can be inserted into each other;
[0049] The second metal plate has another second retaining groove that corresponds to the fourth retaining groove of the fourth metal plate, so that the second metal plate and the fourth metal plate can be inserted into each other.
[0050] As a further improved technical solution of the present invention, the first main body is provided with a first interference protrusion extending into the first retaining groove, and the first interference protrusion abuts against the third main body and the fourth main body;
[0051] The second main body is provided with a second interference protrusion extending into the second retaining groove, and the second interference protrusion abuts against the third main body and the fourth main body;
[0052] The third main body is provided with a third interference protrusion extending into the third retaining groove, and the third interference protrusion abuts against the first main body and the second main body;
[0053] The fourth main body is provided with a fourth interference protrusion extending into the fourth retaining groove, and the fourth interference protrusion abuts against the first main body and the second main body.
[0054] As a further improved technical solution of the present invention, the first shielding plate assembly includes a first metal plate and a first metal spring plate disposed on the first metal plate. The first metal spring plate is provided with a first abutting spring arm protruding into the accommodating space. The first abutting spring arm is a simply supported beam or a cantilever beam.
[0055] Compared to existing technologies, the cable connector of the present invention includes a first stop bar inserted into the receiving housing. The first stop bar abuts against the cable module to prevent the cable module from detaching from the receiving housing, thereby improving the reliability of the cable connector. Furthermore, the connector assembly of the present invention includes a conductive mounting frame and a shielding assembly. The shielding assembly contacts the mounting frame, improving the overall shielding effect. The first shielding plate assembly and the second shielding plate assembly are both perpendicularly inserted into the third shielding plate assembly and the fourth shielding plate assembly to form a plurality of shielding units. This arrangement allows the present invention to increase density and improve signal transmission capability. Attached Figure Description
[0056] Figure 1 This is a perspective view of the connector assembly of the present invention in the first embodiment;
[0057] Figure 2 yes Figure 1 A three-dimensional diagram from another angle;
[0058] Figure 3 yes Figure 1 Partial exploded 3D diagram;
[0059] Figure 4 yes Figure 3 Exploded 3D view of the CEC connector, circuit board, and several fasteners;
[0060] Figure 5 yes Figure 4 A magnified view of part B circled in the middle;
[0061] Figure 6 yes Figure 4 Another perspective of the exploded 3D view;
[0062] Figure 7 yes Figure 6 A magnified view of the circled area C;
[0063] Figure 8 yes Figure 4 A top view of the electrical connector and the circuit board when they are separated.
[0064] Figure 9 yes Figure 8 A magnified view of part D within the middle frame;
[0065] Figure 10 yes Figure 8 A magnified view of part E within the middle frame;
[0066] Figure 11 yes Figure 8 A bottom view;
[0067] Figure 12 yes Figure 11 A magnified view of part F within the middle frame;
[0068] Figure 13 yes Figure 4 Partial exploded perspective view of the electrical connector described herein;
[0069] Figure 14 yes Figure 13 Another perspective of a partially exploded 3D view;
[0070] Figure 15 yes Figure 13 Top view of the mounting frame, shielding components, and several terminal modules;
[0071] Figure 16 yes Figure 15 A bottom view;
[0072] Figure 17 yes Figure 13 The shielding assembly and the plurality of terminal modules described herein are partially exploded perspective views, in which a first shielding plate assembly, a second shielding plate assembly, a third shielding plate assembly and a fourth shielding plate assembly are separated.
[0073] Figure 18 yes Figure 17 Another perspective of a partially exploded 3D view;
[0074] Figure 19 yes Figure 17 A further partial exploded perspective view shows that the first shielding plate assembly, the second shielding plate assembly, the third shielding plate assembly, and the fourth shielding plate assembly are exploded apart;
[0075] Figure 20 yes Figure 19 A partial enlarged view of the framed portion G in the first embodiment;
[0076] Figure 21 yes Figure 19 A partial enlarged view of the framed portion G in the second embodiment;
[0077] Figure 22 yes Figure 19 A partial enlarged view of the framed portion G in the third embodiment;
[0078] Figure 23 This is a schematic diagram of a first shielding plate assembly along a certain cross section in one embodiment;
[0079] Figure 24 This is a schematic diagram of the first shielding plate assembly along a certain cross section in another embodiment;
[0080] Figure 25 yes Figure 19 A magnified view of the framed portion H in one embodiment;
[0081] Figure 26 yes Figure 19 A partial enlarged view of the framed portion I in one embodiment;
[0082] Figure 27 yes Figure 19 A partial enlarged view of the framed portion J in one embodiment;
[0083] Figure 28 yes Figure 19 A 3D schematic diagram of a terminal module;
[0084] Figure 29 yes Figure 28 A three-dimensional diagram from another angle;
[0085] Figure 30 yes Figure 28 3D exploded view;
[0086] Figure 31 yes Figure 30 A three-dimensional exploded view from another angle;
[0087] Figure 32 It is along Figure 8 Schematic diagram of the cross section of the MM line;
[0088] Figure 33 It is along Figure 8 A schematic diagram of the cross section of the NN line;
[0089] Figure 34 yes Figure 32 A magnified view of the K section within the middle frame;
[0090] Figure 35 yes Figure 33 A magnified view of the middle frame section L;
[0091] Figure 36 yes Figure 3 A three-dimensional diagram of the cable connector from another angle;
[0092] Figure 37 yes Figure 36 A three-dimensional diagram from another angle;
[0093] Figure 38 yes Figure 37 Partial exploded 3D diagram;
[0094] Figure 39 yes Figure 38 Another perspective of a partially exploded 3D view;
[0095] Figure 40 yes Figure 38 A partial exploded 3D view of a set of cable modules;
[0096] Figure 41 yes Figure 40 Another perspective of a partially exploded 3D view;
[0097] Figure 42 yes Figure 40 An exploded 3D view of a cable module and a metal shielding surround.
[0098] Figure 43 yes Figure 42 Another perspective of the exploded 3D view;
[0099] Figure 44 This is a three-dimensional schematic diagram of a set of conductive terminals of a cable connector;
[0100] Figure 45 yes Figure 44 A three-dimensional diagram from another angle;
[0101] Figure 46 yes Figure 44 Another perspective of the 3D diagram;
[0102] Figure 47 yes Figure 46 Top view;
[0103] Figure 48 This is a top view of the electrical connector and cable connector after they are mated in the first embodiment of the present invention;
[0104] Figure 49 It is along Figure 48 A cross-sectional view of the OO line;
[0105] Figure 50 This is a partial exploded perspective view of the cable connector of the present invention in a second embodiment;
[0106] Figure 51 yes Figure 50 Another perspective of a partially exploded 3D view;
[0107] Figure 52 yes Figure 50 A partial exploded 3D view of a set of cable modules;
[0108] Figure 53 yes Figure 52 An exploded 3D view of a cable module and a metal shielding surround.
[0109] Figure 54 yes Figure 53 Another perspective of the exploded 3D view;
[0110] Figure 55 This is a perspective view of the connector assembly of the present invention in a third embodiment;
[0111] Figure 56 yes Figure 55 Partial exploded 3D diagram;
[0112] Figure 57 yes Figure 56 Another perspective of a partially exploded 3D view;
[0113] Figure 58 This is a perspective view of the connector assembly of the present invention in the fourth embodiment;
[0114] Figure 59 yes Figure 58 Partial exploded 3D diagram;
[0115] Figure 60 This is a perspective view of the connector assembly of the present invention in the fifth embodiment;
[0116] Figure 61 yes Figure 60 A three-dimensional diagram from another angle;
[0117] Figure 62 yes Figure 60 Partial exploded 3D diagram;
[0118] Figure 63 yes Figure 62 Partial 3D exploded view from another angle;
[0119] Figure 64 This is a perspective view of the connector assembly of the present invention in the sixth embodiment;
[0120] Figure 65 yes Figure 64 A three-dimensional diagram from another angle;
[0121] Figure 66 yes Figure 64 Partial exploded 3D diagram;
[0122] Figure 67 yes Figure 66 Partial 3D exploded view from another angle;
[0123] Figure 68 This is a perspective view of a cable module and a metal shielding surround in the seventh embodiment;
[0124] Figure 69 yes Figure 68 A three-dimensional diagram from another angle;
[0125] Figure 70 yes Figure 68 3D exploded view;
[0126] Figure 71 yes Figure 70 A three-dimensional exploded view from another angle;
[0127] Figure 72 This is a perspective view of a cable module and a metal shielding surround in the eighth embodiment;
[0128] Figure 73 yes Figure 72 A three-dimensional diagram from another angle. Detailed Implementation
[0129] The exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. If several embodiments exist, features in these embodiments may be combined with each other without conflict. When the description refers to the drawings, unless otherwise stated, the same numbers in different drawings represent the same or similar elements. The descriptions in the following exemplary embodiments do not represent all embodiments consistent with the present invention; rather, they are merely examples of apparatuses, products, and / or methods consistent with some aspects of the present invention as set forth in the claims.
[0130] The terminology used in this invention is for the purpose of describing particular embodiments only and is not intended to limit the scope of protection of this invention. The singular forms “a,” “the,” or “the” as used in the specification and claims of this invention are also intended to include the plural forms unless the context clearly indicates otherwise.
[0131] It should be understood that the terms "first," "second," and similar words used in the specification and claims of this invention do not indicate any order, quantity, or importance, but are merely used to distinguish features. Similarly, the terms "an" or "a" do not indicate a quantity limitation, but rather indicate the presence of at least one. Unless otherwise stated, the terms "before," "after," "upper," "lower," and similar words appearing in this invention are for ease of explanation only and are not limited to a specific location or spatial orientation. The terms "comprising" or "including" are an open-ended expression, meaning that the element preceding "comprising" or "including" encompasses the element following "comprising" or "including" and its equivalents, but this does not preclude the element preceding "comprising" or "including" from also including other elements. In this invention, the term "several" means two or more.
[0132] Please refer to Figures 1 to 36 As shown, this invention discloses a connector assembly including a circuit board 300, an electrical connector 100 mounted on the circuit board 300, and a cable connector 200 configured to mate with the electrical connector 100. In the illustrated embodiment, the electrical connector 100 is a board-end backplane connector, and the cable connector 200 is a cable-end backplane connector. Of course, those skilled in the art will understand that in other embodiments of this invention, the types of the electrical connector 100 and the cable connector 200 can be flexibly adjusted as needed. The cable connector 200 mates with the electrical connector 100 along the mating direction to achieve data transmission.
[0133] Please combine Figure 4 , Figure 8 as well as Figure 10As shown, the circuit board 300 includes a plurality of conductive sheets located on its surface (e.g., the upper surface). These conductive sheets are divided into several groups and arranged in a matrix along a second direction A2-A2 (e.g., left-right direction) and a third direction A3-A3 (e.g., front-back direction). Each group of conductive sheets includes a first ground conductive sheet GP1, a second ground conductive sheet GP2, a third ground conductive sheet GP3, a fourth ground conductive sheet GP4, a first signal conductive sheet SP1, and a second signal conductive sheet SP2. In the embodiment illustrated in the present invention, the first ground conductive sheet GP1, the second ground conductive sheet GP2, the third ground conductive sheet GP3, and the fourth ground conductive sheet GP4 generally form a frame, and any two adjacent ground conductive sheets among the first ground conductive sheet GP1, the second ground conductive sheet GP2, the third ground conductive sheet GP3, and the fourth ground conductive sheet GP4 are separated. That is, any two adjacent ground conductive sheets among the first ground conductive sheet GP1, the second ground conductive sheet GP2, the third ground conductive sheet GP3, and the fourth ground conductive sheet GP4 are disconnected. The first signal conductive sheet SP1 and the second signal conductive sheet SP2 are located within the frame and surrounded by the first ground conductive sheet GP1, the second ground conductive sheet GP2, the third ground conductive sheet GP3, and the fourth ground conductive sheet GP4 to improve shielding effectiveness and enhance signal transmission quality. In one embodiment of the invention, the first signal conductive sheet SP1 and the second signal conductive sheet SP2 form a differential pair to increase the signal transmission rate. In the embodiment illustrated in the invention, any two adjacent sets of conductive sheets share a single ground conductive sheet. For any set of first signal conductive sheets SP1 and second signal conductive sheets SP2, each set is surrounded by a first ground conductive sheet GP1, a second ground conductive sheet GP2, a third ground conductive sheet GP3, and a fourth ground conductive sheet GP4 to ensure effective shielding.
[0134] In addition, the circuit board 300 also includes a first mounting through hole 301, a second mounting through hole 302, a first positioning hole 303, and a second positioning hole 304. In the embodiment illustrated in the present invention, the first mounting through hole 301, the second mounting through hole 302, the first positioning hole 303, and the second positioning hole 304 all penetrate the circuit board 300 along its thickness direction. The first mounting through hole 301, the second mounting through hole 302, the first positioning hole 303, and the second positioning hole 304 are all located on the outer side of the conductive sheet.
[0135] Please combine Figure 2 as well as Figure 4As shown in the illustrated embodiment of the present invention, the connector assembly includes a plurality of fasteners for securing the electrical connector 100 to the circuit board 300. The fasteners include a first bolt 401 and a second bolt 402. The first bolt 401 passes through a first mounting through-hole 301 and is secured in the electrical connector 100, and the second bolt 402 passes through a second mounting through-hole 302 and is secured in the electrical connector 100.
[0136] Please combine Figures 13 to 35 As shown in the illustrated embodiment of the present invention, the electrical connector 100 includes a mounting frame 1, a shielding assembly 2 mounted on the mounting frame 1, and a plurality of terminal modules 3 mounted in the shielding assembly 2.
[0137] In one embodiment of the present invention, the mounting frame 1 is a conductive mounting frame. Specifically, in one embodiment of the present invention, the mounting frame 1 is a metal mounting frame, that is, the mounting frame 1 is made of metal material to improve shielding performance. The mounting frame 1 includes a mating surface 1a (e.g., an upper surface) and a mounting surface 1b (e.g., a lower surface) opposite to the mating surface 1a. The mounting frame 1 is generally a hollow rectangle, and includes a first wall portion 11, a second wall portion 12 opposite to the first wall portion 11, a third wall portion 13 connecting one end of the first wall portion 11 and one end of the second wall portion 12, a fourth wall portion 14 connecting the other end of the first wall portion 11 and the other end of the second wall portion 12, and a mounting space 10 formed by the first wall portion 11, the second wall portion 12, the third wall portion 13, and the fourth wall portion 14.
[0138] In the embodiment illustrated in the present invention, the mounting frame 1 further includes a first positioning protrusion 111 protruding upward from the first wall portion 11 along a first direction A1-A1 (e.g., vertical direction). In the embodiment illustrated in the present invention, the first positioning protrusion 111 is integrally formed with the first wall portion 11 to increase structural strength. Specifically, in the embodiment illustrated in the present invention, the first positioning protrusion 111 is generally U-shaped and includes a first guide groove 1111 penetrating the first wall portion 11 along the first direction A1-A1.
[0139] The mounting frame 1 further includes a second positioning protrusion 121 and a third positioning protrusion 122 protruding upward from the second wall portion 12 along the first direction A1-A1. In the illustrated embodiment of the present invention, the second positioning protrusion 121 and the third positioning protrusion 122 are spaced apart along the second direction A2-A2. In the illustrated embodiment of the present invention, both the second positioning protrusion 121 and the third positioning protrusion 122 are integrally formed with the second wall portion 12 to increase structural strength. Specifically, in the illustrated embodiment of the present invention, the second positioning protrusion 121 is generally U-shaped and includes a second guide groove 1211 penetrating the second wall portion 12 along the first direction A1-A1. Similarly, the third positioning protrusion 122 is also generally U-shaped and includes a third guide groove 1221 penetrating the second wall portion 12 along the first direction A1-A1. Those skilled in the art will understand that by providing a first positioning protrusion 111 on the first wall portion 11 and a second positioning protrusion 121 and a third positioning protrusion 122 on the second wall portion 12, a foolproof function can be achieved to ensure the correctness of the mating with the cable connector 200.
[0140] In the illustrated embodiment of the present invention, the mounting frame 1 further includes a first fastening hole 151 and a first mounting hole 161 located at one corner, and a second fastening hole 152 and a second mounting hole 162 located at the other corner. In the illustrated embodiment of the present invention, the corner where the first fastening hole 151 and the first mounting hole 161 are located and the corner where the second fastening hole 152 and the second mounting hole 162 are located are approximately two diagonal corners on the mounting frame 1. In the illustrated embodiment of the present invention, the first fastening hole 151, the second fastening hole 152, the first mounting hole 161, and the second mounting hole 162 are all threaded holes. When the mounting frame 1 is made of metal, providing the threaded holes is beneficial for ensuring the reliability of fastening, improving the convenience of installation, and reducing the height. The first bolt 401 passes through the first mounting through hole 301 and is fixed in the first fastening hole 151 of the electrical connector 100, and the second bolt 402 passes through the second mounting through hole 302 and is fixed in the second fastening hole 152 of the electrical connector 100. With this configuration, the present invention is beneficial to improving the installation strength when the electrical connector 100 is fixed to the circuit board 300.
[0141] In the embodiment illustrated in the present invention, the mounting frame 1 further includes a plurality of mounting protrusions 17 protruding downward from the mounting surface 1b along the first direction A1-A1. The mounting protrusions 17 are used to support the circuit board 300, creating a gap between the mounting surface 1b and the upper surface of the circuit board 300 to facilitate heat dissipation. In the embodiment illustrated in the present invention, a thin film 171 is provided on the mounting protrusions 17, and the thin film 171 is sandwiched between the mounting protrusions 17 and the circuit board 300 to reduce the risk of damage to the circuit board 300.
[0142] In the embodiment illustrated in the present invention, the mounting frame 1 further includes a first positioning protrusion 181 and a second positioning protrusion 182 protruding downward along the first direction A1-A1 from the mounting surface 1b. The first positioning protrusion 181 and the second positioning protrusion 182 are respectively used to insert into the first positioning hole 303 and the second positioning hole 304 of the circuit board 300.
[0143] In addition, the mounting frame 1 also includes a plurality of first escape holes 130 penetrating the third wall portion 13 along the first direction A1-A1 and a plurality of second escape holes 140 penetrating the fourth wall portion 14 along the first direction A1-A1. The first escape holes 130 and the second escape holes 140 are all connected to the gap to facilitate heat dissipation.
[0144] In the embodiment illustrated in the present invention, the inner side of the first wall portion 11 is further provided with a plurality of first mounting grooves 1101 extending downward along the first direction A1-A1 through the mounting surface 1b, and a plurality of third mounting grooves 1102 extending downward along the first direction A1-A1 through the mounting surface 1b. Both the first mounting grooves 1101 and the third mounting grooves 1102 are exposed in and communicate with the mounting space 10. The first mounting grooves 1101 and the third mounting grooves 1102 are arranged alternately along the second direction A2-A2. Each first mounting groove 1101 and each third mounting groove 1102 does not extend upward along the first direction A1-A1 through the mating surface 1a, in order to ensure the structural strength of the first wall portion 11 as much as possible.
[0145] Similarly, the inner side of the second wall portion 12 is also provided with a plurality of second mounting grooves 1201 extending downward along the first direction A1-A1 through the mounting surface 1b, and a plurality of fourth mounting grooves 1202 extending downward along the first direction A1-A1 through the mounting surface 1b. Both the second mounting grooves 1201 and the fourth mounting grooves 1202 are exposed in and communicate with the mounting space 10. The second mounting grooves 1201 and the fourth mounting grooves 1202 are arranged alternately along the second direction A2-A2. Each second mounting groove 1201 and each fourth mounting groove 1202 does not extend upward along the first direction A1-A1 through the mating surface 1a, in order to ensure the structural strength of the second wall portion 12 as much as possible.
[0146] The inner side of the third wall portion 13 is further provided with a plurality of fifth mounting grooves 1301 extending downward along the first direction A1-A1 through the mounting surface 1b, and a plurality of seventh mounting grooves 1302 extending downward along the first direction A1-A1 through the mounting surface 1b. Both the fifth mounting grooves 1301 and the seventh mounting grooves 1302 are exposed in and communicate with the mounting space 10. The fifth mounting grooves 1301 and the seventh mounting grooves 1302 are arranged alternately along the third direction A3-A3. Each fifth mounting groove 1301 and each seventh mounting groove 1302 does not extend upward along the first direction A1-A1 through the mating surface 1a, in order to ensure the structural strength of the third wall portion 13 as much as possible. In the illustrated embodiment of the present invention, each fifth mounting slot 1301 and each seventh mounting slot 1302 includes a first slot 13011 penetrating the mounting surface 1b, a first flared slot 13012 communicating with the first slot 13011, and a second slot 13013 communicating with the first flared slot 13012. The first slot 13011, the first flared slot 13012, and the second slot 13013 are arranged sequentially along the first direction A1-A1, that is, the first flared slot 13012 is located between the first slot 13011 and the second slot 13013 along the first direction A1-A1. In the illustrated embodiment of the present invention, the width of the first flared slot 13012 along the third direction A3-A3 is greater than the width of the first slot 13011 along the third direction A3-A3, and also greater than the width of the second slot 13013 along the third direction A3-A3.
[0147] Similarly, the inner side of the fourth wall portion 14 is also provided with a plurality of sixth mounting grooves 1401 extending downward along the first direction A1-A1 through the mounting surface 1b, and a plurality of eighth mounting grooves 1402 extending downward along the first direction A1-A1 through the mounting surface 1b. Both the sixth mounting grooves 1401 and the eighth mounting grooves 1402 are exposed in and communicate with the mounting space 10. The sixth mounting grooves 1401 and the eighth mounting grooves 1402 are arranged alternately along the third direction A3-A3. Each sixth mounting groove 1401 and each eighth mounting groove 1402 does not extend upward along the first direction A1-A1 through the mating surface 1a, in order to ensure the structural strength of the fourth wall portion 14 as much as possible. In the illustrated embodiment of the present invention, each sixth mounting slot 1401 and each eighth mounting slot 1402 includes a third slot 14011 penetrating the mounting surface 1b, a second flared slot 14012 communicating with the third slot 14011, and a fourth slot 14013 communicating with the second flared slot 14012. The third slot 14011, the second flared slot 14012, and the fourth slot 14013 are arranged sequentially along the first direction A1-A1, that is, the second flared slot 14012 is located between the third slot 14011 and the fourth slot 14013 along the first direction A1-A1. In the illustrated embodiment of the present invention, the width of the second flared slot 14012 along the third direction A3-A3 is greater than the width of the third slot 14011 along the third direction A3-A3, and also greater than the width of the fourth slot 14013 along the third direction A3-A3.
[0148] In the embodiment illustrated in the present invention, neither the first mounting groove 1101 nor the third mounting groove 1102 extends laterally outward through the first wall portion 11; neither the second mounting groove 1201 nor the fourth mounting groove 1202 extends laterally outward through the second wall portion 12; neither the fifth mounting groove 1301 nor the seventh mounting groove 1302 extends laterally outward through the third wall portion 13; and neither the sixth mounting groove 1401 nor the eighth mounting groove 1402 extends laterally outward through the fourth wall portion 14. With this configuration, the present invention can minimize openings, improve the shielding effect, and enhance the quality of signal transmission.
[0149] Please combine Figures 13 to 35As shown in the illustrated embodiment of the present invention, the shielding assembly 2 includes a plurality of first shielding sheet assemblies 21 and a plurality of second shielding sheet assemblies 22 alternately arranged along the second direction A2-A2, and a plurality of third shielding sheet assemblies 23 and a plurality of fourth shielding sheet assemblies 24 alternately arranged along the third direction A3-A3. The plurality of first shielding sheet assemblies 21 and the plurality of second shielding sheet assemblies 22 are interlocked with the third shielding sheet assemblies 23 and the fourth shielding sheet assemblies 24 to form a plurality of shielding units 20 arranged in a generally matrix-like manner. The terminal module 3 is installed in the corresponding shielding unit 20. Those skilled in the art will understand that the technical term "matrix" used in this invention should be interpreted broadly, that is, it should include non-rowed arrangements caused by manufacturing processes or slight modifications.
[0150] Specifically, in the embodiment illustrated in the present invention, the first shielding plate assembly 21 includes a first metal plate 211 and a first metal spring 212 fixed to the first metal plate 211. In the embodiment illustrated in the present invention, the first metal spring 212 is welded or riveted to at least the inner side of the first metal plate 211.
[0151] Please combine Figure 19 as well as Figure 20 As shown, the first metal plate 211 includes a first main body portion 2111, a plurality of first welding portions 2112 integrally extending downward from the first main body portion 2111 along the first direction A1-A1, a first extension portion 2113 integrally extending upward from the first main body portion 2111 along the first direction A1-A1, a first mounting portion 2114 connected to the first main body portion 2111 and located at one end of the first metal plate 211 along the third direction A3-A3, and a second mounting portion 2115 connected to the first main body portion 2111 and located at the other end of the first metal plate 2111 along the third direction A3-A3. The first main body portion 2111 is provided with a plurality of first retaining grooves 21111 extending downward through the first main body portion 2111. The first main body portion 2111 is also provided with a plurality of first interference protrusions 21112 spaced apart along the first direction A1-A1 and protruding into the first retaining grooves 21111. By providing the first interference protrusions 21112, it is beneficial to increase the interference force.
[0152] Please combine Figure 19 , Figure 20 as well as Figure 34As shown in the illustrated embodiment of the present invention, the first welded portion 2112 is thinner than the first main body portion 2111. Specifically, the first main body portion 2111 includes a first inner side surface 2111a and a first outer side surface 2111b opposite to the first inner side surface 2111a. The distance between the first inner side surface 2111a and the first outer side surface 2111b is equal to the thickness of the first main body portion 2111. The first welded portion 2112 includes a first inner surface 2112a and a first outer surface 2112b opposite to the first inner surface 2112a. The distance between the first inner surface 2112a and the first outer surface 2112b is equal to the thickness of the first welded portion 2112. Along the thickness direction of the first metal plate 211, the first inner surface 2112a is located outside the first inner side surface 2111a. In other words, the first metal plate 211 includes a first stepped surface 2111c located between the first inner surface 2112a and the first inner side surface 2111a. Along the thickness direction of the first metal plate 211, the first outer surface 2112b is located inside the first outer side surface 2111b. In other words, the first metal plate 211 includes a second stepped surface 2111d located between the first outer surface 2112b and the first outer side surface 2111b. By providing the first stepped surface 2111c and / or the second stepped surface 2111d, it is beneficial to reduce the risk of solder creep during soldering, improve soldering quality, and reduce the probability of short circuits. Please refer to... Figure 20 As shown in the illustrated embodiment of the present invention, the first welding part 2112 is provided with a first ventilation groove 2112c at its bottom, so that when the product passes through the reflow soldering furnace, the heat can be transferred to the middle area of the electrical connector 100, thereby making the entire area heated evenly and improving the welding quality.
[0153] The first extension 2113 is provided with a first notch 21131 recessed downward along the first direction A1-A1, a first groove 21132 located on one side of the first notch 21131 along the third direction A3-A3, and a second groove 21133 located on the other side of the first notch 21131 along the third direction A3-A3. The first groove 21132 and the second groove 21133 are both generally arc-shaped and are both connected to the first notch 21131.
[0154] The first metal spring 212 includes a first base 2121 and a first protrusion 2122 protruding upward from the first base 2121 along the first direction A1-A1. The first base 2121 has a first opening 21211 extending through the first base 2121 along its thickness direction and a first abutting spring arm 21212 protruding into the first opening 21211 along the first direction A1-A1. The root of the first abutting spring arm 21212 extends integrally with the first base 2121 or the first protrusion 2122. The other end of the first abutting spring arm 21212 opposite to its root is a movable end. In other words, the first abutting spring arm 21212 extends from top to bottom along the first direction A1-A1. With this configuration, the first abutting spring arm 21212 can guide the cable connector 200 when it is inserted into the electrical connector 100; on the other hand, it can also reduce the insertion force of the cable connector 200. The first abutting spring arm 21212 in the free state includes a first abutting portion 21213 that protrudes from the first base 2121 along the thickness direction of the first base 2121.
[0155] Please combine Figure 22 As shown, in the first embodiment of the present invention, there is one first abutment arm 21212 corresponding to one first opening 21211.
[0156] Please combine Figure 21 As shown, in the second embodiment of the present invention, corresponding to a first opening 21211, there are two first abutting spring arms 21212, and the movable ends of the two first abutting spring arms 21212 are separated from each other.
[0157] Please combine Figure 20 As shown, in the third embodiment of the present invention, corresponding to a first opening 21211, there are two first abutting spring arms 21212, and the first base 2121 is provided with a first connecting portion 21214 that connects the movable ends of the two first abutting spring arms 21212 together.
[0158] Please combine Figure 24 As shown, in one embodiment of the present invention, in the free state, the movable end of the first abutment spring arm 21212 abuts against the first inner surface 2111a of the first metal plate 211, that is, the first abutment spring arm 21212 is a simply supported beam. Those skilled in the art will understand that designing the first abutment spring arm 21212 as a simply supported beam is beneficial for increasing the insertion and extraction force of the cable connector 200, improving docking reliability, and effectively reducing resonance problems. Of course, in other embodiments of the present invention, both ends of the first abutment spring arm 21212, which is a simply supported beam, can be fixed ends.
[0159] Please combine Figure 23 As shown, in another embodiment of the present invention, in the free state, the movable end of the first abutment elastic arm 21212 does not abut against the first inner surface 2111a of the first metal plate 211, that is, the first abutment elastic arm 21212 is a cantilever beam. Those skilled in the art will understand that designing the first abutment elastic arm 21212 as a cantilever beam helps reduce the insertion and extraction force of the cable connector 200, thereby facilitating insertion of the cable connector 200. When the cable connector 200 is inserted, the first abutting portion 21213 of the first abutment elastic arm 21212 is compressed by the cable connector 200 and undergoes elastic deformation. At this time, the movable end of the first abutment elastic arm 21212 abuts against the first inner surface 2111a of the first metal plate 211, forming a simply supported beam shape, thereby reducing resonance problems.
[0160] In the embodiment illustrated in the present invention, the first base 2121 has a plurality of first recesses 21216 at its bottom along the first direction A1-A1. The bottom of the first base 2121 is approximately flush with the bottom of the first main body 2111. The first welded portion 2112 protrudes downward from the first base 2121 along the first direction A1-A1.
[0161] In the embodiment illustrated in the present invention, the width of the first protrusion 2122 along the third direction A3-A3 is smaller than the width of the first base 2121 along the third direction A3-A3. The first protrusion 2122 is obliquely disposed to form a guide surface, and the first protrusion 2122 is at least partially received in the first notch 21131.
[0162] Please combine Figure 25 As shown, specifically in the illustrated embodiment of the present invention, the second shielding plate assembly 22 includes a second metal plate 221 and a second metal spring 222 fixed to the second metal plate 221. In the illustrated embodiment of the present invention, the second metal spring 222 is welded or riveted to at least the inner side of the second metal plate 221.
[0163] The second metal plate 221 includes a second main body 2211, a plurality of second welding portions 2212 integrally extending downward from the second main body 2211 along the first direction A1-A1, a second extension portion 2213 integrally extending upward from the second main body 2211 along the first direction A1-A1, a third mounting portion 2214 connected to the second main body 2211 and located at one end of the second metal plate 221 along the third direction A3-A3, and a fourth mounting portion 2215 connected to the second main body 2211 and located at the other end of the second metal plate 221 along the third direction A3-A3. The second main body 2211 is provided with a plurality of second retaining grooves 22111 extending downward through the second main body 2211. The second main body 2211 is also provided with a plurality of second interference protrusions 22112 spaced apart along the first direction A1-A1 and protruding into the second retaining grooves 22111. By providing the second interference protrusions 22112, it is beneficial to increase the interference force.
[0164] Please combine Figure 34 As shown in the illustrated embodiment of the present invention, the second weld portion 2212 is thinner than the second main body portion 2211. Specifically, the second main body portion 2211 includes a second inner side surface 2211a and a second outer side surface 2211b opposite to the second inner side surface 2211a. The distance between the second inner side surface 2211a and the second outer side surface 2211b is equal to the thickness of the second main body portion 2211. The second weld portion 2212 includes a second inner surface 2212a and a second outer surface 2212b opposite to the second inner surface 2212a. The distance between the second inner surface 2212a and the second outer surface 2212b is equal to the thickness of the second weld portion 2212. Along the thickness direction of the second metal sheet 221, the second inner surface 2212a is located outside the second inner side surface 2211a. In other words, the second metal sheet 221 includes a third stepped surface 2211c located between the second inner surface 2212a and the second inner side surface 2211a. Along the thickness direction of the second metal plate 221, the second outer surface 2212b is located inside the second outer side surface 2211b. In other words, the second metal plate 221 includes a fourth stepped surface 2211d located between the second outer surface 2212b and the second outer side surface 2211b. By providing the third stepped surface 2211c and / or the fourth stepped surface 2211d, it is beneficial to reduce the risk of solder creep during soldering, improve soldering quality, and reduce the probability of short circuits. Please refer to... Figure 25As shown in the illustrated embodiment of the present invention, the second welding part 2212 is provided with a second venting groove 2212c at its bottom, so that when the product passes through the reflow soldering furnace, the heat can be transferred to the middle area of the electrical connector 100, thereby making the entire area heated evenly and improving the welding quality.
[0165] The second extension 2213 is provided with a second notch 22131 recessed downward along the first direction A1-A1, a third groove 22132 located on one side of the second notch 22131 along the third direction A3-A3, and a fourth groove 22133 located on the other side of the second notch 22131 along the third direction A3-A3. The third groove 22132 and the fourth groove 22133 are both generally arc-shaped and are both connected to the second notch 22131.
[0166] The second metal spring 222 includes a body portion 2221 and a second protrusion 2222 protruding upward from the body portion 2221 along the first direction A1-A1. The body portion 2221 has a second opening 22211 penetrating the body portion 2221 along its thickness direction and a second abutting spring arm 22212 protruding into the second opening 22211 along the first direction A1-A1. The root of the second abutting spring arm 22212 extends integrally with the body portion 2221 or the second protrusion 2222. The other end of the second abutting spring arm 22212 opposite to its root is a movable end. In other words, the second abutting spring arm 22212 extends from top to bottom along the first direction A1-A1. With this configuration, the second abutting spring arm 22212 can guide the cable connector 200 when it is inserted into the electrical connector 100; on the other hand, it can also reduce the insertion force of the cable connector 200. The second abutting arm 22212, in its free state, includes a second abutting portion 22213 that protrudes from the body portion 2221 along the thickness direction of the body portion 2221.
[0167] Please compare Figures 20 to 22 The first metal spring 212 has three embodiments, which will be understood by those skilled in the art. In the first embodiment of the present invention, there is one second abutment arm 22212 corresponding to one second opening 22211. In the second embodiment of the present invention, there are two second abutment arms 22212 corresponding to one second opening 22211, and the movable ends of the two second abutment arms 22212 are separated from each other. In the third embodiment of the present invention, there are two second abutment arms 22212 corresponding to one second opening 22211, and the body portion 2221 is provided with a second connecting portion 22214 that connects the movable ends of the two second abutment arms 22212 together.
[0168] Please compare Figure 23 as well as Figure 24 In one embodiment of the invention, the movable end of the second abutment spring arm 22212 abuts against the second inner surface 2211a of the second metal plate 221 in its free state, meaning the second abutment spring arm 22212 is a simply supported beam. Those skilled in the art will understand that designing the second abutment spring arm 22212 as a simply supported beam increases the insertion and extraction force of the cable connector 200, improves docking reliability, and effectively reduces resonance problems. Of course, in other embodiments of the invention, both ends of the simply supported beam second abutment spring arm 22212 can be fixed ends.
[0169] In another embodiment of the present invention, in the free state, the movable end of the second abutment arm 22212 does not abut against the second inner surface 2211a of the second metal plate 221, that is, the second abutment arm 22212 is a cantilever beam. Those skilled in the art will understand that designing the second abutment arm 22212 as a cantilever beam helps reduce the insertion and extraction force of the cable connector 200, thereby facilitating insertion. When the cable connector 200 is inserted, the second abutment portion 22213 of the second abutment arm 22212 is compressed by the cable connector 200 and undergoes elastic deformation. At this time, the movable end of the second abutment arm 22212 abuts against the second inner surface 2211a of the second metal plate 221, forming a simply supported beam shape, thereby reducing resonance problems.
[0170] In the embodiment illustrated in the present invention, the body portion 2221 has a plurality of second recesses 22216 at its bottom along the first direction A1-A1. The bottom of the body portion 2221 is approximately flush with the bottom of the second main body portion 2211. The second welding portion 2212 protrudes downward from the body portion 2221 along the first direction A1-A1.
[0171] In the illustrated embodiment of the present invention, the width of the second protrusion 2222 along the third direction A3-A3 is smaller than the width of the body portion 2221 along the third direction A3-A3. The second protrusion 2222 is obliquely disposed to form a guide surface, and the second protrusion 2222 is at least partially received in the second notch 22131.
[0172] Please combine Figure 26As shown, specifically in the illustrated embodiment of the present invention, the third shielding plate assembly 23 includes a third metal plate 231 and a third metal spring 232 fixed to the third metal plate 231. In the illustrated embodiment of the present invention, the third metal spring 232 is welded or riveted to at least the inner side of the third metal plate 231.
[0173] The third metal plate 231 includes a third main body 2311, a plurality of third welding portions 2312 integrally extending downward from the third main body 2311 along the first direction A1-A1, a third extension portion 2313 integrally extending upward from the third main body 2311 along the first direction A1-A1, a fifth mounting portion 2314 connected to the third main body 2311 and located at one end of the third metal plate 231 along the third direction A3-A3, and a sixth mounting portion 2315 connected to the third main body 2311 and located at the other end of the third metal plate 231 along the third direction A3-A3. In the embodiment illustrated in the present invention, the fifth mounting portion 2314 is provided with a first locking spring arm 2314a, and the sixth mounting portion 2315 is provided with a second locking spring arm 2315a. Both the first locking spring arm 2314a and the second locking spring arm 2315a are configured to lock onto the mounting frame 1 to prevent the shielding component 2 from falling off the mounting frame 1. The third main body 2311 is provided with a plurality of third retaining grooves 23111 extending upward through the third main body 2311. The third main body 2311 is also provided with a plurality of third interference protrusions 23112 spaced along the first direction A1-A1 and protruding into the third retaining grooves 23111. The provision of the third interference protrusions 23112 helps to increase the interference force.
[0174] Please combine Figure 35As shown in the illustrated embodiment of the present invention, the third welding portion 2312 is thinner than the third main body portion 2311. Specifically, the third main body portion 2311 includes a third inner side surface 2311a and a third outer side surface 2311b opposite to the third inner side surface 2311a. The distance between the third inner side surface 2311a and the third outer side surface 2311b is equal to the thickness of the third main body portion 2311. The third welding portion 2312 includes a third inner surface 2312a and a third outer surface 2312b opposite to the third inner surface 2312a. The distance between the third inner surface 2312a and the third outer surface 2312b is equal to the thickness of the third welding portion 2312. Along the thickness direction of the third metal plate 231, the third inner surface 2312a is located outside the third inner side surface 2311a. In other words, the third metal plate 231 includes a fifth stepped surface 2311c located between the third inner surface 2312a and the third inner side surface 2311a. Along the thickness direction of the third metal plate 231, the third outer surface 2312b is located inside the third outer side surface 2311b. In other words, the third metal plate 231 includes a sixth stepped surface 2311d located between the third outer surface 2312b and the third outer side surface 2311b. By providing the fifth stepped surface 2311c and / or the sixth stepped surface 2311d, it is beneficial to reduce the risk of solder creep during soldering, improve soldering quality, and reduce the probability of short circuits. In the embodiment illustrated in the present invention, the third soldering part 2312 is provided with a third venting groove 2312c located at its bottom, so that when the product passes through the reflow soldering oven, heat can be transferred to the middle area of the electrical connector 100, thereby making the entire area heated evenly and improving soldering quality.
[0175] The third extension 2313 is provided with a third notch 23131 recessed downward along the first direction A1-A1, a fifth groove 23132 located on one side of the third notch 23131 along the third direction A3-A3, and a sixth groove 23133 located on the other side of the third notch 23131 along the third direction A3-A3. The fifth groove 23132 and the sixth groove 23133 are both generally arc-shaped and are connected to the third notch 23131.
[0176] The third metal spring 232 includes a third base 2321 and a third protrusion 2322 that protrudes upward from the third base 2321 along the first direction A1-A1. The third base 2321 has a third opening 23211 that penetrates the third base 2321 along its thickness direction and a third abutting spring arm 23212 that protrudes into the third opening 23211 along the first direction A1-A1. The root of the third abutting spring arm 23212 extends integrally with the third base 2321 or the third protrusion 2322. The other end of the third abutting spring arm 23212 opposite to its root is a movable end. In other words, the third abutting spring arm 23212 extends from top to bottom along the first direction A1-A1. With this configuration, the third abutment spring arm 23212 can guide the cable connector 200 when it is inserted into the electrical connector 100, and also reduce the insertion force of the cable connector 200. In its free state, the third abutment spring arm 23212 includes a third abutment portion 23213 that protrudes from the third base 2321 along its thickness direction.
[0177] Please compare Figures 20 to 22 The first metal spring 212 has three embodiments, which will be understood by those skilled in the art. In the first embodiment of the present invention, there is one third abutment spring arm 23212 corresponding to one third opening 23211. In the second embodiment of the present invention, there are two third abutment spring arms 23212 corresponding to one third opening 23211, and the movable ends of the two third abutment spring arms 23212 are separated from each other. In the third embodiment of the present invention, there are two third abutment spring arms 23212 corresponding to one third opening 23211, and the third base 2321 is provided with a third connecting portion that connects the movable ends of the two third abutment spring arms 23212 together.
[0178] Please compare Figure 23 as well as Figure 24 In one embodiment of the invention, the movable end of the third abutment spring arm 23212 abuts against the third inner surface 2311a of the third metal plate 231 in its free state, meaning the third abutment spring arm 23212 is a simply supported beam. Those skilled in the art will understand that designing the third abutment spring arm 23212 as a simply supported beam increases the insertion and extraction force of the cable connector 200, improves docking reliability, and effectively reduces resonance problems. Of course, in other embodiments of the invention, both ends of the simply supported beam third abutment spring arm 23212 can be fixed ends.
[0179] In another embodiment of the present invention, in the free state, the movable end of the third abutment spring arm 23212 does not abut against the third inner surface 2311a of the third metal plate 231, that is, the third abutment spring arm 23212 is a cantilever beam. Those skilled in the art will understand that designing the third abutment spring arm 23212 as a cantilever beam helps reduce the insertion and extraction force of the cable connector 200, thereby facilitating insertion. When the cable connector 200 is inserted, the third abutment portion 23213 of the third abutment spring arm 23212 is compressed by the cable connector 200 and undergoes elastic deformation. At this time, the movable end of the third abutment spring arm 23212 abuts against the third inner surface 2311a of the third metal plate 231, forming a simply supported beam shape, thereby reducing resonance problems.
[0180] In one embodiment of the present invention, the third base 2321 is further provided with a first limiting protrusion 23215 integrally stamped from the third base 2321.
[0181] In the embodiment illustrated in the present invention, the third base 2321 has a plurality of third recesses 23216 at its bottom along the first direction A1-A1. The bottom of the third base 2321 is approximately flush with the bottom of the third main body 2311. The third welding portion 2312 protrudes downward from the third base 2321 along the first direction A1-A1.
[0182] In the embodiment illustrated in the present invention, the width of the third protrusion 2322 along the third direction A3-A3 is smaller than the width of the third base 2321 along the third direction A3-A3. The third protrusion 2322 is obliquely disposed to form a guide surface, and the third protrusion 2322 is at least partially received in the third notch 23131.
[0183] Please combine Figure 27 As shown, similarly, specifically, in the illustrated embodiment of the present invention, the fourth shielding plate assembly 24 includes a fourth metal plate 241 and a fourth metal spring 242 fixed to the fourth metal plate 241. In the illustrated embodiment of the present invention, the fourth metal spring 242 is welded or riveted to at least the inner side of the fourth metal plate 241.
[0184] The fourth metal plate 241 includes a fourth main body 2411, a plurality of fourth welding portions 2412 integrally extending downward from the fourth main body 2411 along the first direction A1-A1, a fourth extension portion 2413 integrally extending upward from the fourth main body 2411 along the first direction A1-A1, a seventh mounting portion 2414 connected to the fourth main body 2411 and located at one end of the fourth metal plate 241 along the third direction A3-A3, and an eighth mounting portion 2415 connected to the fourth main body 2411 and located at the other end of the fourth metal plate 241 along the third direction A3-A3. In the embodiment illustrated in the present invention, the seventh mounting portion 2414 is provided with a third locking spring arm 2414a, and the eighth mounting portion 2415 is provided with a fourth locking spring arm 2415a. The third locking spring arm 2414a and the fourth locking spring arm 2415a are both configured to lock with the mounting frame 1 to prevent the shielding component 2 from falling off the mounting frame 1. The fourth main body 2411 is provided with a plurality of fourth retaining grooves 24111 extending upward through the fourth main body 2411. The fourth main body 2411 is also provided with a plurality of fourth interference protrusions 24112 spaced along the first direction A1-A1 and protruding into the fourth retaining grooves 24111. By providing the fourth interference protrusions 24112, it is beneficial to increase the interference force.
[0185] Please combine Figure 35As shown in the illustrated embodiment of the present invention, the fourth weld portion 2412 is thinner than the fourth main body portion 2411. Specifically, the fourth main body portion 2411 includes a fourth inner side surface 2411a and a fourth outer side surface 2411b opposite to the fourth inner side surface 2411a. The distance between the fourth inner side surface 2411a and the fourth outer side surface 2411b is equal to the thickness of the fourth main body portion 2411. The fourth weld portion 2412 includes a fourth inner surface 2412a and a fourth outer surface 2412b opposite to the fourth inner surface 2412a. The distance between the fourth inner surface 2412a and the fourth outer surface 2412b is equal to the thickness of the fourth weld portion 2412. Along the thickness direction of the fourth metal plate 241, the fourth inner surface 2412a is located outside the fourth inner side surface 2411a. In other words, the fourth metal plate 241 includes a seventh stepped surface 2411c located between the fourth inner surface 2412a and the fourth inner side surface 2411a. Along the thickness direction of the fourth metal plate 241, the fourth outer surface 2412b is located inside the fourth outer side surface 2411b. In other words, the fourth metal plate 241 includes an eighth stepped surface 2411d located between the fourth outer surface 2412b and the fourth outer side surface 2411b. By providing the seventh stepped surface 2411c and / or the eighth stepped surface 2411d, it is beneficial to reduce the risk of solder creep during soldering, improve soldering quality, and reduce the probability of short circuits. In the embodiment illustrated in the present invention, the fourth soldering part 2412 is provided with a fourth venting groove 2412c located at its bottom, so that when the product passes through the reflow soldering oven, heat can be transferred to the middle area of the electrical connector 100, thereby making the entire area heated evenly and improving soldering quality.
[0186] The fourth extension 2413 is provided with a fourth notch 24131 recessed downward along the first direction A1-A1, a seventh groove 24132 located on one side of the fourth notch 24131 along the third direction A3-A3, and an eighth groove 24133 located on the other side of the fourth notch 24131 along the third direction A3-A3. The seventh groove 24132 and the eighth groove 24133 are both generally arc-shaped and are both connected to the fourth notch 24131.
[0187] The fourth metal spring 242 includes a fourth base 2421 and a fourth protrusion 2422 protruding upward from the fourth base 2421 along the first direction A1-A1. The fourth base 2421 has a fourth opening 24211 penetrating through the fourth base 2421 along its thickness direction and a fourth abutting spring arm 24212 protruding into the fourth opening 24211 along the first direction A1-A1. The root of the fourth abutting spring arm 24212 extends integrally with the fourth base 2421 or the fourth protrusion 2422. The other end of the fourth abutting spring arm 24212 opposite to its root is a movable end. In other words, the fourth abutting spring arm 24212 extends from top to bottom along the first direction A1-A1. With this configuration, the fourth abutment spring arm 24212 can guide the cable connector 200 when it is inserted into the electrical connector 100, and also reduce the insertion force of the cable connector 200. In its free state, the fourth abutment spring arm 24212 includes a fourth abutment portion 24213 that protrudes from the fourth base 2421 along its thickness direction.
[0188] Please compare Figures 20 to 22 The first metal spring 212 has three embodiments, which will be understood by those skilled in the art. In the first embodiment of the present invention, there is one fourth abutment spring arm 24212 corresponding to one fourth opening 24211. In the second embodiment of the present invention, there are two fourth abutment spring arms 24212 corresponding to one fourth opening 24211, and the movable ends of the two fourth abutment spring arms 24212 are separated from each other. In the third embodiment of the present invention, there are two fourth abutment spring arms 24212 corresponding to one fourth opening 24211, and the fourth base 2421 is provided with a fourth connecting portion 24214 that connects the movable ends of the two fourth abutment spring arms 24212 together.
[0189] Please compare Figure 23 as well as Figure 24 In one embodiment of the invention, the movable end of the fourth abutment spring arm 24212 abuts against the fourth inner surface 2411a of the fourth metal plate 241 in its free state, meaning the fourth abutment spring arm 24212 is a simply supported beam. Those skilled in the art will understand that designing the fourth abutment spring arm 24212 as a simply supported beam increases the insertion and extraction force of the cable connector 200, improves docking reliability, and effectively reduces resonance problems. Of course, in other embodiments of the invention, both ends of the simply supported beam fourth abutment spring arm 24212 can be fixed.
[0190] In another embodiment of the present invention, in the free state, the movable end of the fourth abutment spring arm 24212 does not abut against the fourth inner surface 2411a of the fourth metal plate 241, that is, the fourth abutment spring arm 24212 is a cantilever beam. Those skilled in the art will understand that designing the fourth abutment spring arm 24212 as a cantilever beam helps reduce the insertion and extraction force of the cable connector 200, thereby facilitating insertion of the cable connector 200. When the cable connector 200 is inserted, the fourth abutment portion 24213 of the fourth abutment spring arm 24212 is compressed by the cable connector 200 and undergoes elastic deformation. At this time, the movable end of the fourth abutment spring arm 24212 abuts against the fourth inner surface 2411a of the fourth metal plate 241, forming a simply supported beam shape, thereby reducing resonance problems.
[0191] In one embodiment of the present invention, the fourth base 2421 is further provided with a second limiting protrusion 24215 integrally stamped from the fourth base 2421.
[0192] In the embodiment illustrated in the present invention, the fourth base 2421 has a plurality of fourth recesses 24216 at its bottom along the first direction A1-A1. The bottom of the fourth base 2421 is approximately flush with the bottom of the fourth main body 2411. The fourth welding portion 2412 protrudes downward from the fourth base 2421 along the first direction A1-A1.
[0193] In the embodiment illustrated in the present invention, the width of the fourth protrusion 2422 along the third direction A3-A3 is smaller than the width of the fourth base 2421 along the third direction A3-A3. The fourth protrusion 2422 is obliquely disposed to form a guide surface, and the fourth protrusion 2422 is at least partially received in the fourth notch 24131.
[0194] When assembling the shielding assembly 2, the first shielding plate assembly 21 and the second shielding plate assembly 22 are both inserted into the third shielding plate assembly 23 and the fourth shielding plate assembly 24. Specifically, a plurality of first retaining slots 21111 of the first shielding plate assembly 21 correspond to the third retaining slots 23111 of the third shielding plate assembly 23 and the fourth retaining slots 24111 of the fourth shielding plate assembly 24, respectively; a plurality of second retaining slots 22111 of the second shielding plate assembly 22 correspond to the third retaining slots 23111 of the third shielding plate assembly 23 and the fourth retaining slots 24111 of the fourth shielding plate assembly 24, respectively.
[0195] Please combine Figures 13 to 16As shown, regarding the shielding assembly 2, along the third direction A3-A3, the first mounting portion 2114 and the second mounting portion 2115 protrude to both sides from the third shielding plate assembly 23 and the fourth shielding plate assembly 24; the third mounting portion 2214 and the fourth mounting portion 2215 protrude to both sides from the third shielding plate assembly 23 and the fourth shielding plate assembly 24. Along the second direction A2-A2, the fifth mounting portion 2314 and the sixth mounting portion 2315 protrude to both sides from the first shielding plate assembly 21 and the second shielding plate assembly 22; the seventh mounting portion 2414 and the eighth mounting portion 2415 protrude to both sides from the first shielding plate assembly 21 and the second shielding plate assembly 22.
[0196] A shielding unit 20 includes a receiving space 201, which is formed by at least a portion of the first shielding plate assembly 21, at least a portion of the second shielding plate assembly 22, at least a portion of the third shielding plate assembly 23, and at least a portion of the fourth shielding plate assembly 24. The first metal plate 211 and the second metal plate 221 are located on opposite sides of the receiving space 201, and the third metal plate 231 and the fourth metal plate 241 are also located on opposite sides of the receiving space 201. The first abutment spring arm 21212, the second abutment spring arm 22212, the third abutment spring arm 23212, and the fourth abutment spring arm 24212 all protrude into the receiving space 201. Of course, those skilled in the art will understand that one, two, or more of the abutment arms, including the first abutment arm 21212, the second abutment arm 22212, the third abutment arm 23212, and the fourth abutment arm 24212, may be omitted.
[0197] In one assembly method of the present invention, when the shielding component 2 is assembled with the mounting frame 1, the first mounting part 2114 is inserted into the first mounting groove 1101 of the first wall part 11, the second mounting part 2115 is inserted into the second mounting groove 1201 of the second wall part 12, the third mounting part 2214 is inserted into the third mounting groove 1102 of the first wall part 11, the fourth mounting part 2215 is inserted into the fourth mounting groove 1202 of the second wall part 12, the fifth mounting part 2314 is inserted into the fifth mounting groove 1301 of the third wall part 13, the sixth mounting part 2315 is inserted into the sixth mounting groove 1401 of the fourth wall part 14, the seventh mounting part 2414 is inserted into the seventh mounting groove 1302 of the third wall part 13, and the eighth mounting part 2415 is inserted into the eighth mounting groove 1402 of the fourth wall part 14. The first locking spring arm 2314a and the third locking spring arm 2414a are respectively locked in the corresponding first flared groove 13012 of the third wall portion 13, and the second locking spring arm 2315a and the fourth locking spring arm 2415a are respectively locked in the corresponding second flared groove 14012 of the fourth wall portion 14.
[0198] In another assembly method of the present invention, the third shielding plate assembly 23 and the fourth shielding plate assembly 24 are first inserted and fixed onto the mounting frame 1, so that the first locking spring arm 2314a and the third locking spring arm 2414a are respectively locked into the corresponding first flared groove 13012 of the third wall portion 13, and the second locking spring arm 2315a and the fourth locking spring arm 2415a are respectively locked into the corresponding second flared groove 14012 of the fourth wall portion 14. Then, the first shielding plate assembly 21 and the second shielding plate assembly 22 are inserted and fixed onto the mounting frame 1, perpendicularly intersecting with the third shielding plate assembly 23 and the fourth shielding plate assembly 24.
[0199] In the embodiments illustrated in the present invention, the plurality of terminal modules 3 are all identical. Please refer to... Figures 28 to 31As shown, each terminal module 3 includes an insulating block 33, a first conductive terminal 31 fixed to the insulating block 33, and a second conductive terminal 32 fixed to the insulating block 33. In one embodiment of the invention, the first conductive terminal 31 and the second conductive terminal 32 are inserted-molded into the insulating block 33 to form a single unit. Of course, those skilled in the art will understand that in other embodiments of the invention, the first conductive terminal 31 and the second conductive terminal 32 may also be fixed to the insulating block 33 by other means (e.g., assembly). In one embodiment of the invention, the first conductive terminal 31 and the second conductive terminal 32 form a differential pair to improve the signal transmission rate.
[0200] The insulating block 33 includes a top surface 331, a bottom surface 332, a first sidewall 333, a second sidewall 334 opposite to the first sidewall 333, a third sidewall 335, and a fourth sidewall 336 opposite to the third sidewall 335.
[0201] In the embodiment illustrated in the present invention, the first sidewall 333, the second sidewall 334, the third sidewall 335 and the fourth sidewall 336 are all provided with outwardly protruding ribs 337. The ribs 337 are configured to abut against the corresponding first main body portion 2111, second main body portion 2211, third main body portion 2311 and fourth main body portion 2411 to increase the holding force.
[0202] In the embodiment illustrated in the present invention, the first sidewall 333 is further provided with a first through groove 3331 extending through the top surface 331 and the bottom surface 332 along the first direction A1-A1, and the second sidewall 334 is further provided with a second through groove 3341 extending through the top surface 331 and the bottom surface 332 along the first direction A1-A1. By providing the first through groove 3331 and the second through groove 3341, heat can be transferred to the middle area of the electrical connector 100 when the product passes through the reflow soldering furnace, thereby making the entire area heated evenly and improving the soldering quality. The third sidewall 335 is provided with a first mounting opening 3351 extending upward through the top surface 331 along the first direction A1-A1 and a first abutting surface 3352 located at the bottom of the first mounting opening 3351. The fourth sidewall 336 is provided with a second mounting opening 3361 extending upward through the top surface 331 along the first direction A1-A1 and a second abutting surface 3362 located at the bottom of the second mounting opening 3361. In addition, the insulating block 33 also includes a first slot 3321 and a second slot 3322 located on the bottom surface 332. The first slot 3321 and the second slot 3322 both extend along the third direction A3-A3 and both penetrate the fourth sidewall 336 to improve the uniformity of heat distribution and improve the welding quality.
[0203] The first conductive terminal 31 includes a first fixing portion 311 fixed in the insulating block 33, a first contact portion 312 extending from one end of the first fixing portion 311 and protruding upward from the insulating block 33, and a first tail portion 313 extending from the other end of the first fixing portion 311 and protruding from the insulating block 33. In the embodiment illustrated in the present invention, the first contact portion 312 is needle-shaped and protrudes into the accommodating space 201. The first tail portion 313 is generally flat and is surface-mounted onto the first signal conductive sheet SP1 of the circuit board 300. The first tail portion 313 corresponds to the first slot 3321, but the first tail portion 313 protrudes downward from the first slot 3321 along the first direction A1-A1.
[0204] Similarly, the second conductive terminal 32 includes a second fixing portion 321 fixed in the insulating block 33, a second contact portion 322 extending from one end of the second fixing portion 321 and protruding upward from the insulating block 33, and a second tail portion 323 extending from the other end of the second fixing portion 321 and protruding from the insulating block 33. In the embodiment illustrated in the present invention, the second contact portion 322 is needle-shaped and protrudes into the accommodating space 201. The second tail portion 323 is generally flat and is surface-mounted onto the second signal conductive sheet SP2 of the circuit board 300. The second tail portion 323 corresponds to the second slot 3322, but the second tail portion 323 protrudes downward from the second slot 3322 along the first direction A1-A1.
[0205] When the terminal module 3 is assembled into the receiving space 201 of the shielding component 2, the terminal module 3 extends from bottom to top along the first direction A1-A1. The first limiting protrusion 23215 is received in the first mounting opening 3351 and abuts against the first abutting surface 3352 to provide a limiting function. Similarly, the second limiting protrusion 24215 is received in the second mounting opening 3361 and abuts against the second abutting surface 3362 to provide a limiting function. With this configuration, the first tail 313 and the second tail 323 of all the terminal modules 3 can be controlled within the same plane, which is beneficial to improving the product yield.
[0206] Please combine Figure 7 As shown, after the electrical connector 100 is assembled, the first welding part 2112, the second welding part 2212, the third welding part 2312, and the fourth welding part 2412 all protrude downwards from the mounting surface 1b along the first direction A1-A1. The first welding part 2112, the second welding part 2212, the third welding part 2312, and the fourth welding part 2412 are respectively welded to the first grounding conductive piece GP1, the second grounding conductive piece GP2, the third grounding conductive piece GP3, and the fourth grounding conductive piece GP4.
[0207] The first tail portion 313 and the second tail portion 323 are surrounded at their respective heights by the first weld portion 2112, the second weld portion 2212, the third weld portion 2312 and the fourth weld portion 2412, thereby improving the shielding effect.
[0208] The first shielding plate assembly 21 is at least partially exposed in the first through-slot 3331, and the second shielding plate assembly 22 is at least partially exposed in the second through-slot 3341. The heat generated during welding or operation can be discharged outward through the first through-slot 3331 and the second through-slot 3341, thereby improving heat dissipation performance.
[0209] In addition, during welding, the first venting groove 2112c, the second venting groove 2212c, the third venting groove 2312c, and the fourth venting groove 2412c also help to transfer heat to the middle area of the electrical connector 100 when the product passes through the reflow soldering furnace, thereby making the entire area heated evenly and improving the welding quality.
[0210] Please combine Figures 36 to 39 As shown, the cable connector 200 includes a receiving housing 5, a plurality of cable modules 6 at least partially located within the receiving housing 5, and a covering housing 7 formed on the cable modules 6 and fixed to the receiving housing 5. In one embodiment of the invention, the receiving housing 5 is a metal housing made of a metallic material. For example, the receiving housing 5 is manufactured using powder metallurgy to improve structural strength and shielding effect. Please refer to... Figure 36 As shown, in a first embodiment of the cable connector 200 of the present invention, the housing 5 is provided with a first positioning plate 51 on one side, and a second positioning plate 52 and a third positioning plate 53 on the other side. The first positioning plate 51 is configured to be inserted into the first guide groove 1111, the second positioning plate 52 is configured to be inserted into the second guide groove 1211, and the third positioning plate 53 is configured to be inserted into the third guide groove 1221.
[0211] Furthermore, the housing 5 is also provided with a first mounting hole 54 and a second mounting hole 55. The connector assembly includes a plurality of retaining members for securing the cable connector 200 and the electrical connector 100 together. The retaining members include a third bolt 403 and a fourth bolt 404. The third bolt 403 passes through the first mounting hole 54 and is fixed in the first mounting hole 161 of the electrical connector 100. The fourth bolt 404 passes through the second mounting hole 55 and is fixed in the second mounting hole 162 of the electrical connector 100.
[0212] Please combine Figure 38 , Figure 39 as well as Figure 49As shown, in a first embodiment of the cable connector 200 of the present invention, the receiving housing 5 includes a first outer wall 56, a second outer wall 57 opposite to the first outer wall 56, and a connecting wall 58 connecting one end of the first outer wall 56 and one end of the second outer wall 57. The receiving housing 5 includes a receiving space 50 located between the first outer wall 56 and the second outer wall 57. The inner surface of the first outer wall 56 is provided with a plurality of first mounting slots 561 communicating with the receiving space 50, and the inner surface of the second outer wall 57 is provided with a plurality of second mounting slots 571 communicating with the receiving space 50. The corresponding first mounting slots 561 and second mounting slots 571 are aligned to hold the corresponding cable module 6. In the embodiment illustrated in the present invention, the first outer wall 56 is further provided with a first pin hole 562, and the second outer wall 57 is further provided with a second pin hole 572. The cable connector 200 includes a first stop bar 81 inserted into the first pin hole 562 and a second stop bar 82 inserted into the second pin hole 572. The first baffle 81 and the second baffle 82 both cooperate with the cable module 6 to prevent the cable module 6 from detaching from the housing 5.
[0213] Please combine Figures 40 to 49 As shown, in a first embodiment of the cable connector 200 of the present invention, each cable module 6 includes a plurality of cable modules 6a arranged at intervals, a plurality of metal shielding surrounds 65 sleeved on the cable modules 6a, and a fixing block 69 fixed to the plurality of cable modules 6a and the metal shielding surrounds 65. In one embodiment of the present invention, the fixing block 69 is made of insulating material and is overmolded onto the cable modules 6a and the metal shielding surrounds 65 to form a whole with the cable modules 6a and the metal shielding surrounds 65. In the embodiment illustrated in the present invention, the fixing block 69 is embedded in the groove of the cable module 6a during molding to increase the bonding force between the two. Of course, those skilled in the art will understand that the plurality of cable modules 6a can also be fixed to the fixing block 69 by assembly or other means, which will not be described in detail in the present invention.
[0214] Please combine Figure 42 as well as Figure 43 As shown, the fixing block 69 includes a base portion 690, a first positioning block 691 connected to one side of the base portion 690 and protruding from the base portion 690, and a second positioning block 692 connected to the other side of the base portion 690 and protruding from the base portion 690. In the embodiment illustrated in the present invention, the first positioning block 691 is used to be received in the first mounting slot 561, and the second positioning block 692 is used to be received in the second mounting slot 571. Please refer to... Figure 49As shown, after the cable module 6 is installed in the receiving housing 5, the first stop bar 81 and the second stop bar 82 are inserted into the receiving housing 5 through the first pin hole 562 and the second pin hole 572, respectively. The first stop bar 81 and the second stop bar 82 abut against the first positioning block 691 and the second positioning block 692 of the cable module 6, respectively, to prevent the cable module 6 from detaching from the receiving housing 5. Then, the covering housing 7 is formed on the cable module 6. In the embodiment illustrated in the present invention, the covering housing 7 is made of insulating material.
[0215] Each cable module 6a includes an insulator 64, a terminal module 60 mounted on the insulator 64, a cable 67 electrically connected to the terminal module 60, a shielding clamp 68 holding the cable 67, and a covering block 695 at least partially fixed to the terminal module 60, the shielding clamp 68, and the cable 67. The metal shielding surround 65 is at least partially sleeved on the insulator 64, the terminal module 60, and the covering block 695. The technical term "electrical connection" as used throughout this invention refers to either a contact connection or a non-contact connection, wherein a non-contact connection includes the use of a transition element to achieve the connection.
[0216] In the embodiment illustrated in the present invention, the covering block 695 is made of insulating material and is overmolded onto the insulator 64, the terminal module 60, the shielding clamp 68 and the cable 67 to form a whole.
[0217] The terminal module 60 includes a retaining block 601 and a plurality of cable conductive terminals 62 fixed to the retaining block 601. In one embodiment of the invention, the cable conductive terminals 62 are inserted into the retaining block 601. Of course, in other embodiments, the cable conductive terminals 62 can also be fixed to the retaining block 601 by assembly. In the embodiment illustrated in the figures, the retaining block 601 includes an opening groove 6011 that extends circumferentially along the retaining block 601.
[0218] Please combine Figures 44 to 47As shown in the illustrated embodiment of the present invention, each set of cable conductive terminals 62 includes a mating portion 621, a cable connecting portion 622, and an intermediate portion 623 connecting the mating portion 621 and the cable connecting portion 622. The intermediate portion 623 is at least partially fixed to the retaining block 601. The mating portion 621 extends beyond the retaining block 601 to contact the first conductive terminal 31 and the second conductive terminal 32 of the electrical connector 100. The cable connecting portion 622 extends beyond the retaining block 601 to be electrically connected to the cable 67. In one embodiment of the present invention, the two intermediate portions 623 of a set of cable conductive terminals 62 are narrow-edge coupled. Of course, those skilled in the art will understand that in other embodiments of the present invention, the two intermediate portions 623 of a set of cable conductive terminals 62 may also be wide-edge coupled (e.g., Figure 54 (As shown).
[0219] In one embodiment of the present invention, each terminal module 60 contains two cable conductive terminals 62, both of which are mating signal terminals. These two mating signal terminals form a differential pair to improve the signal transmission rate.
[0220] In the embodiment illustrated in the present invention, the mating portion 621 of each cable conductive terminal 62 has a two-part structure. Each mating portion 621 of the cable conductive terminal 62 includes a first elastic arm 6211, a second elastic arm 6212 opposite to the first elastic arm 6211, and a connecting wall portion 6213 connecting one side of the first elastic arm 6211 and one side of the second elastic arm 6212. The first elastic arm 6211 includes a first tail end portion 6211a connected to the intermediate portion 623 and a first contact arm 6211b. The first contact arm 6211b has a first end portion 6211c located at its end. The second elastic arm 6212 includes a second tail end portion 6212a abutting against the first tail end portion 6211a and a forward-extending second contact arm 6212b. The second contact arm 6212b has a second end portion 6212c located at its end. The connecting wall portion 6213 is located between the first contact arm 6211b and the first tail end portion 6211a, and the connecting wall portion 6213 is located between the second contact arm 6212b and the second tail end portion 6212a.
[0221] In the illustrated embodiment of the present invention, the first elastic arm 6211 and the second elastic arm 6212 are connected to each other only through the connecting wall portion 6213. In other words, the position on the cable conductive terminal 62 opposite to the connecting wall portion 6213 is a slot 6214 formed between the first elastic arm 6211 and the second elastic arm 6212, thereby giving the first elastic arm 6211 and the second elastic arm 6212 better elastic deformation capability. In the illustrated embodiment of the present invention, the cable conductive terminal 62 includes a clamping space 6210 located between the first elastic arm 6211 and the second elastic arm 6212 to accommodate the first contact portion 312 and the second contact portion 322 of the differential signal terminal of the electrical connector 100. The first end portion 6211c and the second end portion 6212c together form a flared shape to guide the first contact portion 312 and the second contact portion 322 of the differential signal terminal into the clamping space 6210.
[0222] The cable conductive terminal 62 of the present invention has a second tail end 6212a provided, and the second tail end 6212a is in contact with the first tail end 6211a. In one embodiment of the present invention, the second tail end 6212a is welded to the first tail end 6211a. Those skilled in the art will understand that when a signal is transmitted through the second elastic arm 6212, the signal can be transmitted via the following path: second elastic arm 6212 → second tail end 6212a → first tail end 6211a → middle portion 623 → cable connection portion 622 → cable 67. In other words, when a signal is transmitted through the second elastic arm 6212, the signal does not necessarily have to pass through the connecting wall portion 6213 to be transmitted to the cable 67, thereby improving the efficiency of signal transmission.
[0223] Please combine Figure 42 and Figure 43As shown in the illustrated embodiment of the present invention, each insulator 64 has a first end face 641, a second end face 642 opposite to the first end face 641, and a terminal receiving hole 640 extending along a first direction A1-A1 through the first end face 641 and the second end face 642. In the illustrated embodiment of the present invention, the insulator 64 is generally cuboid in shape, including a first sidewall 643 and a second sidewall 644 opposite to the first sidewall 643. The first sidewall 643 also has a plurality of first openings 6431 extending through the first sidewall 643 and communicating with the terminal receiving hole 640. The second sidewall 644 also has a plurality of second openings 6441 extending through the second sidewall 644 and communicating with the terminal receiving hole 640. In addition, the insulator 64 also has a slotted portion 645 communicating with the terminal receiving hole 640, the slotted portion 645 being configured to adjust impedance.
[0224] The cable 67 includes a core 671 for electrical connection to a cable connection portion 622 of a differential signal terminal, an insulating layer 672 wrapped around the core 671, and a shielding layer 673 located outside the insulating layer 672. In one embodiment of the invention, the core 671 is welded to the cable connection portion 622 of the differential signal terminal. In the embodiment illustrated in the invention, the shielding layer 673 is in contact with the shielding clamp 68.
[0225] In the illustrated embodiment of the present invention, the shielding clamp 68 is made of metal and includes a first clamping portion 681 and a second clamping portion 682. The first clamping portion 681 and the second clamping portion 682 are clamped and fixed to the cable 67, and both the first clamping portion 681 and the second clamping portion 682 are in contact with the shielding layer 673. In the illustrated embodiment of the present invention, the shielding layer 673 is clamped between the first clamping portion 681 and the second clamping portion 682.
[0226] Of course, those skilled in the art will understand that the cable 67 can be a single-ground wire, double-ground wire, or no-ground wire cable as in the prior art. When the cable 67 is a single-ground wire or double-ground wire cable, the ground wire is in contact with the shielding clamp 68 to achieve grounding conduction. When the cable 67 is a no-ground wire cable, the cable 67 is provided with a shielding layer, and the shielding layer is in contact with the shielding clamp 68 to achieve grounding conduction.
[0227] In the illustrated embodiment of the present invention, the first clamping plate portion 681 includes a first clamping portion 6810, a first protruding portion 6811 extending from the first clamping portion 6810 to one side, and a second protruding portion 6812 extending from the first clamping portion 6810 to the other side. The first clamping portion 6810 has an arc-shaped first inner surface 6810a and a first through hole 6810b penetrating the first clamping portion 6810.
[0228] The second clamping plate portion 682 includes a second clamping portion 6820, a third protruding portion 6821 extending from the second clamping portion 6820 to one side, and a fourth protruding portion 6822 extending from the second clamping portion 6820 to the other side. The second clamping portion 6820 has an arc-shaped second inner surface 6820a and a second through hole 6820b penetrating the second clamping portion 6820.
[0229] The first clamping part 6810 and the second clamping part 6820 together clamp the cable 67. The first through hole 6810b and the second through hole 6820b can be filled with solder, thereby facilitating the welding of the shielding plate 68 to the shielding layer 673.
[0230] Please combine Figure 40 as well as Figure 41 As shown in the illustrated embodiment of the present invention, the first protruding tab 6811 and the third protruding tab 6821 abut against each other to form a first inserting tab 6813; the second protruding tab 6812 and the fourth protruding tab 6822 abut against each other to form a second inserting tab 6814. Both the first inserting tab 6813 and the second inserting tab 6814 are in contact with the metal shielding surround 65.
[0231] In one embodiment of the present invention, the covering block 695 is formed over the terminal module 60, the shielding clamp 68, and the cable 67, so as to integrate them into a single unit. Specifically, the covering block 695 is embedded in the opening slot 6011 of the retaining block 601 to improve the reliability of their connection. The first insertion tab 6813 and the second insertion tab 6814 extend to both sides, protruding from the covering block 695.
[0232] The metal shielding surround 65 is at least partially fitted onto the insulator 64, the terminal module 60, and the covering block 695 to provide better shielding for the cable conductive terminal 62. The metal shielding surround 65 includes a shielding cavity 650, in which the insulator 64 and the terminal module 60 are at least partially located.
[0233] Please combine Figure 42 as well as Figure 43 As shown, in one embodiment of the present invention, the metal shielding surround 65 is an integral structure, comprising a first outer wall portion 655, a second outer wall portion 656 opposite to the first outer wall portion 655, a third outer wall portion 657, and a fourth outer wall portion 658 opposite to the third outer wall portion 657. The shielding cavity 650 is formed by the first outer wall portion 655, the second outer wall portion 656, the third outer wall portion 657, and the fourth outer wall portion 658. Specifically, in the embodiment illustrated in the present invention, the first outer wall portion 655 is provided with a first clamping groove 653, and the second outer wall portion 656 is provided with a second clamping groove 654. The first insertion tab 6813 is inserted into the first clamping groove 653, and the second insertion tab 6814 is inserted into the second clamping groove 654 to improve the shielding effect. Preferably, after the first insertion tab 6813 is inserted into the first clamping groove 653, it is then welded and fixed to the first outer wall portion 655; after the second insertion tab 6814 is inserted into the second clamping groove 654, it is then welded and fixed to the second outer wall portion 656.
[0234] The metal shielding surround 65 has several inclined chamfered portions 659 at its ends to prevent the insulator 64 from detaching from the metal shielding surround 65 after being received in the shielding cavity 650. Furthermore, at least one of the third outer wall portion 657 and the fourth outer wall portion 658 is provided with an outwardly protruding convex 6571, which is configured to adjust impedance. In the illustrated embodiment of the invention, the fourth outer wall portion 658 is also provided with an inwardly protruding anti-retraction spring 6581, which is configured to lock with the insulator 64 to improve the tightness of the fit between the metal shielding surround 65 and the insulator 64 and prevent separation. In the illustrated embodiment of the invention, the anti-retraction spring 6581 is integrally stamped inward from the fourth outer wall portion 658, and the anti-retraction spring 6581 is cantilevered, with its free end abutting against the insulator 64.
[0235] Please combine Figures 50 to 54 As shown, in the second embodiment of the cable connector 200 of the present invention, the metal shielding surround 65 is a split structure, which includes a first shielding plate 651 and a second shielding plate 652, wherein the first shielding plate 651 and the second shielding plate 652 are assembled to form a shielding structure that surrounds the four sides.
[0236] Please combine Figures 68 to 71As shown, in the seventh embodiment of the cable connector 200 of the present invention, the first shielding plate 651 has a first rear end portion 6511, which has a first fastening portion 6511a and a first through hole 6511b. The second shielding plate 652 has a second rear end portion 6521, which has a second fastening portion 6521a and a second through hole 6521b. When the first shielding plate 651 and the second shielding plate 652 are engaged, the first fastening portion 6511a and the second fastening portion 6521a correspond to the shielding layer 673 of the cable 67, and the first fastening portion 6511a and the second fastening portion 6521a are fastened and fixed together. The shielding layer 673 of the cable 67 is exposed in the first through hole 6511b and the second through hole 6521b to facilitate the filling of solder (e.g., solder), thereby facilitating the fixing of the shielding layer 673, the first shielding plate 651, and the second shielding plate 652 of the cable 67 together.
[0237] During assembly, the terminal module 60 is welded and fixed to the cable 67; then, the covering block 695 is formed on the terminal module 60 and the cable 67; then, the terminal module 60 is at least partially inserted into the insulator 64, so that the first contact arm 6211b and the second contact arm 6212b of the cable conductive terminal 62 are inserted into the corresponding terminal receiving hole 640; then, the first shielding plate 651 and the second shielding plate 652 are installed on the insulator 64 and the covering block 695; the first insertion protrusion 6813 is located in the first clamping groove 653, and the second insertion protrusion 6814 is located in the second clamping groove 654, so that the shielding clamp 68 contacts the metal shielding surround 65 to improve the shielding effect; then, the fixing block 69 is formed on the cable module 6a and the metal shielding surround 65.
[0238] Please combine Figures 55 to 57 The connector assembly in the third embodiment of the present invention is similar to that in the first embodiment. The connector assembly in the third embodiment includes a plurality of retaining members that secure the cable connector 200 and the electrical connector 100 together. The retaining members include a third bolt 403, a fourth bolt 404, and a fifth bolt 405.
[0239] Please combine Figure 58 as well as Figure 59As shown, the connector assembly in the fourth embodiment of the present invention is similar to the connector assembly in the first embodiment. The difference is that the cable connector 200 in the connector assembly in the fourth embodiment of the present invention is a vertical connector, wherein the extension direction of the cable 67 of the cable connector 200 is perpendicular to the circuit board 300.
[0240] Please combine Figures 60 to 63 As shown, the connector assembly in the fifth embodiment of the present invention is similar to that in the first embodiment. The difference is that the number of cable modules 6 in the cable connector 200 of the connector assembly in the fifth embodiment is smaller. Furthermore, the connector assembly includes a first washer 4011 fitted onto the first bolt 401, a second washer 4021 fitted onto the second bolt 402, a third washer 4031 fitted onto the third bolt 403, and a fourth washer 4041 fitted onto the fourth bolt 404. By providing the first washer 4011, the second washer 4021, the third washer 4031, and the fourth washer 4041, the tightness is improved, and the risk of loosening is reduced.
[0241] Please combine Figures 64 to 67 As shown, the connector assembly in the sixth embodiment of the present invention is similar to the connector assembly in the fifth embodiment. The difference is that the cable connector 200 in the connector assembly of the sixth embodiment of the present invention is a vertical connector, wherein the extension direction of the cable 67 of the cable connector 200 is perpendicular to the circuit board 300.
[0242] Please combine Figure 72 as well as Figure 73 As shown, in the eighth embodiment of the cable module 6a and the metal shielding surround 65 of the present invention, the metal shielding surround 65 further comprises a first contact spring arm 6551 and a second contact spring arm 6552 integrally stamped outwards. There is at least one first contact spring arm 6551 and at least one second contact spring arm 6552. The first contact spring arm 6551 and the second contact spring arm 6552 extend in opposite directions. The first contact spring arm 6551 and the second contact spring arm 6552 are located on two adjacent outer wall portions in the circumferential direction of the metal shielding surround 65.
[0243] Compared to existing technologies, the shielding assembly 2 of the present invention includes a first shielding plate assembly 21, a second shielding plate assembly 22, a third shielding plate assembly 23, and a fourth shielding plate assembly 24. These components are interlocked to form a plurality of shielding units 20 arranged in a matrix, thereby increasing density. All components (first, second, third, and fourth) are in contact with the mounting frame 1, improving the overall shielding effect. Furthermore, the terminal modules 3 have identical structures, reducing costs. Each terminal module 3 is held in place within a corresponding shielding unit 20 without needing to cooperate with the mounting frame 1, thus saving space.
[0244] In addition, the cable connector 200 of the present invention includes a first stop bar 81 and a second stop bar 82, the first stop bar 81 and the second stop bar 82 respectively abutting against the first positioning block 691 and the second positioning block 692 of the cable module 6 to prevent the cable module 6 from detaching from the housing 5, thereby improving structural reliability.
[0245] The above embodiments are only used to illustrate the present invention and are not intended to limit the technical solutions described in the present invention. The understanding of the present invention should be based on those skilled in the art. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still make modifications or equivalent substitutions to the present invention. All technical solutions and improvements that do not depart from the spirit and scope of the present invention should be covered within the scope of the claims of the present invention.
Claims
1. A cable connector, characterized in that, include: A housing, wherein the housing is provided with a receiving space; A cable module, at least partially housed in the receiving space, the cable module including a cable module, a metal shielding surrounding member at least partially sleeved on the cable module, and a fixing block fixed to the cable module and the metal shielding surrounding member; the cable module includes a plurality of cable conductive terminals; as well as A first stop bar is inserted into the receiving housing and abuts against the cable module to prevent the cable module from detaching from the receiving housing.
2. The cable connector as described in claim 1, characterized in that: The cable connector further includes a second stop bar, which is inserted into the receiving housing and abuts against the cable module to prevent the cable module from detaching from the receiving housing.
3. The cable connector as described in claim 2, characterized in that: The fixing block includes a base portion, a first positioning block connected to one side of the base portion and protruding from the base portion, and a second positioning block connected to the other side of the base portion and protruding from the base portion; the first stop bar and the second stop bar respectively abut against the first positioning block and the second positioning block to prevent the cable module from detaching from the housing.
4. The cable connector as described in claim 3, characterized in that: The housing includes a first outer wall and a second outer wall opposite to the first outer wall. The accommodating space is located between the first outer wall and the second outer wall. The first outer wall is provided with a first mounting slot communicating with the accommodating space. The second outer wall is provided with a second mounting slot communicating with the accommodating space. The first positioning block and the second positioning block are respectively inserted into the first mounting slot and the second mounting slot.
5. The cable connector as described in claim 4, characterized in that: The first outer wall is provided with a first pin hole, and the second outer wall is provided with a second pin hole. The first stop bar and the second stop bar are respectively inserted into the receiving housing through the first pin hole and the second pin hole.
6. The cable connector as described in claim 1, characterized in that: The cable modules are multiple and arranged side by side, and the cable connector further includes a covering shell formed on the cable module and fixed together with the receiving shell.
7. The cable connector as described in claim 1, characterized in that: The cable module includes an insulator, a terminal module mounted on the insulator, a cable electrically connected to the terminal module, and a covering block at least partially fixed to the terminal module and the cable; The terminal module includes a retaining block, and the cable conductive terminal is fixed to the retaining block. Each cable conductive terminal includes a mating part, a cable connecting part, and an intermediate part connecting the mating part and the cable connecting part. The intermediate part is at least partially fixed to the retaining block. The mating part extends to one side and protrudes from the retaining block, and the cable connecting part extends to the other side and protrudes from the retaining block to be electrically connected to the cable.
8. The cable connector as described in claim 7, characterized in that: The metal shielding surround includes a first outer wall portion, a second outer wall portion opposite to the first outer wall portion, a third outer wall portion, a fourth outer wall portion opposite to the third outer wall portion, and a shielding cavity formed by the first outer wall portion, the second outer wall portion, the third outer wall portion, and the fourth outer wall portion, wherein the insulator is at least partially housed in the shielding cavity.
9. The cable connector as described in claim 8, characterized in that: The metal shielding surround is provided with an inwardly protruding anti-reverse spring, which is configured to lock with the insulator.
10. The cable connector as claimed in claim 7, characterized in that: The cable module includes a shielding clamp for holding the cable. The shielding clamp includes a first clamping portion and a second clamping portion. The cable is provided with a shielding layer, which is clamped between the first clamping portion and the second clamping portion. The first clamping plate portion includes a first protruding piece portion and a second protruding piece portion; the second clamping plate portion includes a third protruding piece portion and a fourth protruding piece portion; the first protruding piece portion and the third protruding piece portion abut against each other to form a first insertion protruding piece; the second protruding piece portion and the fourth protruding piece portion abut against each other to form a second insertion protruding piece. The metal shielding surround includes a first clamping groove and a second clamping groove, wherein the first inserting tab is inserted into the first clamping groove and the second inserting tab is inserted into the second clamping groove.
11. A connector assembly, characterized in that, include: A cable connector, wherein the cable connector is the cable connector as described in any one of claims 1 to 10; as well as An electrical connector that mates with the cable connector, the electrical connector comprising: The mounting frame is a conductive mounting frame and has an installation space. A shielding assembly, at least partially located within the mounting space, in contact with the mounting frame; the shielding assembly includes a first shielding plate assembly, a second shielding plate assembly, a third shielding plate assembly, and a fourth shielding plate assembly; the first and second shielding plate assemblies are spaced apart along a second direction; the third and fourth shielding plate assemblies are spaced apart along a third direction; the first and second shielding plate assemblies are perpendicularly inserted into the third and fourth shielding plate assemblies to form a plurality of shielding units; each shielding unit includes an accommodating space extending along a first direction; the first, second, and third directions are mutually perpendicular; and A terminal module, the terminal module being housed in the accommodating space, the terminal module comprising an insulating block and a plurality of conductive terminals disposed on the insulating block; In this embodiment, the cable module of the cable connector is at least partially inserted into the accommodating space, the metal shielding surrounding the cable connector is in contact with the shielding assembly, and the cable conductive terminal of the cable connector is in contact with the conductive terminal.
12. The connector assembly as claimed in claim 11, characterized in that: The mounting frame is a metal mounting frame.
13. The connector assembly as claimed in claim 11, characterized in that: The mounting frame includes a first wall portion, a second wall portion opposite to the first wall portion, a third wall portion, and a fourth wall portion opposite to the third wall portion, and the mounting space is jointly enclosed by the first wall portion, the second wall portion, the third wall portion, and the fourth wall portion; The mounting frame includes a mating surface and a mounting surface opposite to the mating surface; The inner side of the first wall portion is also provided with a first mounting groove that penetrates the mounting surface along the first direction, and the inner side of the second wall portion is also provided with a second mounting groove that penetrates the mounting surface along the first direction. The first shielding plate assembly includes a first metal plate, the first metal plate including a first mounting portion located at one end of the first metal plate along the third direction and a second mounting portion located at the other end of the first metal plate along the third direction, the first mounting portion being inserted into the first mounting groove and the second mounting portion being inserted into the second mounting groove.
14. The connector assembly as claimed in claim 13, characterized in that: The inner side of the first wall portion is also provided with a third mounting groove that penetrates the mounting surface along the first direction, and the inner side of the second wall portion is also provided with a fourth mounting groove that penetrates the mounting surface along the first direction. The second shielding plate assembly includes a second metal plate, the second metal plate including a third mounting portion located at one end of the second metal plate along the third direction and a fourth mounting portion located at the other end of the second metal plate along the third direction, the third mounting portion being inserted into the third mounting groove and the fourth mounting portion being inserted into the fourth mounting groove.
15. The connector assembly as claimed in claim 13, characterized in that: The inner side of the third wall portion is also provided with a fifth mounting groove that penetrates the mounting surface along the first direction, and the inner side of the fourth wall portion is also provided with a sixth mounting groove that penetrates the mounting surface along the first direction. The third shielding plate assembly includes a third metal plate, the third metal plate including a fifth mounting portion located at one end of the third metal plate along the second direction and a sixth mounting portion located at the other end of the third metal plate along the second direction, the fifth mounting portion being inserted into the fifth mounting groove and the sixth mounting portion being inserted into the sixth mounting groove.
16. The connector assembly as claimed in claim 15, characterized in that: The fifth mounting part is provided with a first locking spring arm, and the sixth mounting part is provided with a second locking spring arm; The fifth mounting slot includes a first flared slot, and the first locking spring arm is locked in the first flared slot; The sixth mounting slot includes a second flared slot, and the second locking spring arm is locked in the second flared slot.
17. The connector assembly as claimed in claim 13, characterized in that: The inner side of the third wall portion is also provided with a seventh mounting groove that penetrates the mounting surface along the first direction, and the inner side of the fourth wall portion is also provided with an eighth mounting groove that penetrates the mounting surface along the first direction. The fourth shielding plate assembly includes a fourth metal plate, the fourth metal plate including a seventh mounting portion located at one end of the fourth metal plate along the second direction and an eighth mounting portion located at the other end of the fourth metal plate along the second direction, the seventh mounting portion being inserted into the seventh mounting slot and the eighth mounting portion being inserted into the eighth mounting slot.
18. The connector assembly as claimed in claim 11, characterized in that: The first shielding plate assembly includes a first metal plate, the first metal plate includes a first main body, and the first main body is provided with a plurality of first retaining grooves extending downward through the first main body in the first direction; The second shielding plate assembly includes a second metal plate, the second metal plate includes a second main body, and the second main body is provided with a plurality of second retaining grooves extending downward through the second main body in the first direction; The third shielding plate assembly includes a third metal plate, the third metal plate includes a third main body, and the third main body is provided with a plurality of third retaining grooves extending upward through the third main body in the first direction. The fourth shielding plate assembly includes a fourth metal plate, the fourth metal plate includes a fourth main body, and the fourth main body is provided with a plurality of fourth retaining grooves extending upward through the fourth main body along the first direction. A first retaining groove of the first metal plate corresponds to a third retaining groove of the third metal plate, so that the first metal plate and the third metal plate can be inserted into each other; The other first retaining groove of the first metal plate corresponds to the fourth retaining groove of the fourth metal plate, so that the first metal plate and the fourth metal plate can be inserted into each other; One of the second retaining slots of the second metal plate corresponds to another third retaining slot of the third metal plate, so that the second metal plate and the third metal plate can be inserted into each other; The second metal plate has another second retaining groove that corresponds to the fourth retaining groove of the fourth metal plate, so that the second metal plate and the fourth metal plate can be inserted into each other.
19. The connector assembly as claimed in claim 18, characterized in that: The first main body is provided with a first interference protrusion extending into the first retaining groove, and the first interference protrusion abuts against the third main body and the fourth main body; The second main body is provided with a second interference protrusion extending into the second retaining groove, and the second interference protrusion abuts against the third main body and the fourth main body; The third main body is provided with a third interference protrusion extending into the third retaining groove, and the third interference protrusion abuts against the first main body and the second main body; The fourth main body is provided with a fourth interference protrusion extending into the fourth retaining groove, and the fourth interference protrusion abuts against the first main body and the second main body.
20. The connector assembly as claimed in claim 11, characterized in that: The first shielding plate assembly includes a first metal plate and a first metal spring plate disposed on the first metal plate. The first metal spring plate is provided with a first abutting spring arm protruding into the accommodating space. The first abutting spring arm is a simply supported beam or a cantilever beam.