Connector and manufacturing method thereof

The connector design through integrally formed contact assemblies with support bases and insert molding addresses the issue of size increase in existing connectors, resulting in miniaturized and efficiently manufactured connectors.

JP7779769B2Active Publication Date: 2025-12-03JAPAN AVIATION ELECTRONICS IND LTD
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Patent Information

Application Number
JP2022034070
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-07
Publication Date
2025-12-03
Estimated Expiration
2042-03-07

AI Technical Summary

Technical Problem

The manufacturing method of connectors requires a housing case, leading to increased size.

Method used

A connector design involving integrally formed contact assemblies with a metal base and conductive patterns via insert molding, using support bases to support the assemblies during molding, and removing the bases post-molding to achieve miniaturization.

Benefits of technology

The method allows for the production of smaller connectors with a simplified manufacturing process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To realize a reduction in a size in a width direction of a connector.SOLUTION: A method of manufacturing a receptacle 4 includes an assembly manufacturing step (S100), an accommodating step (S110), and an insert molding step (S120). In the assembly manufacturing step (S100), each receptacle contact assembly 7 is manufactured in such a way that a base 30 includes two supporting bases 43 with a coupling base 40 interposed therebetween in a pitch direction. In the accommodating step (S110), a plurality of receptacle contact assemblies 7 are accommodated into an injection mold 70 in such a way that each receptacle contact assembly 7 is supported at both ends in the injection mold 70 by using the two supporting bases 43. In the insert molding step (S120), a receptacle housing 6 is molded integrally with the plurality of receptacle contact assemblies 7 by insert molding.SELECTED DRAWING: Figure 11
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Description

[Technical Field]

[0001] The present invention relates to a connector and a method for manufacturing the same. [Background technology]

[0002] Patent document 1 discloses a method for manufacturing a connector 1002, which includes a molding process for forming a support 1001 that supports a plurality of terminal pins 1000 arranged in a row by insert molding, a joining process for joining two adjacent supports 1001 to each other, and a storage process for storing the plurality of supports 1001 in a joined state in a storage case (not shown), as shown in Figure 20 of the present application. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 8-31492 Summary of the Invention [Problem to be solved by the invention]

[0004] The manufacturing method of Patent Document 1 requires a housing case for housing a plurality of supports 1001, which leads to an increase in the size of the connector.

[0005] An object of the present invention is to provide a technique for realizing miniaturization of connectors. [Means for solving the problem]

[0006] According to a first aspect of the present invention, there is provided a connector comprising at least one contact assembly and a housing that accommodates the at least one contact assembly, which are integrally formed by insert molding, wherein the at least one contact assembly includes a metal base including a plurality of contact bases arranged in the longitudinal direction of the contact assembly and a connecting base that connects the plurality of contact bases to one another, and a plurality of conductive patterns that are provided on each of the plurality of contact bases via an insulating layer. The connector manufacturing method may include an assembly manufacturing step of manufacturing the at least one contact assembly so that the base has two support bases that sandwich the connecting base in the longitudinal direction; an accommodating step of accommodating the at least one contact assembly in an injection molding die so that both ends of the at least one contact assembly are supported within the injection molding die using the two support bases; and an insert molding step of molding the housing integrally with the at least one contact assembly by insert molding. In the accommodation step, the two support bases may be sandwiched between the fixed side mold plate and the movable side mold plate in the direction of advancement and retreat of the movable side mold plate relative to the fixed side mold plate of the injection molding mold, thereby supporting both ends of the at least one contact assembly within the injection molding mold. In the insert molding step, the housing may be molded so that the two support bases of the at least one contact assembly are exposed outside an outer peripheral surface of the housing. The method may further include, after the insert molding step, a removing step of removing the two support bases of the at least one contact assembly. The at least one contact assembly may include at least three contact assemblies extending parallel to each other, the at least three contact assemblies including a first contact assembly, at least one second contact assembly, and a third contact assembly in this order in a direction perpendicular to the longitudinal direction, the assembly manufacturing step may include manufacturing the at least one second contact assembly so that the base has two support bases that sandwich the connecting base in the longitudinal direction, and the accommodating step may include accommodating the at least three contact assemblies in the injection molding mold so that the at least one second contact assembly is supported at both ends within the injection molding mold using the two support bases. The at least one second contact assembly may include a plurality of second contact assemblies, and in the assembly manufacturing step, the plurality of second contact assemblies may be manufactured as separate parts from one another. According to a second aspect of the present invention, there is provided a connector comprising at least one contact assembly and a housing for accommodating the at least one contact assembly, which are integrally formed by insert molding, wherein the at least one contact assembly includes a metal base including a plurality of contact bases arranged in the longitudinal direction of the contact assembly and a connecting base for connecting the plurality of contact bases to each other, and a plurality of conductive patterns respectively provided on the plurality of contact bases via insulating layers, and wherein when the connector is viewed along the longitudinal direction, a cross section of the base of the at least one contact assembly can be observed. The base of the at least one contact assembly may project outwardly from an outer periphery of the housing. The cut surface of the base of the at least one contact assembly may be located outside an outer circumferential surface of the housing in the longitudinal direction. The plurality of contact bases may be formed so as to protrude from the connecting base at least in the thickness direction of the connecting base. The plurality of contact bases may be elastically deformable. The plurality of contact bases may be non-elastically deformable. The plurality of contact bases may be arranged in two rows with the connection base sandwiched between them. The plurality of contact bases belonging to one row and the plurality of contact bases belonging to the other row may face each other in a direction perpendicular to the longitudinal direction. Two conductive patterns formed on two contact bases facing each other in a direction perpendicular to the longitudinal direction may be electrically connected to each other. The two conductive patterns formed on the two contact bases facing each other in a direction perpendicular to the longitudinal direction may be electrically independent from each other. The base may include at least one anti-shrinkage beam that protrudes from the connecting base in a direction perpendicular to the longitudinal direction and is fixed to the housing. The at least one anti-shrinkage beam may include two anti-shrinkage beams that protrude away from each other from the connection base. Each conductive pattern may be covered with a resist except for a portion on the contact base. The plurality of contact bases of one of two adjacent contact assemblies and the plurality of contact bases of the other contact assembly may be staggered so that they do not face each other in a direction perpendicular to the longitudinal direction. The at least one contact assembly may include at least three contact assemblies extending parallel to one another, the at least three contact assemblies including a first contact assembly, at least one second contact assembly, and a third contact assembly, in that order, in a direction perpendicular to the longitudinal direction, and when viewing the connector along the longitudinal direction, a cross-section of the base of the at least one second contact assembly may be observable. [Effects of the Invention]

[0007] According to the present invention, the connector can be made smaller. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 2 is a perspective view of a connector assembly. [Figure 2] FIG. 10 is a perspective view of the connector assembly from another angle. [Figure 3] FIG. 10 is a perspective view of a plurality of receptacle contact assemblies arranged in the width direction. [Figure 4] FIG. 2 is a perspective view of a plurality of plug contact assemblies arranged in the width direction. [Figure 5] FIG. 2 is a perspective view of a receptacle contact assembly. [Figure 6] FIG. 10 is a perspective view of the receptacle contact assembly as viewed from another angle. [Figure 7] FIG. 2 is a plan view of the receptacle contact assembly. [Figure 8] FIG. 2 is a cross-sectional view of a receptacle contact assembly. [Figure 9] FIG. 2 is a cross-sectional view of a receptacle contact assembly. [Figure 10] FIG. 10 is a plan view of a plurality of receptacle contact assemblies arranged in the width direction. [Figure 11] 1 shows a manufacturing flow of a receptacle connector. [Figure 12]FIG. 2 is a plan view of a hoop material on which a plurality of conductive patterns are formed. [Figure 13] FIG. 1 is a plan view of a punched hoop material. [Figure 14] FIG. 2 is a plan view of a bent hoop material. [Figure 15] FIG. 2 is a plan view of the receptacle contact assembly. [Figure 16] FIG. 10 is a perspective view showing an injection molding die in which a plurality of receptacle contact assemblies are set. [Figure 17] FIG. 1 is a front view of an injection molding die containing a plurality of receptacle contact assemblies. [Figure 18] FIG. 2 is a perspective view of a receptacle connector. [Figure 19] FIG. 2 is a cross-sectional view of the plug connector. [Figure 20] FIG. 1 is a simplified diagram of FIG. 1 of Patent Document 1. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, an embodiment of the present invention will be described with reference to FIGS.

[0010] 1 and 2 show a connector assembly 1. As shown in FIGS. 1 and 2, the connector assembly 1 mechanically and electrically connects a lower substrate 2 (receptacle side substrate, first substrate, substrate) and an upper substrate 3 (plug side substrate, second substrate, substrate). The connector assembly 1 is composed of a receptacle 4 (receptacle connector, connector) surface-mounted on the connector mounting surface 2A of the lower substrate 2, and a plug 5 (plug connector, connector) surface-mounted on the connector mounting surface 3A of the upper substrate 3. The connector assembly 1 of this embodiment is a surface-mounted, fine-pitch, low-profile connector assembly with 60 cores.

[0011] The lower substrate 2 and the upper substrate 3 are rigid substrates such as paper phenolic substrates or glass epoxy substrates, or flexible substrates. When the plug 5 is fitted into the receptacle 4, the upper substrate 3 is parallel to the lower substrate 2.

[0012] The receptacle 4 includes a receptacle housing 6 made of insulating resin and a plurality of receptacle contact assemblies 7 (contact assemblies) integrated into the receptacle housing 6 by insert molding. The plurality of receptacle contact assemblies 7 includes at least three receptacle contact assemblies 7. FIG. 3 shows the plurality of receptacle contact assemblies 7 without the receptacle housing 6. As shown in FIG. 3, in this embodiment, the plurality of receptacle contact assemblies 7 includes six receptacle contact assemblies 7. The six receptacle contact assemblies 7 include a first receptacle contact assembly 8, a second receptacle contact assembly 9, a third receptacle contact assembly 10, a fourth receptacle contact assembly 11, a fifth receptacle contact assembly 12, and a sixth receptacle contact assembly 13. However, the number of receptacle contact assemblies 7 constituting the receptacle 4 is not limited as long as it is at least one. All of the multiple receptacle contact assemblies 7 have the same shape.

[0013] 1 and 2 , the plug 5 includes a plug housing 14 made of insulating resin and a plurality of plug contact assemblies 15 integrated into the plug housing 14 by insert molding. In this embodiment, the plurality of plug contact assemblies 15 includes the same number of plug contact assemblies 15 as the plurality of receptacle contact assemblies 7. FIG. 4 shows the plurality of plug contact assemblies 15 without the plug housing 14. As shown in FIG. 4 , in this embodiment, the plurality of plug contact assemblies 15 includes six plug contact assemblies 15. The six plug contact assemblies 15 include a first plug contact assembly 16, a second plug contact assembly 17, a third plug contact assembly 18, a fourth plug contact assembly 19, a fifth plug contact assembly 20, and a sixth plug contact assembly 21. However, the number of plug contact assemblies 15 constituting the plug 5 is not limited as long as it is at least one. The plurality of plug contact assemblies 15 all have the same shape.

[0014] As shown in Figures 1 and 2, the first receptacle contact assembly 8, the second receptacle contact assembly 9, the third receptacle contact assembly 10, the fourth receptacle contact assembly 11, the fifth receptacle contact assembly 12, and the sixth receptacle contact assembly 13 correspond to the first plug contact assembly 16, the second plug contact assembly 17, the third plug contact assembly 18, the fourth plug contact assembly 19, the fifth plug contact assembly 20, and the sixth plug contact assembly 21, respectively.

[0015] Here, the pitch direction, width direction, and up-down direction are defined. The pitch direction, width direction, and up-down direction are directions that are perpendicular to each other.

[0016] 3, the pitch direction is defined as the longitudinal direction of the first receptacle contact assembly 8, which is formed elongated. Referring to FIG. 1, the pitch direction includes an inward pitch direction approaching the center of the receptacle 4 in the pitch direction and an outward pitch direction moving away from the center of the receptacle 4 in the pitch direction.

[0017] The up-down direction is a direction perpendicular to the connector mounting surface 2A of the lower substrate 2. The up-down direction includes upward and downward. The upward direction is the direction in which the plug 5 moves relative to the receptacle 4 when the plug 5 is removed from the receptacle 4. The downward direction is the direction in which the plug 5 moves relative to the receptacle 4 when the plug 5 is mated with the receptacle 4. Therefore, the up-down direction is also the direction in which the plug 5 is inserted into and removed from the receptacle 4.

[0018] As described above, the width direction is a direction perpendicular to the pitch direction and the up-down direction. The width direction includes an inner width direction approaching the center of the receptacle 4 in the width direction and an outer width direction away from the center of the receptacle 4 in the width direction.

[0019] The above-mentioned up-and-down directions are defined merely for the sake of convenience, and do not suggest the orientation of the connector assembly 1 when it is actually in use. As described above, each direction is defined using the structure of the receptacle 4, but these directions are also used when explaining the structure of the plug 5. For example, the pitch direction of the plug 5 is the direction that coincides with the pitch direction of the receptacle 4 when the plug 5 is mated with the receptacle 4. Furthermore, the width direction of the plug 5 is the direction that coincides with the width direction of the receptacle 4 when the plug 5 is mated with the receptacle 4.

[0020] As shown in Figure 3, the multiple receptacle contact assemblies 7 all extend in the pitch direction. Therefore, the multiple receptacle contact assemblies 7 extend parallel to one another. The multiple receptacle contact assemblies 7 are arranged at predetermined intervals in the width direction. Furthermore, the positions of the multiple receptacle contact assemblies 7 in the pitch direction are aligned with one another.

[0021] Similarly, as shown in Fig. 4, the multiple plug contact assemblies 15 all extend in the pitch direction. Therefore, the multiple plug contact assemblies 15 extend parallel to one another. The multiple plug contact assemblies 15 are arranged at predetermined intervals in the width direction. Furthermore, the positions of the multiple plug contact assemblies 15 in the pitch direction are aligned with one another.

[0022] Next, each receptacle contact assembly 7 will be described in detail with reference to Figures 5 to 10. However, since all of the multiple receptacle contact assemblies 7 have the same shape, the shape of the first receptacle contact assembly 8 will be described as a representative example, and descriptions of the other receptacle contact assemblies 7 will be omitted.

[0023] 5 and 6 show perspective views of the first receptacle contact assembly 8. Fig. 7 shows a plan view of the first receptacle contact assembly 8. Fig. 8 shows a cross-sectional view of the first receptacle contact assembly 8.

[0024] 5, 6, and 8, the first receptacle contact assembly 8 has a three-layer structure consisting of a base 30, an insulating layer 31, and a plurality of conductive patterns 32. The base 30 is formed by stamping and forming a conductive metal plate such as stainless steel. The insulating layer 31 is typically made of polyimide or aramid, and is laminated on the lower substrate 2 so as to cover the base 30 from the lower substrate 2 side. The plurality of conductive patterns 32 are typically made of copper or a copper alloy, and are formed on the insulating layer 31.

[0025] Next, the structure of the first receptacle contact assembly 8 will be explained in plan view with reference to Fig. 7. As shown in Fig. 7, the base 30 of the first receptacle contact assembly 8 includes a connecting base 40, a plurality of contact bases 41 protruding from the connecting base 40, and a plurality of anti-shrinkage beams 42 protruding from the connecting base 40. In other words, the connecting base 40 connects the plurality of contact bases 41 to one another and also connects the plurality of anti-shrinkage beams 42 to one another.

[0026] The connecting base 40 includes a connecting base main body 40A and two connecting base extension portions 40B extending outward in the pitch direction from both ends of the connecting base main body 40A in the pitch direction.

[0027] The contact bases 41 protrude from the connection base main body 40A of the connection base 40. The contact bases 41 are arranged in two rows in the width direction, sandwiching the connection base main body 40A. That is, the contact bases 41 belong to either a first contact base row 41A or a second contact base row 41B. The first contact base row 41A and the second contact base row 41B are arranged on opposite sides of the connection base main body 40A of the connection base 40. The contact bases 41 belonging to each row are arranged at a predetermined interval in the pitch direction. As shown in FIGS. 5 and 6, each contact base 41 is bent upward from the connection base main body 40A of the connection base 40. The contact bases 41 belonging to the first contact base row 41A and the contact bases 41 belonging to the second contact base row 41B face each other in the width direction.

[0028] Returning to FIG. 7, the multiple shrinkage prevention beams 42 protrude from the connecting base main body 40A of the connecting base 40. The multiple shrinkage prevention beams 42 are arranged in two rows in the width direction, sandwiching the connecting base main body 40A. That is, the multiple shrinkage prevention beams 42 belong to either the first shrinkage prevention beam row 42A or the second shrinkage prevention beam row 42B. The multiple shrinkage prevention beams 42 belonging to each row are arranged at predetermined intervals in the pitch direction. As shown in FIGS. 5 and 6, each shrinkage prevention beam 42 extends linearly in the width direction from the connecting base main body 40A of the connecting base 40.

[0029] 7, the contact bases 41 belonging to the first contact base row 41A and the anti-shrinkage beams 42 belonging to the first anti-shrinkage beam row 42A are alternately arranged in the pitch direction. Similarly, the contact bases 41 belonging to the second contact base row 41B and the anti-shrinkage beams 42 belonging to the second anti-shrinkage beam row 42B are alternately arranged in the pitch direction.

[0030] Next, the shape of each contact base 41 will be described in detail with reference to Fig. 8. However, since the shape of each contact base 41 belonging to the first contact base row 41A and the shape of each contact base 41 belonging to the second contact base row 41B are symmetrical, the shape of each contact base 41 belonging to the first contact base row 41A will be described below, and a description of the shape of each contact base 41 belonging to the second contact base row 41B will be omitted.

[0031] As shown in Fig. 8, the contact base 41 is supported in a cantilevered manner on the connection base main body 40A of the connection base 40. The contact base 41 includes, in this order from the base to the tip of the contact base 41, a horizontal portion 45, an extension portion 46, and a contact portion 47. To facilitate understanding, in Fig. 8, the boundary between the connection base main body 40A and the horizontal portion 45, the boundary between the horizontal portion 45 and the extension portion 46, and the boundary between the extension portion 46 and the contact portion 47 are indicated by dashed two-dot lines.

[0032] The horizontal portion 45 linearly protrudes in the width direction from the connecting base main body 40A. The horizontal portion 45 is embedded in the receptacle housing 6, and is thereby fixed to the receptacle housing 6 so as not to be elastically deformable.

[0033] The extension portion 46 elastically supports the contact portion 47 so that the contact portion 47 is elastically displaceable in the width direction. The extension portion 46 extends upward from the tip of the horizontal portion 45 and at an angle so as to approach the second contact base row 41B.

[0034] The contact portion 47 is a portion that comes into contact with the contacts of the plug 5. The contact portion 47 includes a curved portion 47A that curves upward from the upper end of the extension portion 46 to form a convex shape and approach the second contact base row 41B, and a removal guide portion 47B that extends downward from the tip of the curved portion 47A and at an angle away from the second contact base row 41B.

[0035] With the above configuration, extension portion 46 and contact portion 47 are not embedded in receptacle housing 6 and are therefore elastically deformable. Contact portion 47 is supported by horizontal portion 45 via extension portion 46, and is configured to be displaceable in the width direction as extension portion 46 elastically deforms.

[0036] 8, each conductive pattern 32 is formed from one of two contact bases 41 facing each other in the width direction to the other contact base 41. Specifically, each conductive pattern 32 extends from the contact portion 47 of a contact base 41 belonging to the first contact base row 41A, through the extension portion 46, the horizontal portion 45, the connecting base main body 40A, the horizontal portion 45 and the extension portion 46 of a contact base 41 belonging to the second contact base row 41B, in that order, to the contact portion 47 of a contact base 41 belonging to the second contact base row 41B. Each conductive pattern 32 functions as a contact by being formed on the insulating layer 31.

[0037] Each conductive pattern 32 includes a connecting pattern portion 32A that faces the connecting base main body 40A across the insulating layer 31, and two contact pattern portions 32B that face two contact bases 41 that face each other in the width direction across the insulating layer 31. The two contact pattern portions 32B are electrically connected to each other via the connecting pattern portion 32A.

[0038] 9, the two contact pattern portions 32B may be electrically independent of each other. With the above configuration, the number of cores can be increased with a simple structure. In this case, the two contact pattern portions 32B would be used as two contacts for differential transmission, for example.

[0039] Returning to FIG. 8 , in this embodiment, each conductive pattern 32 is covered with resist 48 except for a portion thereof. That is, the resist 48 is provided on the opposite side of the insulating layer 31 across each conductive pattern 32. The resist 48 mainly prevents unintended electrical contact between each conductive pattern 32 and, for example, the lower substrate 2 or the plug 5. The resist 48 does not cover the connecting pattern portion 32A. Therefore, the connecting pattern portion 32A of each conductive pattern 32 can be soldered to the corresponding electrode pad of the lower substrate 2. Furthermore, the resist 48 does not cover the portion of the contact pattern portion 32B facing the contact portion 47. Therefore, the resist 48 does not impede electrical contact between the contact pattern portion 32B of each conductive pattern 32 and the contact of the plug 5.

[0040] Returning to FIGS. 1 and 2, the receptacle housing 6 includes a bottom plate 50 and an outer peripheral wall 51 .

[0041] The bottom plate 50 has a rectangular plate shape in plan view, with the thickness direction aligned with the vertical direction. The connecting bases 40 of each receptacle contact assembly 7, horizontal portions 45 of multiple contact bases 41, and multiple anti-shrinkage beams 42 shown in FIGS. 6 and 8 are embedded in the bottom plate 50. This ensures rigidity of the bottom plate 50, primarily against bending. Furthermore, the excellent thermal conductivity of each anti-shrinkage beam 42 uniforms the cooling rate of the receptacle housing 6 across the width, thereby suppressing the occurrence of sink marks in the receptacle housing 6 and improving the yield of receptacles 4.

[0042] Furthermore, as shown in Figure 8, by embedding the portion of each conductive pattern 32 facing the horizontal portion 45 in the bottom plate 50, solder wicking and flux wicking can be effectively prevented when soldering the connecting pattern portion 32A of each conductive pattern 32 to the corresponding electrode pad on the lower substrate 2.

[0043] Returning to FIG. 1 , the outer peripheral wall 51 is formed to protrude upward from the outer peripheral edge of the bottom plate 50. The outer peripheral wall 51 has an outer peripheral surface 51A. The connecting base extension 40B of the connecting base 40 of the base 30 of each receptacle contact assembly 7 protrudes slightly outward in the pitch direction from the outer peripheral surface 51A. That is, the cut surface 40C of the connecting base extension 40B of the connecting base 40 of the base 30 of each receptacle contact assembly 7, facing outward in the pitch direction, is located slightly outward in the pitch direction from the outer peripheral surface 51A. However, instead, the cut surface 40C may be flush with the outer peripheral surface 51A or may be located slightly inward in the pitch direction from the outer peripheral surface 51A. Note that in this embodiment, as shown in FIG. 1 , similar to the connecting base extension 40B, the insulating layer 31 and resist 48 laminated on the connecting base extension 40B also protrude slightly outward in the pitch direction from the outer peripheral surface 51A.

[0044] Returning to FIG. 3 , in this embodiment, the positions of the multiple receptacle contact assemblies 7 in the pitch direction are aligned. Therefore, the multiple contact bases 41 of two adjacent receptacle contact assemblies 7 in the width direction face each other in the width direction. However, instead of this, as shown in FIG. 10 , the multiple contact bases 41 of the second receptacle contact assembly 9 and the multiple contact bases 41 of the third receptacle contact assembly 10 may be staggered so that the multiple contact bases 41 of the second receptacle contact assembly 9 and the multiple contact bases 41 of the third receptacle contact assembly 10 do not face each other in the width direction. In this case, the multiple anti-shrinkage beams 42 may be extended so that the multiple anti-shrinkage beams 42 of the second receptacle contact assembly 9 and the multiple anti-shrinkage beams 42 of the third receptacle contact assembly 10 face each other in the pitch direction. In this case, the rigidity of the receptacle housing 6 and the uniformity of the cooling rate can be further improved.

[0045] Next, a method for manufacturing the receptacle 4 will be described with reference to Figures 11 to 18. Figure 11 shows the manufacturing flow of the receptacle 4. As shown in Figure 11, the method for manufacturing the receptacle 4 includes an assembly manufacturing step (S100), an accommodation step (S110), an insert molding step (S120), and a removal step (S130). That is, when manufacturing the receptacle 4, first, multiple receptacle contact assemblies 7 are manufactured separately, and then insert molding is performed to form the receptacle housing 6 so that it is integrated with the multiple receptacle contact assemblies 7. Manufacturing the multiple receptacle contact assemblies 7 separately means that the multiple receptacle contact assemblies 7 are not connected to each other before insert molding.

[0046] Assembly manufacturing step (S100): In the assembly manufacturing step, a plurality of receptacle contact assemblies 7 shown in Figure 3 are individually manufactured. The assembly manufacturing step includes a lamination step (S140), a conductive pattern formation step (S150), a punching step (S160), a bending step (S170), and a carrier removal step (S180).

[0047] Lamination step (S140): In the lamination step, a stainless steel hoop material is procured and an insulating layer is laminated on one side of the hoop material.

[0048] Conductive pattern formation step (S150): Next, as shown in Fig. 12, a plurality of conductive patterns 32 are formed as contacts on an insulating layer 61 laminated on the hoop material 60. The two-dot chain line in Fig. 12 indicates that the hoop material 60 continues along the feeding direction of the hoop material 60. The same applies to Figs. 13 and 14.

[0049] Punching processing step (S160): 13, the hoop material 60 is punched to form the receptacle contact assembly 7 and the carrier 62. In this embodiment, the pitch direction of the receptacle contact assembly 7 is aligned with the feed direction of the hoop material 60.

[0050] As shown in FIG. 13 , specifically, the hoop material 60 is punched out so that the base 30 of the receptacle contact assembly 7 has two support bases 43 sandwiching the connecting base 40 in the pitch direction. In FIG. 13 , the boundary P between the connecting base 40 and the two support bases 43 is indicated by a dashed line. As shown in FIG. 13 , each support base 43 extends outward in the pitch direction from the corresponding connecting base extension 40B of the connecting base 40. Each support base 43 includes a connecting portion 43A connecting to the connecting base extension 40B and a positioning portion 43B disposed outward in the pitch direction from the connecting portion 43A. The positioning portion 43B and connecting portion 43A of one support base 43, the connecting base 40, and the connecting portion 43A and positioning portion 43B of the other support base 43 are aligned in this order in the pitch direction. Therefore, as described above, the connecting base 40 is positioned between the two support bases 43 in the pitch direction.

[0051] Each positioning portion 43B is formed wider than each connecting portion 43A. That is, the widthwise dimension W1 of each positioning portion 43B is greater than the widthwise dimension W2 of each connecting portion 43A. The widthwise dimension W3 of each connecting base extension 40B is equal to the dimension W2. Each positioning portion 43B is formed with a positioning hole 43C. The positioning hole 43C is typically a circular hole.

[0052] The carrier 62 includes a carrier body 62A extending in the pitch direction and two carrier connecting portions 62B that connect the carrier body 62A to the two support bases 43 of the receptacle contact assembly 7, respectively.

[0053] Bending step (S170): Next, as shown in Fig. 14, the multiple contact bases 41 protruding from the connection base main body 40A are bent at least in the thickness direction of the connection base main body 40A. Specifically, in Fig. 14, the multiple contact bases 41 are bent toward the back of the page. For details on how to bend each contact base 41, please refer to Figs. 5, 6, and 8 as appropriate.

[0054] Carrier Removal Step (S180): Next, the carrier 62 is separated from the receptacle contact assembly 7. Specifically, the two carrier connecting portions 62B of the carrier 62 are cut off near the corresponding positioning portions 43B.

[0055] Containment Step (S110): 16 and 17 show an injection molding die 70 used to injection-mold the receptacle housing 6. The injection molding die 70 includes a fixed-side mold plate 71 and a movable-side mold plate 72. The movable-side mold plate 72 is configured to be movable up and down relative to the fixed-side mold plate 71. As shown in FIG. 16, to accommodate the receptacle contact assemblies 7 in the injection molding die 70, first, with the injection molding die 70 open, a plurality of receptacle contact assemblies 7 are set on the dividing surface 71A of the fixed-side mold plate 71 using a plurality of positioning pins 71B protruding upward from the dividing surface 71A of the fixed-side mold plate 71. At this time, the positioning pins 71B are inserted into the positioning holes 43C of the receptacle contact assemblies 7, thereby positioning the receptacle contact assemblies 7 relative to the fixed-side mold plate 71 in the pitch and width directions. To position one receptacle contact assembly 7, two positioning pins 71B are inserted into two positioning holes 43C, respectively, so the receptacle contact assembly 7 cannot rotate horizontally when set on parting surface 71A of fixed-side template 71. Furthermore, because the two positioning holes 43C are formed as far away from each other as possible in the pitch direction, high-precision positioning of the receptacle contact assembly 7 relative to the fixed-side template 71 is achieved.

[0056] 14 to 16, the multiple receptacle contact assemblies 7 are manufactured separately. Therefore, as shown in FIG. 16, the multiple receptacle contact assemblies 7 can be packed together in the width direction, which contributes to reducing the size of the receptacle 4 in the width direction. If the multiple receptacle contact assemblies 7 were manufactured in a connected state and insert molding were performed while maintaining this connected state, the contact bases 41 of two adjacent receptacle contact assemblies 7 in the width direction would have to be extremely short. This is because, in a developed view of two adjacent receptacle contact assemblies 7 in the width direction, the contact bases 41 of the two adjacent receptacle contact assemblies 7 in the width direction would overlap.

[0057] 17, the injection molding die 70 is clamped. At this time, the two support bases 43 of the receptacle contact assembly 7 are used to support both ends of the receptacle contact assembly 7 within the injection molding die 70. Specifically, the positioning portions 43B of the two support bases 43 are sandwiched between a fixed-side mold plate 71 and a movable-side mold plate 72 in the vertical direction, thereby supporting both ends of the receptacle contact assembly 7 within the injection molding die 70.

[0058] Insert molding step (S120): Next, molten resin is supplied to the cavity of the injection mold 70. Then, the receptacle housing 6 is formed integrally with the multiple receptacle contact assemblies 7 by insert molding. The receptacle housing 6 is formed by a single insert molding. The receptacle housing 6 is formed in a single cavity. The receptacle housing 6 is molded as a single part.

[0059] 18 shows a molded product 80 removed from the injection molding die 70. As shown in Fig. 18, in the insert molding step, the receptacle housing 6 is formed so that the two support bases 43 of each receptacle contact assembly 7 are exposed outward in the pitch direction beyond the outer peripheral surface 51A of the outer peripheral wall 51 of the receptacle housing 6. In other words, the cavity of the injection molding die 70 is designed so that the two support bases 43 of each receptacle contact assembly 7 are not covered by the receptacle housing 6.

[0060] Removal step (S130): Then, as shown in Fig. 18, all of the support bases 43 exposed from the receptacle housing 6 are removed. Typically, each support base 43 is cut off from the corresponding connecting base 40 by punching. Fig. 1 shows a cut surface 40C of the connecting base 40 resulting from this process. In this way, the receptacle 4 shown in Fig. 1 is completed.

[0061] However, the support base 43 shown in FIG. 18 may be left as it is without being cut off.

[0062] Next, the plug 5 will be described with reference to Figures 2 and 19. The plug 5 differs from the receptacle 4 mainly in the shape of the contact base, but other structures and manufacturing methods are generally the same. Therefore, in the following description of the plug 5, explanations that overlap with those of the receptacle 4 will be omitted as appropriate.

[0063] As shown in FIG. 2, the plug 5 includes a plug housing 14 made of insulating resin, and a plurality of plug contact assemblies 15 integrated with the plug housing 14 by insert molding.

[0064] As shown in FIGS. 2 and 19, the plug housing 14 includes a bottom plate 90 and a plurality of ridge portions 91.

[0065] The bottom plate 90 has a rectangular plate shape in plan view, with the thickness direction coinciding with the vertical direction. A plurality of ridges 91 protrude downward from the bottom plate 90 and extend in the pitch direction. A plurality of plug contact assemblies 15 are respectively arranged on the plurality of ridges 91.

[0066] Next, each plug contact assembly 15 will be described in detail with reference to Figure 19. However, since all of the multiple plug contact assemblies 15 have the same shape, the shape of the first plug contact assembly 16 will be described as a representative example, and descriptions of the other plug contact assemblies 15 will be omitted.

[0067] Similar to the receptacle contact assembly 7, the first plug contact assembly 16 has a three-layer structure made up of a base 92, an insulating layer 93, and a plurality of conductive patterns 94.

[0068] The base 92 includes a connecting base 95 and two contact bases 96 that protrude from the connecting base 95 and face each other across a ridge portion 91 in the width direction. The two contact bases 96 protrude downward from both ends of the connecting base 95 in the width direction and then bend toward each other. That is, the two contact bases 96 are arranged to sandwich the ridge portion 91. The two contact bases 96 are fixed to the ridge portion 91 so as not to be elastically deformable. Furthermore, the two contact bases 96 are fixed to the ridge portion 91 so as not to be displaceable relative to the ridge portion 91. As shown in FIG. 4, the base 92 has more contact bases 96, but a description of these will be omitted.

[0069] 1 into the receptacle 4, the plug 5 is inserted inside the outer peripheral wall 51 of the receptacle 4. Then, the two contact bases 96 shown in FIG. 19 are inserted between the two contact bases 41 shown in FIG. 8 while moving the two contact bases 41 away from each other in the width direction. This establishes electrical continuity between one conductive pattern 94 arranged to face the two contact bases 96 shown in FIG. 19 and one conductive pattern 32 arranged to face the two contact bases 41 shown in FIG. 8.

[0070] The embodiment of the present invention has been described above, and the above embodiment has the following features.

[0071] 1 and 2, the receptacle 4 (connector) is formed by integrally insert-molding a plurality of receptacle contact assemblies 7 (contact assemblies) extending parallel to one another and a receptacle housing 6 (housing) that accommodates the plurality of receptacle contact assemblies 7. As shown in FIGS. 5 to 8, each receptacle contact assembly 7 includes a metal base 30 that includes a plurality of contact bases 41 arranged in the pitch direction (the longitudinal direction of the receptacle contact assembly 7) and a connection base 40 that connects the plurality of contact bases 41 to one another, and a plurality of conductive patterns 32 provided on the plurality of contact bases 41 via insulating layers 31. As shown in FIG. 11, the manufacturing method of the receptacle 4 includes an assembly manufacturing step (S100), an accommodation step (S110), and an insert-molding step (S120). In the assembly manufacturing step (S100), each receptacle contact assembly 7 is manufactured so that the base 30 has two support bases 43 that sandwich the connecting base 40 in the pitch direction. In the accommodation step (S110), multiple receptacle contact assemblies 7 are accommodated in the injection molding die 70 so that each receptacle contact assembly 7 is supported at both ends within the injection molding die 70 using the two support bases 43. In the insert molding step (S120), the receptacle housing 6 is molded integrally with the multiple receptacle contact assemblies 7 by insert molding. This method contributes to the widthwise miniaturization of the receptacle 4. It also simplifies the manufacture of the receptacle 4. As mentioned above, the number of receptacle contact assemblies 7 that make up the receptacle 4 is not limited, as long as it is at least one. The above technical effects are also achieved in the plug 5, and the same applies hereinafter.

[0072] In this embodiment, the "at least one contact assembly" corresponds to the six receptacle contact assemblies 7 shown in FIG.

[0073] 1 and 2, the receptacle 4 (connector) is formed by integrally insert molding a plurality of receptacle contact assemblies 7 (contact assemblies) extending parallel to one another and a receptacle housing 6 (housing) that houses the plurality of receptacle contact assemblies 7. As shown in Figures 5 to 8, each receptacle contact assembly 7 includes a metal base 30 that includes a plurality of contact bases 41 arranged in the pitch direction (the longitudinal direction of the receptacle contact assembly 7) and a connecting base 40 that connects the plurality of contact bases 41 to one another, and a plurality of conductive patterns 32 provided on the plurality of contact bases 41 via an insulating layer 31. As shown in Fig. 3, the multiple receptacle contact assemblies 7 include a first receptacle contact assembly 8 (first contact assembly), a second receptacle contact assembly 9 (second contact assembly), and a sixth receptacle contact assembly 13 (third contact assembly), in that order in the width direction. As shown in Fig. 11, the method for manufacturing the receptacle 4 includes an assembly manufacturing step (S100), a housing step (S110), and an insert molding step (S120). In the assembly manufacturing step (S100), the second receptacle contact assembly 9 is manufactured so that the base 30 has two support bases 43 that sandwich the connecting base 40 in the pitch direction. In the accommodation step (S110), multiple receptacle contact assemblies 7 are accommodated in the injection molding die 70 so that the second receptacle contact assembly 9 is supported at both ends within the injection molding die 70 using two support bases 43. In the insert molding step (S120), the receptacle housing 6 is molded integrally with the multiple receptacle contact assemblies 7 by insert molding. This method contributes to reducing the size of the receptacle 4 in the width direction. In addition, the receptacle 4 is easy to manufacture.

[0074] In this embodiment, the "at least one second contact assembly" corresponds to the second receptacle contact assembly 9, the third receptacle contact assembly 10, the fourth receptacle contact assembly 11, and the fifth receptacle contact assembly 12 shown in Figure 3.

[0075] Also, as shown in Figure 17, in the accommodation step (S110), the two support bases 43 are sandwiched between the fixed side mold plate 71 and the movable side mold plate 72 in the direction in which the movable side mold plate 72 moves forward and backward relative to the fixed side mold plate 71 of the injection molding mold 70, thereby supporting both ends of the second receptacle contact assembly 9 within the injection molding mold 70.

[0076] Also, as shown in FIG. 13, in the insert molding step (S120), the receptacle housing 6 is molded so that the two support bases 43 of the second receptacle contact assembly 9 are exposed outward in the pitch direction beyond the outer peripheral surface 51A of the receptacle housing 6.

[0077] 11, after the insert molding step, a removal step (S140) of removing the two support bases 43 of the second receptacle contact assembly 9 may be further included.

[0078] 13 to 16, in the assembly manufacturing step (S100), the second receptacle contact assembly 9 and the third receptacle contact assembly 10 are manufactured as separate parts. With the above configuration, the second receptacle contact assembly 9 and the third receptacle contact assembly 10 can be arranged close together in the width direction, which contributes to making the receptacle 4 smaller in width.

[0079] 1, when viewing the receptacle 4 along the pitch direction, cut surface 40C of base 30 of second receptacle contact assembly 9 can be observed. Furthermore, base 30 of second receptacle contact assembly 9 protrudes outward from outer peripheral surface 51A of receptacle housing 6. Cut surface 40C of base 30 of second receptacle contact assembly 9 is located outward in the pitch direction from outer peripheral surface 51A of receptacle housing 6. These features indicate that two support bases 43 of second receptacle contact assembly 9 shown in FIG. 18 have been cut off after insert molding.

[0080] 8, the plurality of contact bases 41 are formed to protrude upward from the connecting base 40 at least in the thickness direction of the connecting base 40. In the receptacle 4, the plurality of contact bases 41 are elastically deformable in the width direction. In contrast, in the plug 5, the plurality of contact bases 96 are fixed to the ridge portion 91 and are therefore not elastically deformable.

[0081] 5 and 6, the contact bases 41 are arranged in two rows with the connecting base 40 sandwiched between them. The contact bases 41 belonging to one row and the contact bases 41 belonging to the other row face each other in the width direction.

[0082] As shown in Fig. 8, two contact pattern portions 32B (conductive patterns) formed on two contact bases 41 facing each other in the width direction are electrically connected to each other. However, instead of this, as shown in Fig. 9, the two contact pattern portions 32B may be electrically independent from each other.

[0083] 7, the base 30 may include at least one anti-shrinkage beam 42 that protrudes widthwise from the connecting base 40 and is fixed to the receptacle housing 6. The at least one anti-shrinkage beam 42 may include two anti-shrinkage beams 42 that protrude from the connecting base 40 away from each other.

[0084] 8, each conductive pattern 32 is covered with resist 48 except for a portion on the contact base 41. With the above configuration, unintentional short circuits can be prevented.

[0085] 10, of two adjacent receptacle contact assemblies 7, the multiple contact bases 41 of the second receptacle contact assembly 9 and the multiple contact bases 41 of the third receptacle contact assembly 10 may be staggered so as not to face each other in the width direction. With the above configuration, the multiple receptacle contact assemblies 7 can be arranged at even closer intervals in the width direction.

[0086] (Appendix 1) at least three contact assemblies extending parallel to one another; a housing that accommodates the at least three contact assemblies; are integrally formed by insert molding, A connector, Each contact assembly is a metal base including a plurality of contact bases arranged in the longitudinal direction of the contact assembly and a connecting base connecting the plurality of contact bases to one another; a plurality of conductive patterns provided on the plurality of contact bases via an insulating layer; Including, The at least three contact assemblies include: a first contact assembly, at least one second contact assembly, and a third contact assembly, in that order in a direction perpendicular to the longitudinal direction; In a method for manufacturing a connector, an assembly manufacturing step of manufacturing the at least one second contact assembly such that the base has two support bases sandwiching the connecting base in the longitudinal direction; a step of placing the at least three contact assemblies in the injection molding die so that the at least one second contact assembly is supported at both ends within the injection molding die using the two support bases; an insert molding step of molding the housing integrally with the at least three contact assemblies by insert molding; Including, Manufacturing method. (Appendix 2) at least three contact assemblies extending parallel to one another; a housing that accommodates the at least three contact assemblies; are integrally formed by insert molding, A connector, Each contact assembly is a metal base including a plurality of contact bases arranged in the longitudinal direction of the contact assembly and a connecting base connecting the plurality of contact bases to one another; a plurality of conductive patterns provided on the plurality of contact bases via an insulating layer; Including, The at least three contact assemblies include: a first contact assembly, at least one second contact assembly, and a third contact assembly, in that order, perpendicular to the longitudinal direction; a cut surface of the base of the at least one second contact assembly is visible when viewing the connector along the longitudinal direction; connector. [Explanation of symbols]

[0087] 1 Connector Assembly 2 Lower board 2A connector mounting surface 3 Upper board 3A connector mounting surface 4 Receptacle (connector) 5 Plug (connector) 6 Receptacle housing (housing) 7 Receptacle contact assembly (contact assembly) 8 First receptacle contact assembly (contact assembly, first contact assembly) 9 Second receptacle contact assembly (contact assembly, second contact assembly) 10 Third receptacle contact assembly (contact assembly, second contact assembly) 11 4th receptacle contact assembly (contact assembly, 2nd contact assembly) 12 5th receptacle contact assembly (contact assembly, 2nd contact assembly) 13 6th receptacle contact assembly (contact assembly, 3rd contact assembly) 14 Plug housing (housing) 15 Plug contact assembly (contact assembly, first contact assembly) 16 First plug contact assembly (contact assembly, second contact assembly) 17 Second plug contact assembly (contact assembly, second contact assembly) 18 Third plug contact assembly (contact assembly, second contact assembly) 19 4th plug contact assembly (contact assembly, 2nd contact assembly) 20 5th plug contact assembly (contact assembly, 2nd contact assembly) 21 6th plug contact assembly (contact assembly, 3rd contact assembly) 30 base 31 Insulating layer 32 Conductive pattern 32A Connecting pattern part 32B Contact pattern part (conductive pattern) 40 Consolidated basis 40A connecting base body 40B Connecting base extension 40C cutting surface 41 Contact Base 41A First Contact Base Row 41B Second Contact Base Row 42 Shrinkage prevention beam 42A First anti-shrinkage beam row 42B Second anti-shrinkage beam row 43 Support Base 43A connection 43B Positioning part 43C Positioning hole 45 Horizontal section 46 Extension 47 Contact area 47A curved section 47B Removal guide 48 Resist 50 Bottom plate 51 Outer wall 51A Outer surface 60 hoop material 61 Insulating layer 62 Career 62A Carrier body 62B Carrier connection part 70 Injection mold 71 Fixed side template 71A Split plane 71B Locating Pin 72 Movable side template 80 Molded products 90 Bottom plate 91 Ridge 92 base 93 Insulating Layer 94 Conductive Pattern 95 Consolidated basis 96 Contact Base P border W1 dimension W2 dimension W3 dimension

Claims

1. at least one contact assembly; a housing containing the at least one contact assembly; are integrally formed by insert molding. A connector, The at least one contact assembly includes a metal base including a plurality of contact bases arranged in the longitudinal direction of the contact assembly and a connecting base connecting the plurality of contact bases to each other, and a plurality of conductive patterns respectively provided on the plurality of contact bases via an insulating layer. In a method for manufacturing a connector, an assembly manufacturing step of manufacturing the at least one contact assembly such that the base has two support bases sandwiching the connecting base in the longitudinal direction; a step of placing the at least one contact assembly in the injection molding die so that both ends of the at least one contact assembly are supported within the injection molding die using the two support bases; an insert molding step of integrally molding the housing with the at least one contact assembly by insert molding; Including, Manufacturing method.

2. The method of claim 1, In the accommodating step, the two support bases are sandwiched between the fixed-side mold plate and the movable-side mold plate in the direction of advancement and retreat of the movable-side mold plate relative to the fixed-side mold plate of the injection molding die, thereby supporting both ends of the at least one contact assembly within the injection molding die. Manufacturing method.

3. The manufacturing method according to claim 1 or 2, In the insert molding step, the housing is molded so that the two support bases of the at least one contact assembly are exposed outside the outer circumferential surface of the housing. Manufacturing method.

4. The manufacturing method according to claim 3, and further comprising, after the insert molding step, a removing step of removing the two support bases of the at least one contact assembly. Manufacturing method.

5. The manufacturing method according to any one of claims 1 to 4, the at least one contact assembly includes at least three contact assemblies extending parallel to one another; the at least three contact assemblies include a first contact assembly, at least one second contact assembly, and a third contact assembly, in this order in a direction perpendicular to the longitudinal direction; In the assembly manufacturing step, the at least one second contact assembly is manufactured so that the base has two support bases sandwiching the connecting base in the longitudinal direction; In the placing step, the at least three contact assemblies are placed in the injection molding die such that both ends of the at least one second contact assembly are supported within the injection molding die using the two support bases. Manufacturing method.

6. The manufacturing method according to claim 5, the at least one second contact assembly includes a plurality of second contact assemblies; In the assembly manufacturing step, the plurality of second contact assemblies are manufactured as separate parts. Manufacturing method.

7. at least one contact assembly; a housing containing the at least one contact assembly; are integrally formed by insert molding. A connector, the at least one contact assembly includes a metal base including a plurality of contact bases arranged in a longitudinal direction of the contact assembly and a connecting base connecting the plurality of contact bases to one another; and a plurality of conductive patterns respectively provided on the plurality of contact bases via an insulating layer, a cut surface of the base of the at least one contact assembly is visible when viewing the connector along the longitudinal direction; connector.

8. 8. The connector of claim 7, the base of the at least one contact assembly protrudes outward from the outer circumferential surface of the housing; connector.

9. 9. The connector of claim 8, the cut surface of the base of the at least one contact assembly is located outside an outer circumferential surface of the housing in the longitudinal direction; connector.

10. 10. The connector according to claim 7, wherein: The plurality of contact bases are formed so as to protrude from the connecting base at least in the thickness direction of the connecting base. connector.

11. 11. The connector of claim 10, the plurality of contact bases are elastically deformable; connector.

12. 11. The connector of claim 10, the plurality of contact bases are non-elastically deformable; connector.

13. 13. The connector according to any one of claims 10 to 12, The plurality of contact bases are arranged in two rows with the connecting base sandwiched between them. connector.

14. 14. The connector of claim 13, The plurality of contact bases belonging to one row and the plurality of contact bases belonging to the other row face each other in a direction perpendicular to the longitudinal direction. connector.

15. 15. The connector of claim 14, two conductive patterns formed on two contact bases facing each other in a direction perpendicular to the longitudinal direction are electrically connected to each other; connector.

16. 15. The connector of claim 14, two conductive patterns formed on two contact bases facing each other in a direction perpendicular to the longitudinal direction are electrically independent from each other; connector.

17. 17. The connector according to any one of claims 7 to 16, the base includes at least one anti-shrinkage beam protruding from the connecting base in a direction perpendicular to the longitudinal direction and fixed to the housing; connector.

18. 18. The connector of claim 17, the at least one anti-shrinkage beam includes two anti-shrinkage beams protruding away from each other from the connecting base; connector.

19. 19. The connector according to any one of claims 7 to 18, Each conductive pattern is covered with a resist except for a portion of the contact base. connector.

20. 20. The connector according to any one of claims 7 to 19, the plurality of contact bases of one contact assembly of two adjacent contact assemblies and the plurality of contact bases of the other contact assembly are staggered so as not to face each other in a direction perpendicular to the longitudinal direction; connector.

21. 21. The connector according to any one of claims 7 to 20, the at least one contact assembly includes at least three contact assemblies extending parallel to one another; the at least three contact assemblies include a first contact assembly, at least one second contact assembly, and a third contact assembly, in this order in a direction perpendicular to the longitudinal direction; a cut surface of the base of the at least one second contact assembly is visible when viewing the connector along the longitudinal direction; connector.

Citation Information

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