connector

The connector design with a conductive shield attachment stabilizes connections between shell rings, addressing electromagnetic noise leakage and ensuring effective shielding for large currents in vehicle connectors.

JP7794087B2Active Publication Date: 2026-01-06AUTONETWORKS TECH LTD +2
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Patent Information

Application Number
JP2022120772
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-28
Publication Date
2026-01-06
Estimated Expiration
2042-07-28

AI Technical Summary

Technical Problem

Connectors in vehicles face challenges in handling large currents and voltages, leading to gaps between crimping rings that allow electromagnetic noise to leak, compromising electromagnetic shielding performance.

Method used

A connector design with a conductive shield attachment that covers gaps between shell rings, electrically connecting them and applying a force parallel to the ring direction to stabilize the connection and suppress vibration, ensuring effective electromagnetic shielding.

Benefits of technology

The design accommodates large currents while maintaining robust electromagnetic shielding performance by stabilizing the connection between shell rings and suppressing vibrations.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a connector that can ensure electromagnetic shielding performance while being adaptable to an increase of current.SOLUTION: A plurality of electric wires 22 each having an electromagnetic shielding member 33 are electrically connected to a plurality of terminals arranged side by side in a first direction D1. A plurality of shell rings 25 attached to the plurality of electric wires 22 are arranged side by side in the first direction D1. A conductive attachment 26 is arranged between adjacent shell rings 25 in the first direction D1. Each shell ring 25 electrically connects the electromagnetic shielding member 33 of the electric wire 22 to which the shell ring 25 is attached, and a shield shell 24 that covers the plurality of terminals. The attachment 26 has a covering portion 91 that covers the gap between the shell rings 25 adjacent to each other in the first direction D1. The attachment 26 also includes a first pressing portion 92a and a second pressing portion 92b that come into contact with contact surfaces 85 adjacent to the attachment 26 in the first direction D1 and press the contact surfaces 85 with a force including a component in a direction parallel to the first direction D1.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] The present disclosure relates to connectors. [Background technology]

[0002] Conventionally, as described in Patent Document 1, for example, there is a connector including a plurality of terminals, a plurality of electric wires electrically connected to the plurality of terminals, a connector housing holding the plurality of terminals, and a conductive shield shell. In the connector described in Patent Document 1, the electric wire is a shielded electric wire having a core wire electrically connected to the terminal, an insulating coating covering the outer periphery of the core wire, and an electromagnetic shielding member covering the outer periphery of the insulating coating. In such a connector, for example, the plurality of terminals are arranged in a direction perpendicular to the length of the electric wire. Similarly, inside the connector housing, the plurality of electric wires are arranged in a direction perpendicular to the length of the electric wire. Furthermore, each of the plurality of electric wires is drawn out from the inside of the connector housing to the outside.

[0003] In the connector described in Patent Document 1, the end of the electromagnetic shielding member in the longitudinal direction of the electric wire is folded back so as to cover the outer circumferential surface of the electric wire. An annular crimping ring is attached to the outer periphery of the folded back portion of the electromagnetic shielding member. The electromagnetic shielding member and the crimping ring are electrically connected by contacting each other. The shielding shell is tubular and surrounds the outer periphery of the crimping rings attached to each of the multiple electric wires. The shielding shell and each crimping ring are electrically connected by contacting each other. In addition, adjacent crimping rings in a direction perpendicular to the longitudinal direction of the electric wire are in contact with each other in the direction perpendicular to the longitudinal direction of the electric wire. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-69159 Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, connectors installed in vehicles such as automobiles are often required to handle large currents and voltages. In such cases, electric wires with large diameters are used to allow the passage of large currents. Furthermore, terminals electrically connected to the electric wires are also used with large cross-sectional areas to allow the passage of large currents. The greater the current and voltage values ​​of the currents passing through the terminals, the greater the distance between adjacent terminals must be to insulate them from each other. Therefore, the distance between the portions of adjacent electric wires extending from the connector housing also becomes longer. This results in gaps between the crimping rings attached to adjacent electric wires in the connector. As a result, there is a concern that electromagnetic noise radiated from the electric wires and terminals may leak out of the connector through these gaps, reducing the electromagnetic shielding performance.

[0006] An object of the present disclosure is to provide a connector that can accommodate large currents while ensuring electromagnetic shielding performance. [Means for solving the problem]

[0007] The connector of the present disclosure includes a plurality of terminals arranged in a first direction, a plurality of electric wires electrically connected to the plurality of terminals, a connector housing that holds the plurality of terminals therein and has a first opening through which the plurality of electric wires pass in a second direction intersecting the first direction, a conductive shield shell that covers the plurality of terminals, a plurality of shell rings that are respectively attached to the plurality of electric wires and arranged in the first direction, and a conductive shield attachment that is disposed between the shell rings adjacent to each other in the first direction, wherein the shield shell has a second opening through which the plurality of electric wires pass in the second direction, and each of the plurality of electric wires has a core wire, an inner insulating coating that covers the outer periphery of the core wire, and a conductive inner insulating coating that is a shielded electric wire having an electromagnetic shielding member covering the outer periphery of a side insulating coating, wherein each of the plurality of shell rings electrically connects the electromagnetic shielding member of the electric wire to which the shell ring is attached among the plurality of electric wires to the shield shell, the outer periphery of each of the plurality of shell rings having a contact surface that comes into contact with the shield attachment, and the shield attachment has a covering portion that is located inside the second opening when viewed from the second direction and covers the gap between the shell rings adjacent in the first direction, and a pressing portion that contacts the shield attachment and the contact surface adjacent in the first direction and presses the contact surface with a force that includes a component in a direction parallel to the first direction. [Effects of the Invention]

[0008] The connector of the present disclosure can accommodate large currents while ensuring electromagnetic shielding performance. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a perspective view of a connector according to one embodiment. [Figure 2] FIG. 2 is an exploded perspective view of the connector shown in FIG. [Figure 3] FIG. 3 is a cross-sectional view taken along line 3-3 in FIG. [Figure 4] FIG. 4 is a cross-sectional view taken along line 4-4 in FIG. [Figure 5] 5 is an enlarged cross-sectional view of a portion of the connector shown in FIG. [Figure 6] 6 is a partially cross-sectional perspective view of the connector shown in FIG. 1, excluding the connector housing, as viewed from an angle different from that of FIG. [Figure 7] 7 is a partial cross-sectional side view of the connector shown in FIG. 6, excluding the connector housing. [Figure 8] 8 is an enlarged cross-sectional view of a part of the connector shown in FIG. 6, excluding the connector housing. [Figure 9] 9 is a perspective view of a shield attachment included in the connector shown in FIG. 1. FIG. [Figure 10] 10 is a perspective view of a back retainer holder and a shield attachment included in the connector shown in FIG. 1. FIG. [Figure 11] 11 is a cross-sectional view of the back retainer holder and the shield attachment shown in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0010] [Description of the embodiments of the present disclosure] First, embodiments of the present disclosure will be listed and described. The connector of the present disclosure comprises: [1] A connector housing includes: a plurality of terminals arranged in a first direction; a plurality of electric wires electrically connected to the plurality of terminals; a connector housing that holds the plurality of terminals therein and has a first opening through which the plurality of electric wires pass in a second direction intersecting the first direction; a conductive shield shell that covers the plurality of terminals; a plurality of shell rings that are respectively attached to the plurality of electric wires and arranged in the first direction; and a conductive shield attachment that is disposed between the shell rings adjacent to each other in the first direction, wherein the shield shell has a second opening through which the plurality of electric wires pass in the second direction, and each of the plurality of electric wires includes a core wire, an inner insulating coating that covers the outer periphery of the core wire, and a conductive inner insulating coating. and an electromagnetic shielding member covering the outer periphery of a sheath, wherein each of the plurality of shell rings electrically connects the electromagnetic shielding member of the electric wire to which the shell ring is attached among the plurality of electric wires to the shield shell, the outer periphery of each of the plurality of shell rings has a contact surface that comes into contact with the shield attachment, and the shield attachment has a covering portion that is located inside the second opening when viewed from the second direction and covers the gap between the shell rings adjacent in the first direction, and a pressing portion that contacts the shield attachment and the contact surface adjacent in the first direction and presses the contact surface with a force that includes a component in a direction parallel to the first direction.

[0011] With this configuration, the shield attachment is electrically connected to the shell ring when the pressing portion comes into contact with the contact surface. The covering portion prevents electromagnetic noise emitted from the wires and terminals from leaking to the outside of the connector through gaps between adjacent shell rings in the first direction. Therefore, even if adjacent shell rings in the first direction are spaced apart in the first direction, the electromagnetic shielding performance of the connector can be ensured.

[0012] The pressing portion presses the contact surface with a force that includes a component in a direction parallel to the first direction, making it difficult for the shell ring to vibrate in the first direction. This makes it possible to suppress vibration of the wire to which the shell ring is attached in the first direction.

[0013] [2] In the above [1], the pressing portion may press the contact surfaces of the shell ring located on both sides of the shield attachment in the first direction on both sides of an imaginary line passing through the centers of the plurality of electric wires when viewed from the second direction.

[0014] With this configuration, the shield attachment can contact the shell ring at multiple points. Therefore, the electrical connection between the shield attachment and the adjacent shell ring is more stable than when the shield attachment contacts the adjacent shell ring at only one point. Furthermore, the shield attachment can more easily suppress vibration of the shell ring than when the shield attachment presses the adjacent shell ring with the pressing portion at only one point. Therefore, vibration of the electric wire in the first direction can be more effectively suppressed.

[0015] [3] In the above [1] or [2], the pressing portion may press a portion of the contact surface of the shield attachment and the shell ring adjacent to the first direction that intersects with an imaginary line passing through the centers of the multiple electric wires, when viewed from the second direction.

[0016] According to this configuration, the force pressing the electric wire in the direction parallel to the first direction can be stably transmitted from the pressing portion to the electric wire via the shell ring, thereby further suppressing vibration of the electric wire in the first direction.

[0017] [4] In any one of the above [1] to [3], the shield attachment may have a contact portion that contacts the shield shell. With this configuration, the shield attachment is not only indirectly electrically connected to the shield shell via the shell ring, but also directly electrically connected to the shield shell by the contact portion coming into contact with the shield shell. This allows the shield attachment to be electrically connected to the shield shell more stably, thereby ensuring electromagnetic shielding performance of the shield attachment.

[0018] [5] In any of the above [1] to [4], the pressing portion may have a leaf spring portion and a contact protrusion that protrudes from the surface of the leaf spring portion and is pressed against the contact surface by the elastic force of the leaf spring portion.

[0019] With this configuration, the contact protrusions protrude from the leaf spring portion, making it easy for them to come into contact with the contact surface. The elastic force of the leaf spring portion presses the contact protrusions against the contact surface, making it easy for the pressing portion to maintain contact with the contact surface. This stabilizes the electrical connection between the shell ring and the shield attachment.

[0020] [6] In any one of the above [1] to [5], the contact surface may be a plane perpendicular to the first direction. With this configuration, when the pressing portion presses the contact surface, the pressing portion can easily apply a force to the shell ring in a direction parallel to the first direction. Therefore, vibration of the shell ring in the first direction can be further suppressed. Therefore, vibration of the electric wire in the first direction can be further suppressed.

[0021] [7] In any of [1] to [6] above, the outer shape of each of the plurality of shell rings may be rectangular when viewed from the second direction, and the outer peripheral surface of each of the plurality of shell rings may have two faces parallel to the first direction and two faces perpendicular to the first direction when viewed from the second direction, and the contact surface may be included in the face of the outer peripheral surface of each of the plurality of shell rings that is perpendicular to the first direction.

[0022] This configuration prevents the gap between adjacent shell rings in the first direction from becoming complex. Therefore, the shape of the covering portion that covers the gap can be prevented from becoming complex, and the shape of the shield attachment can be prevented from becoming complex. As a result, the shield attachment can be manufactured more easily. Furthermore, because the gap between adjacent shell rings in the first direction can be easily covered by the covering portion, the electromagnetic shielding performance of the connector can be easily ensured.

[0023] [8] In any one of the above [1] to [7], a back retainer holder that is attached to the first opening and has through holes through which the plurality of electric wires pass in the second direction; The shield attachment may further include a sealing member that seals between the outer peripheral surface of each of the plurality of electric wires and the inner peripheral surface of the through hole, and the shield attachment may be positioned between the shell rings adjacent to each other in the first direction when attached to the back retainer holder.

[0024] According to this configuration, when assembling the connector, the back retainer holder with the shield attachment attached can be attached to the first opening. This makes it easier to position the shield attachment between adjacent shell rings in the first direction than when a single shield attachment is inserted between adjacent shell rings in the first direction. Furthermore, because the shield attachment is attached to the back retainer holder, it is possible to prevent the shield attachment from shifting position inside the connector.

[0025] [Details of the embodiments of the present disclosure] Specific examples of connectors according to the present disclosure are described below with reference to the drawings. For ease of explanation, some components may be exaggerated or simplified in the drawings. The dimensional proportions of the components may vary from one drawing to another. Each drawing illustrates X, Y, and Z axes that are orthogonal to one another. In this specification, "orthogonal" does not necessarily mean strictly orthogonal, but also includes roughly orthogonal structures within the scope of the present embodiment's effects. The term "annular" as used herein may refer to any structure that forms a loop, i.e., a continuous shape without ends, as well as a structure that has a C-shaped gap and forms an overall loop shape. Examples of "annular" shapes include, but are not limited to, circles, ellipses, and polygons with pointed or rounded corners. Terms such as "first," "second," and "third" are used herein merely to distinguish between objects and do not rank them. The present invention is not limited to these examples, but is defined by the claims, and all modifications within the meaning and scope of the claims are intended to be included.

[0026] An embodiment of the connector will now be described. The connector 20 of this embodiment shown in Fig. 1 is provided at the end of a wire harness. The connector 20 is disposed in a vehicle such as an automobile. The vehicle has multiple devices such as a high-voltage battery, an inverter, and a motor for driving wheels. The connector 20 is connected to one of the multiple devices.

[0027] As shown in FIG. 2, the connector 20 includes a plurality of terminals 21, a plurality of electric wires 22, a connector housing 23, a shield shell 24, a plurality of shell rings 25, and a shield attachment 26.

[0028] (Configuration of terminal 21) As shown in FIGS. 2 and 3, the connector 20 includes three terminals 21, for example, terminals 21a, 21b, and 21c. FIG. 3 is a cross-sectional view taken along line 3-3 in FIG. 4. The terminals 21a, 21b, and 21c are each formed of a metal material, such as copper, a copper alloy, aluminum, or an aluminum alloy. The terminals 21a, 21b, and 21c have, for example, the same shape. The terminals 21a, 21b, and 21c are each formed in, for example, a plate shape. The terminals 21a, 21b, and 21c are aligned in a first direction D1. The first direction D1 is an arbitrarily set direction. The first direction D1 is, for example, a direction along the Y-axis. The terminals 21a, 21b, and 21c are aligned such that, for example, their thickness directions are aligned with the first direction D1. The terminals 21a, 21b, and 21c are aligned with a gap between them. For example, the terminals 21a, 21b, and 21c are arranged in the order of terminal 21a, terminal 21b, and terminal 21c along the first direction D1.

[0029] The direction intersecting the first direction D1 is referred to as the second direction D2. The second direction D2 is, for example, a direction that intersects the first direction D1 perpendicularly. For example, the second direction D2 is a direction along the X-axis. Furthermore, the direction that is orthogonal to the first direction D1 and orthogonal to the second direction D2 is referred to as the third direction D3. The third direction D3 is, for example, a direction along the Z-axis. Hereinafter, unless otherwise specified, the first direction D1, the second direction D2, and the third direction D3 are directions when the connector 20 is assembled.

[0030] The terminals 21a, 21b, and 21c are electrically connected to mating terminals 201a, 201b, and 201c included in a mating connector to be connected to the connector 20. The mating terminals 201a, 201b, and 201c are illustrated by two-dot chain lines in FIG. 3 . The connector 20 may include a clip terminal 27a that sandwiches the mating terminal 201a and the terminal 21a inserted into the connector 20. The mating terminal 201a is inserted into the connector 20, for example, along the third direction D3. The clip terminal 27a sandwiches the terminal 21a and the mating terminal 201a, thereby pressing the mating terminal 201a against the terminal 21a. Similarly, the connector 20 may include a clip terminal 27b that sandwiches the mating terminal 201b and the terminal 21b inserted into the connector 20, and a clip terminal 27c that sandwiches the mating terminal 201c and the terminal 21c inserted into the connector 20. Each of the clip terminals 27a, 27b, and 27c is formed by pressing a metal plate made of, for example, copper, a copper alloy, aluminum, an aluminum alloy, or stainless steel.

[0031] (Configuration of electric wire 22) The connector 20 includes the same number of electric wires 22 as the number of terminals 21. The connector 20 includes, for example, three electric wires 22, namely, electric wires 22a, 22b, and 22c. Each of the electric wires 22a, 22b, and 22c is a shielded electric wire having an electromagnetic shield structure. The electric wires 22a, 22b, and 22c have, for example, the same configuration as each other. Each of the electric wires 22a, 22b, and 22c is, for example, a high-voltage electric wire capable of handling high voltage and large current.

[0032] As shown in FIGS. 3, 4, and 5, each of the electric wires 22a, 22b, and 22c includes a core wire 31 made of a conductor, an inner insulating coating 32 that covers the outer periphery of the core wire 31, and an electromagnetic shielding member 33 that covers the outer periphery of the inner insulating coating 32. Each of the electric wires 22a, 22b, and 22c may further include an outer insulating coating 34 that covers the outer periphery of the electromagnetic shielding member 33. FIG. 4 is a cross-sectional view taken along line 4-4 in FIG. 3. FIG. 5 is a partially enlarged view of FIG. 4. FIGS. 4 and 5 illustrate only the electric wire 22a. For example, each of the electric wires 22a, 22b, and 22c has a circular cross-sectional shape. The cross-section of the electric wire 22 is perpendicular to the longitudinal direction of the electric wire 22. In this embodiment, the longitudinal direction of the electric wire 22 corresponds to the X-axis direction. Incidentally, the cross-sectional shape of each of the electric wires 22a, 22b, and 22c is not limited to a circular shape, but may be any of an oval shape, a rounded rectangle shape, a polygonal shape, or any other arbitrary shape.

[0033] The core wire 31 may be made of a metal material such as copper or aluminum. The inner insulating coating 32 and the outer insulating coating 34 are each made of an insulating material such as synthetic resin. The electromagnetic shield member 33 is a braided wire in which conductive wires made of, for example, a copper alloy or an aluminum alloy are braided into a cylindrical shape.

[0034] Each of the electric wires 22a, 22b, and 22c extends along the second direction D2. That is, the connector 20 may be a connector into which the mating terminals 201a, 201b, and 201c are inserted in a direction intersecting the extension direction of the electric wires 22a, 22b, and 22c. The electric wire 22a is electrically connected to the terminal 21a, the electric wire 22b is electrically connected to the terminal 21b, and the electric wire 22c is electrically connected to the terminal 21c. The core wire 31 is exposed at the end region of the electric wire 22a opposite to the second direction D2. The exposed portion of the core wire 31 of the electric wire 22a is joined to the terminal 21a by, for example, crimping, welding such as ultrasonic welding or laser welding, or another known joining method. The electric wire 22b and the terminal 21b, and the electric wire 22c and the terminal 21c are joined to each other in the same manner as the electric wire 22a and the terminal 21a.

[0035] The electric wires 22a, 22b, and 22c are arranged in the first direction D1 inside the connector 20, similar to the terminals 21a, 21b, and 21c. Furthermore, the electric wires 22a, 22b, and 22c are arranged in the connector 20 with gaps between them in the first direction D1.

[0036] (Configuration of connector housing 23) 2 and 3, the connector housing 23 holds a plurality of terminals 21a, 21b, and 21c therein. The connector housing 23 has, for example, an outer housing 41 that forms the outer shell of the connector 20, and an inner housing 51 that is disposed inside the outer housing 41. The outer housing 41 and the inner housing 51 are made of, for example, a synthetic resin. Hereinafter, the outer housing 41 will be referred to as the "outer housing 41" and the inner housing 51 will be referred to as the "inner housing 51."

[0037] 4, the outer housing 41 has a cylindrical shape extending in the second direction D2. The outer housing 41 has a first end 42 and a second end 43 opposite the first end 42 in the second direction D2. The first end 42 of the outer housing 41 is closed.

[0038] The outer housing 41 has a first connection opening 44 into which the mating terminals 201a, 201b, 201c are inserted along the third direction D3. The first connection opening 44 is located between the first end 42 and the second end 43 in the X-axis direction. The outer housing 41 also has a first opening 45 in the second direction D2 through which the electric wires 22a, 22b, 22c pass. The first opening 45 is located at the second end 43 of the outer housing 41. The first connection opening 44 and the first opening 45 each communicate between the inside and outside of the outer housing 41.

[0039] 2, 3, and 4, the inner housing 51 is inserted into the outer housing 41 through the first opening 45 in the direction opposite to the second direction D2. The inner housing 51 includes, for example, an inner housing main body 52 and a lid body 53. Hereinafter, the inner housing main body 52 will be referred to as the "inner housing main body 52."

[0040] The inner housing main body 52 has an accommodating recess 54a that accommodates the terminal 21a, an accommodating recess 54b that accommodates the terminal 21b, and an accommodating recess 54c that accommodates the terminal 21c. Note that FIG. 4 only illustrates the accommodating recess 54a. Each of the accommodating recesses 54a, 54b, and 54c is recessed, for example, in the direction opposite to the third direction D3. Each of the accommodating recesses 54a, 54b, and 54c opens in the third direction D3. The lid 53 is detachably attached to the inner housing main body 52 from the direction opposite to the third direction D3 so as to close the openings of the accommodating recesses 54a, 54b, and 54c.

[0041] The inner housing body 52 has, at its end in the second direction D2, a wire through hole 55a through which the electric wire 22a passes, a wire through hole 55b through which the electric wire 22b passes, and a wire through hole 55c through which the electric wire 22c passes. Each of the wire through holes 55a, 55b, and 55c opens in the second direction D2.

[0042] The inner housing main body 52 holds the terminals 21a, 21b, and 21c aligned in the first direction D1. The inner housing 51 also accommodates therein the electrical connection portion between the terminal 21a and the electric wire 22a, the electrical connection portion between the terminal 21b and the electric wire 22b, and the electrical connection portion between the terminal 21c and the electric wire 22c. The electrical connection portion between the terminal 21a and the electric wire 22a is the portion where the terminal 21a and the electric wire 22a are joined. Similarly, the electrical connection portion between the terminal 21b and the electric wire 22b is the portion where the terminal 21b and the electric wire 22b are joined. The electrical connection portion between the terminal 21c and the electric wire 22c is the portion where the terminal 21c and the electric wire 22c are joined.

[0043] The electric wire 22a electrically connected to the terminal 21a is drawn out to the outside of the connector housing 23 through the electric wire through-hole 55a and the first opening 45. The electric wire 22b electrically connected to the terminal 21b is drawn out to the outside of the connector housing 23 through the electric wire through-hole 55b and the first opening 45. The electric wire 22c electrically connected to the terminal 21c is drawn out to the outside of the connector housing 23 through the electric wire through-hole 55c and the first opening 45.

[0044] The inner housing main body 52 has a terminal insertion opening 56 at the bottom of each of the accommodating recesses 54a, 54b, and 54c. Each of the terminal insertion openings 56 is exposed to the outside of the connector 20 through the first connection opening 44. When connecting the connector 20 to a mating connector, a mating terminal 201a is inserted into the connector 20 from the first connection opening 44 along the first direction D1, and then passes through the terminal insertion opening 56 and is inserted into the inner housing 51, i.e., the accommodating recess 54a. The mating terminal 201a then overlaps with and comes into contact with the terminal 21a in the first direction D1 inside the accommodating recess 54a. The contact between the terminal 21a and the mating terminal 201a electrically connects the terminal 21a to the mating terminal 201a. Similarly, the mating terminal 201b is electrically connected to the terminal 21b accommodated in the accommodating recess 54b, and the mating terminal 201c is electrically connected to the terminal 21c accommodated in the accommodating recess 54c.

[0045] (Shield Shell 24 configuration) The terminals 21a, 21b, and 21c are covered with the shield shell 24. The shield shell 24 is conductive and is formed, for example, by pressing a metal plate.

[0046] For example, the shield shell 24 covers the outer surface of the inner housing 51. The shield shell 24 is disposed inside the outer housing 41 together with the inner housing 51. For example, the shield shell 24 is inserted into the outer housing 41 together with the inner housing 51 through the first opening 45.

[0047] The shield shell 24 has, for example, a cylindrical shape extending in the second direction D2. Furthermore, for example, the shield shell 24 has a rectangular shape elongated in the Y-axis direction when viewed from the second direction D2. The shield shell 24 has a third end 61 and a fourth end 62 opposite the third end 61 in the second direction D2. The third end 61 of the shield shell 24 is closed. The shield shell 24 has second connection openings 63 into which the mating terminals 201a, 201b, and 201c are inserted along the third direction D3. The second connection openings 63 overlap with the first connection openings 44 in the third direction D3. The shield shell 24 also has second openings 64 in the second direction D2 through which the electric wires 22a, 22b, and 22c pass. The second openings 64 are located at the fourth end 62 of the shield shell 24. The second openings 64 overlap with the first openings 45 in the second direction D2.

[0048] As shown in FIGS. 5 and 6 , the shield shell 24 may have a plurality of first contact portions 65 in an end region including the fourth end 62. The plurality of first contact portions 65 are aligned along the periphery of the second opening 64. For example, the shield shell 24 has six first contact portions 65 at each end in the third direction D3. The six first contact portions 65 located at the end of the shield shell 24 in the third direction D3 are aligned in a row with spaces in between in the first direction D1. Similarly, the six first contact portions 65 located at the end of the shield shell 24 in the direction opposite the third direction D3 are aligned in a row with spaces in between in the first direction D1. Each first contact portion 65 is formed, for example, by folding back the end of the shield shell 24 in the second direction D2 toward the inside of the shield shell 24. Each first contact portion 65 is elastic.

[0049] As shown in FIGS. 6 and 7 , the shield shell 24 may have second contact portions 66 in an end region including the fourth end 62. For example, the shield shell 24 has three second contact portions 66 at each end in the first direction D1. The three second contact portions 66 located at the end of the shield shell 24 in the first direction D1 are aligned in a row with a gap in the third direction D3. Similarly, the three first contact portions 65 located at the end of the shield shell 24 in the direction opposite the first direction D1 are aligned in a row with a gap in the third direction D3. Each second contact portion 66 has, for example, a cantilever shape extending in the second direction D2. The end of each second contact portion 66 in the second direction D2 is a free end, and the end opposite the second direction D2 is a fixed end. Each second contact portion 66 is elastically deformable so that the free end can move along the first direction D1 relative to the fixed end. Each second contact portion 66 may have a contact protrusion 67 that protrudes toward the inside of the shield shell 24. The contact protrusion 67 protrudes, for example, in a spherical shape.

[0050] (Shell Ring 25 configuration) As shown in FIG. 3 , the connector 20 includes three shell rings 25, for example, shell rings 25a, 25b, and 25c. Shell ring 25a is attached to the electric wire 22a, shell ring 25b is attached to the electric wire 22b, and shell ring 25c is attached to the electric wire 22c. Shell rings 25a, 25b, and 25c are disposed inside the connector housing 23. For example, shell ring 25a is attached to a portion of the electric wire 22a that is located between the first opening 45 and the electric wire through opening 55a. Similarly, shell ring 25b is attached to a portion of the electric wire 22b that is located between the first opening 45 and the electric wire through opening 55b. Shell ring 25c is attached to a portion of the electric wire 22c that is located between the first opening 45 and the electric wire through opening 55c. Furthermore, shell rings 25a, 25b, and 25c are disposed inside an end region including the fourth end 62 of the shield shell 24, for example. The shell rings 25a, 25b, and 25c are aligned in the first direction D1.

[0051] Each of the shell rings 25a, 25b, and 25c is electrically conductive. Each of the shell rings 25a, 25b, and 25c is formed by pressing a metal plate made of, for example, a copper alloy. The material of the shell rings 25a, 25b, and 25c is not limited to a copper alloy, but may be a metal material such as copper, aluminum, or an aluminum alloy. The shell rings 25a, 25b, and 25c have, for example, the same shape. In this embodiment, the shape of only the shell ring 25a will be described in detail, and a detailed description of the shapes of the shell rings 25b and 25c will be omitted.

[0052] 5, the shell ring 25a has an annular shape that surrounds the outer periphery of the electric wire 22a. The shell ring 25a has, for example, a fixed portion 71, an extending portion 72, and a contacted portion 73.

[0053] The fixing portion 71 has, for example, a circular ring shape. The electric wire 22a passes through the fixing portion 71. The inner insulating coating 32 is exposed at a portion of the electric wire 22a disposed inside the inner housing 51. For example, the outer insulating coating 34 is removed over a region from the end of the electric wire 22a opposite the second direction D2 to a predetermined position between the electric wire through hole 55a and the second opening 64. The fixing portion 71 is attached to the outer periphery of the exposed electromagnetic shield member 33 at a position inside the outer housing 41 between the electric wire through hole 55a and the second opening 64 in the second direction D2. The inner circumferential surface of the fixing portion 71 is in contact with the outer circumferential surface of the electromagnetic shield member 33. The electromagnetic shield member 33 also has a folded portion 33a folded back in the second direction D2 at an end region opposite the second direction D2. The folded portion 33a is overlapped with the fixed portion 71 so as to cover the outer peripheral surface of the fixed portion 71.

[0054] For example, the connector 20 includes a fixing member 75 for fixing the shell ring 25a to the electric wire 22a. The fixing member 75 is attached to the outer periphery of the folded portion 33a. The fixing member 75 is, for example, annular. The fixing member 75 fixes the shell ring 25a to the electric wire 22a by tightening the folded portion 33a, the fixing portion 71, and a portion of the electric wire 22a that is positioned inside the fixing portion 71. Furthermore, the fixing member 75 presses the fixing portion 71 against the electromagnetic shield member 33 of the electric wire 22a, thereby electrically connecting the fixing portion 71 and the electromagnetic shield member 33. In other words, the shell ring 25a is electrically connected to the electromagnetic shield member 33 of the electric wire 22a at the fixing portion 71. The fixing member 75 is, for example, a metal crimping ring. The fixing member 75 is crimped, for example, so that its outer shape when viewed from the second direction D2 is hexagonal.

[0055] Shell ring 25b is also fixed to electric wire 22b in a similar manner and is electrically connected to electromagnetic shielding member 33 of electric wire 22b. Shell ring 25c is also fixed to electric wire 22c in a similar manner and is electrically connected to electromagnetic shielding member 33 of electric wire 22c.

[0056] As shown in Figures 5, 6, and 7, the extending portion 72 extends from the fixed portion 71 to the outside of the fixed portion 71. For example, the extending portion 72 extends outward from the end of the fixed portion 71 in the second direction D2. For example, the outer edge of the extending portion 72 is shifted in the second direction D2 from the inner edge of the extending portion 72. Therefore, the extending portion 72 is inclined with respect to a plane perpendicular to the second direction D2. For example, when viewed from the second direction D2, the inner edge of the extending portion 72 is circular, while the outer edge of the extending portion 72 is rectangular.

[0057] The contacted portion 73 extends in the second direction D2 from the outer edge of the extending portion 72. Incidentally, the extending portion 72 covers the portion between the fixed portion 71 and the extending portion 72. The contacted portion 73 has, for example, a ring shape that surrounds the outer periphery of the electric wire 22a. Furthermore, the contacted portion 73 extends, for example, parallel to the second direction D2. For example, the contacted portion 73 has a rectangular frame shape when viewed from the second direction D2. Therefore, for example, the outer shape of the shell ring 25a has a rectangular shape when viewed from the second direction D2.

[0058] As shown in FIGS. 6 and 7 , the outer peripheral surface of the contacted portion 73 constitutes a part of the outer peripheral surface of the shell ring 25. The outer peripheral surface of the contacted portion 73 is, for example, parallel to the second direction D2. The outer peripheral surface of the contacted portion 73 has, for example, four side surfaces: a first side surface 81, a second side surface 82, a third side surface 83, and a fourth side surface 84. The outer peripheral surface of the contacted portion 73 is, for example, a rectangular cylindrical surface formed by the first side surface 81, the second side surface 82, the third side surface 83, and the fourth side surface 84. The first side surface 81 is the outer surface of the contacted portion 73 facing in the direction opposite to the first direction D1. The second side surface 82 is the outer surface of the contacted portion 73 facing in the first direction D1. Each of the first side surface 81 and the second side surface 82 is, for example, a plane perpendicular to the first direction D1. The third side surface 83 is the outer surface of the contacted portion 73 facing in the third direction D3. The fourth side surface 84 is an outer side surface of the contacted portion 73 in the direction opposite to the third direction D3. The third side surface 83 and the fourth side surface 84 are, for example, parallel to the first direction D1 when viewed from the second direction D2. The third side surface 83 and the fourth side surface 84 are, for example, planes perpendicular to the third direction D3.

[0059] Of the six first contact portions 65 located at the end of the shield shell 24 in the third direction D3, two first contact portions 65 aligned at the end opposite the first direction D1 are in contact with the third side surface 83 of the shell ring 25a. The two first contact portions 65 press the third side surface 83 in the direction opposite the third direction D3 by their own elastic force. Of the six first contact portions 65 located at the end of the shield shell 24 in the direction opposite the third direction D3, two first contact portions 65 aligned at the end opposite the first direction D1 are in contact with the fourth side surface 84 of the shell ring 25a. The two first contact portions 65 press the fourth side surface 84 in the third direction D3 by their own elastic force. In addition, three second contact portions 66 located at the end of the shield shell 24 in the direction opposite the first direction D1 are in contact with the first side surface 81 of the shell ring 25a. The three second contact portions 66 press the contact protrusions 67 against the first side surface 81 by their own elastic force.

[0060] In this manner, the first contact portion 65 and the second contact portion 66 come into contact with the shell ring 25a, thereby electrically connecting the shell ring 25a to the shield shell 24. The shell ring 25a then electrically connects the shield shell 24 to the electromagnetic shield member 33 of the electric wire 22a to which the shell ring 25a is attached.

[0061] Similarly, two central first contact portions 65 of the six first contact portions 65 located at the end of the shielded shell 24 in the third direction D3 contact the third side surface 83 of the shell ring 25b. The two first contact portions 65 press the third side surface 83 in the direction opposite to the third direction D3 with their own elastic force. Two central first contact portions 65 of the six first contact portions 65 located at the end of the shielded shell 24 in the direction opposite to the third direction D3 contact the fourth side surface 84 of the shell ring 25b. The two first contact portions 65 press the fourth side surface 84 in the third direction D3 with their own elastic force. The first contact portions 65 contact the shell ring 25b in this way, electrically connecting the shell ring 25b and the shielded shell 24. The shell ring 25b electrically connects the electromagnetic shield member 33 of the electric wire 22b to which the shell ring 25b is attached to the shielded shell 24.

[0062] Similarly, two of the six first contact portions 65 located at the end of the shield shell 24 in the third direction D3, which are aligned at the end of the first direction D1, contact the third side surface 83 of the shell ring 25c. The two first contact portions 65 press the third side surface 83 in the opposite direction to the third direction D3 due to their own elastic force. Two of the six first contact portions 65 located at the end of the shield shell 24 in the opposite direction to the third direction D3, which are aligned at the end of the first direction D1, contact the fourth side surface 84 of the shell ring 25c. The two first contact portions 65 press the fourth side surface 84 in the third direction D3 due to their own elastic force. Furthermore, three second contact portions 66 located at the end of the shield shell 24 in the first direction D1 contact the second side surface 82 of the shell ring 25c. The three second contact portions 66 press the contact protrusions 67 against the second side surface 82 by their own elastic force. In this manner, the first contact portions 65 and the second contact portions 66 come into contact with the shell ring 25c, thereby electrically connecting the shell ring 25c and the shield shell 24. The shell ring 25c electrically connects the shield shell 24 to the electromagnetic shield member 33 of the electric wire 22c to which the shell ring 25c is attached.

[0063] As shown in Figure 7, when viewed from the second direction D2, a gap G1 exists between shell ring 25a and shell ring 25b, which are adjacent in the first direction D1. Also, when viewed from the second direction D2, a gap G2 exists between adjacent shell ring 25b and shell ring 25c. The second side surface 82 of shell ring 25a and the first side surface 81 of shell ring 25b face each other in the first direction D1 with gap G1 between them. The second side surface 82 of shell ring 25b and the first side surface 81 of shell ring 25c face each other in the first direction D1 with gap G2 between them.

[0064] (Shield Attachment 26 Configuration) As shown in FIG. 3, the connector 20 includes two shield attachments 26, for example, shield attachments 26a and 26b. Hereinafter, the shield attachments 26, 26a, and 26b will be referred to as "attachments 26, 26a, and 26b." The attachment 26a is disposed between the shell ring 25a and the shell ring 25b, which are adjacent in the first direction D1. That is, the attachment 26a is disposed in the gap G1. The attachment 26b is disposed between the shell ring 25b and the shell ring 25c, which are adjacent in the first direction D1. That is, the attachment 26b is disposed in the gap G2. Furthermore, the attachments 26a and 26b are disposed between the terminals 21a, 21b, and 21c and the first opening 45 in the X-axis direction.

[0065] Each of the attachments 26a, 26b is electrically conductive. Each of the attachments 26a, 26b is formed by pressing a metal plate made of, for example, a copper alloy. The material of the attachments 26a, 26b is not limited to copper alloy, and may be metal materials such as copper, aluminum, or aluminum alloy. The attachments 26a, 26b have, for example, the same shape. Therefore, in this embodiment, only the shape of the attachment 26a will be described in detail, and a detailed description of the shape of the attachment 26b will be omitted.

[0066] As shown in FIGS. 6 and 7, the attachment 26a has a covering portion 91, a first pressing portion 92a, and a second pressing portion 92b. The covering portion 91 is located inside the second opening 64 when viewed from the second direction D2 and covers the gap G1. The covering portion 91 has, for example, a flat plate shape perpendicular to the second direction D2. For example, the covering portion 91 has a rectangular plate shape having a width corresponding to the width of the gap G1 in the first direction D1.

[0067] 8 and 9, for example, the attachment 26a has a first extending portion 93a extending in the second direction D2 from the end of the covering portion 91 facing in the opposite direction to the first direction D1. Furthermore, for example, the attachment 26a has a second extending portion 93b extending in the second direction D2 from the end of the covering portion 91 facing in the first direction D1. Note that FIG. 8 is a cross-sectional view taken along line 8-8 in FIG. 7. For example, the first pressing portion 92a extends from the first extending portion 93a along the second direction D2. For example, the second pressing portion 92b extends from the second extending portion 93b along the second direction D2.

[0068] 7, the attachment 26a has, for example, first pressing portions 92a on both sides of an imaginary line L1 that passes through the centers of the electric wires 22a, 22b, and 22c when viewed from the second direction D2. The attachment 26a also has second pressing portions 92b on both sides of the imaginary line L1 when viewed from the second direction D2. That is, the attachment 26a may have the first pressing portion 92a and the second pressing portion 92b on both sides of the imaginary line L1 in the third direction D3 when viewed from the second direction D2.

[0069] As shown in FIGS. 7 and 9 , each first pressing portion 92a includes, for example, a leaf spring portion 94a and a contact protrusion 95a protruding from the surface of the leaf spring portion 94a. The leaf spring portion 94a extends from the first extending portion 93a in the second direction D2. The leaf spring portion 94a is elastically deformable so that its tip is displaced along the first direction D1 relative to its base end. The contact protrusion 95a protrudes from the leaf spring portion 94a in the direction opposite to the first direction D1. The surface of the contact protrusion 95a is, for example, spherical. Each first pressing portion 92a contacts the second side surface 82 of the shell ring 25a adjacent to the attachment 26a in the first direction D1 and presses the second side surface 82 with a force that includes a component parallel to the first direction D1. The second side surface 82 of the shell ring 25a is a contact surface 85 that contacts the first pressing portion 92a of the attachment 26a. That is, the contact surface 85 contacts the attachment 26a. When viewed from the second direction D2, the two first pressing portions 92a press the second side surface 82 of the shell ring 25a on both sides of the imaginary line L1 in the third direction D3. When viewed from the first direction D1, the two first pressing portions 92a press the second side surface 82 of the shell ring 25a on both sides of the center line L2 of the electric wire 22a in the third direction D3. The contact protrusions 95a of each first pressing portion 92a are pressed against the second side surface 82 of the shell ring 25a by the elastic force of the leaf spring portions 94a. When the first pressing portions 92a contact the second side surface 82 of the shell ring 25a, the attachment 26a is electrically connected to the shell ring 25a. The attachment 26a is electrically connected to the shield shell 24 via the shell ring 25a.

[0070] As shown in FIGS. 7, 8, and 9, each second pressing portion 92b includes, for example, a leaf spring portion 94b and a contact protrusion 95b protruding from the surface of the leaf spring portion 94b. The leaf spring portion 94b extends from the second extending portion 93b in the second direction D2. The leaf spring portion 94b is elastically deformable so that its tip is displaced along the first direction D1 relative to its base end. The contact protrusion 95b protrudes from the leaf spring portion 94b in the first direction D1. The surface of the contact protrusion 95b is, for example, spherical. Each second pressing portion 92b contacts the first side surface 81 of the shell ring 25b adjacent to the attachment 26a in the first direction D1 and presses the first side surface 81 with a force that includes a component parallel to the first direction D1. The first side surface 81 of the shell ring 25b is a contact surface 85 that contacts the second pressing portion 92b of the attachment 26a. That is, the contact surface 85 contacts the attachment 26a. When viewed from the second direction D2, the two second pressing portions 92b press the first side surface 81 of the shell ring 25b on both sides of the imaginary line L1 in the third direction D3. When viewed from the first direction D1, the two second pressing portions 92b press the first side surface 81 of the shell ring 25b on both sides of the center line L3 of the electric wire 22b in the third direction D3. The contact protrusions 95b of each second pressing portion 92b are pressed against the first side surface 81 of the shell ring 25b by the elastic force of the leaf spring portions 94b. When the second pressing portions 92b contact the first side surface 81 of the shell ring 25b, the attachment 26a is electrically connected to the shell ring 25b. The attachment 26a is also electrically connected to the shield shell 24 via the shell ring 25b.

[0071] In this way, the first pressing portion 92a and the second pressing portion 92b of the attachment 26a press the contact surfaces 85 of the shell rings 25a, 25b located on both sides of the attachment 26a in the first direction D1 on both sides of the imaginary straight line L1 in the third direction D3.

[0072] The attachment 26a may have a contact portion 96 that comes into contact with the shield shell 24. For example, the attachment 26a has the contact portion 96 at both ends of the covering portion 91 in the third direction D3. For example, the contact portions 96 extend in the opposite direction to the second direction D2 from both ends of the covering portion 91 in the third direction D3. The contact portion 96 is elastically deformable so that its tip end is displaced along the third direction D3 relative to its base end. The contact portion 96 may have a contact protrusion 97 that is pressed against the inner circumferential surface of the shield shell 24 by the elastic force of the contact portion 96. The attachment 26a is electrically connected to the shield shell 24 also at the contact portion 96 when the contact protrusion 97 of the contact portion 96 comes into contact with the inner circumferential surface of the shield shell 24.

[0073] The attachment 26a has, for example, two first engagement portions 98a. The number of first engagement portions 98a may be one or three or more. The two first engagement portions 98a extend in the second direction D2 from the first extension portion 93a between the two first pressing portions 92a. The two first engagement portions 98a are spaced apart from each other in the third direction D3. Each first engagement portion 98a is elastically deformable so that its tip is displaced along the first direction D1 relative to its base end. Each first engagement portion 98a has, for example, a first engagement protrusion 99a protruding from the first engagement portion 98a in the first direction D1. The surface of the first engagement protrusion 99a is, for example, spherical.

[0074] The attachment 26a also has, for example, two second engagement portions 98b. The number of second engagement portions 98b may be one or three or more. The two second engagement portions 98b extend in the second direction D2 from the second extension portion 93b between the two second pressing portions 92b. The two second engagement portions 98b are spaced apart from each other in the third direction D3. Each second engagement portion 98b is elastically deformable so that its tip is displaced along the first direction D1 relative to its base end. Each second engagement portion 98b has, for example, a second engagement protrusion 99b protruding from the second engagement portion 98b in the direction opposite to the first direction D1. The surface of the second engagement protrusion 99b is, for example, spherical.

[0075] As shown in Figures 6 and 7, similar to the attachment 26a, the first pressing portion 92a and the second pressing portion 92b of the attachment 26b also contact the shell rings 25b and 25c located on either side of the attachment 26b in the first direction D1. That is, each first pressing portion 92a of the attachment 26b contacts the second side surface 82 of the shell ring 25b adjacent to the attachment 26b in the first direction D1 and presses the second side surface 82 with a force that includes a component parallel to the first direction D1. In the shell ring 25b, the second side surface 82 is the contact surface 85 with which the first pressing portion 92a of the attachment 26b contacts. When viewed from the second direction D2, the two first pressing portions 92a of the attachment 26b press the second side surface 82 of the shell ring 25b on both sides of the imaginary line L1 in the third direction D3. The contact protrusions 95a of each first pressing portion 92a of the attachment 26b are pressed against the second side surface 82 of the shell ring 25b by the elastic force of the leaf spring portions 94a. The attachment 26b is electrically connected to the shell ring 25b when the first pressing portions 92a come into contact with the second side surface 82 of the shell ring 25b. The attachment 26b is then electrically connected to the shield shell 24 via the shell ring 25b.

[0076] Additionally, each second pressing portion 92b of the attachment 26b contacts the first side surface 81 of the shell ring 25c adjacent to the attachment 26b in the first direction D1 and presses the first side surface 81 with a force that includes a component parallel to the first direction D1. In the shell ring 25c, the first side surface 81 is a contact surface 85 that the second pressing portion 92b of the attachment 26b contacts. When viewed from the second direction D2, the two second pressing portions 92b of the attachment 26b press the first side surface 81 of the shell ring 25c on both sides of the imaginary line L1 in the third direction D3. The contact protrusions 95b of each second pressing portion 92b of the attachment 26b are pressed against the first side surface 81 of the shell ring 25c by the elastic force of the leaf spring portions 94b. The attachment 26b is electrically connected to the shell ring 25c when the second pressing portion 92b comes into contact with the first side surface 81 of the shell ring 25c. The attachment 26b is also electrically connected to the shield shell 24 via the shell ring 25c.

[0077] In this way, the first pressing portion 92a and the second pressing portion 92b of the attachment 26b press the contact surfaces 85 of the shell rings 25b, 25c located on both sides of the attachment 26b in the first direction D1 on both sides of the imaginary line L1 in the third direction D3. In addition, the contact protrusions 97 of the contact portion 96 of the attachment 26b come into contact with the inner circumferential surface of the shield shell 24, so that the attachment 26b is electrically connected to the shield shell 24 also at the contact portion 96.

[0078] 7, when viewed from the second direction D2, the second opening 64 of the shield shell 24 is closed by the electric wires 22a, 22b, the shell rings 25a, 25b, 25c, and the attachments 26a, 26b. That is, the gaps between the inner edge of the second opening 64 and the outer peripheral surfaces of the electric wires 22a, 22b, 22c are closed by the shell rings 25a, 25b, 25c and the attachments 26a, 26b.

[0079] (Configuration of back retainer holder 101) 2 and 5, the connector 20 includes, for example, a back retainer holder 101 that is attached to the first opening 45. The back retainer holder 101 is made of, for example, a synthetic resin.

[0080] 3 and 10, the back retainer holder 101 has an outer shape that can be fitted into the first opening 45. The back retainer holder 101 prevents the inner housing 51 from coming out of the outer housing 41 through the first opening 45.

[0081] For example, the back retainer holder 101 has a through hole 102a through which the electric wire 22a passes in the second direction D2, a through hole 102b through which the electric wire 22b passes in the second direction D2, and a through hole 102c through which the electric wire 22c passes in the second direction D2. The through holes 102a, 102b, and 102c are aligned in the first direction D1.

[0082] The connector 20 may further include a first seal member 103a that seals between the inner peripheral surface of the through hole 102a and the outer peripheral surface of the electric wire 22a. The connector 20 may also include a first seal member 103b that seals between the inner peripheral surface of the through hole 102b and the outer peripheral surface of the electric wire 22b, and a first seal member 103c that seals between the inner peripheral surface of the through hole 102c and the outer peripheral surface of the electric wire 22c. The first seal members 103a, 103b, and 103c are, for example, annular and surround the outer peripheries of the electric wires 22a, 22b, and 22c, respectively, as viewed from the second direction D2. Each of the first seal members 103a, 103b, and 103c is, for example, a rubber ring. The first seal member 103a prevents liquids such as water from entering the interior of the outer housing 41 from between the outer peripheral surface of the electric wire 22a and the inner peripheral surface of the through hole 102a. The first seal member 103b prevents liquids such as water from entering the interior of the outer housing 41 from between the outer peripheral surface of the electric wire 22b and the inner peripheral surface of the through hole 102b. The first seal member 103c prevents liquids such as water from entering the interior of the outer housing 41 from between the outer peripheral surface of the electric wire 22c and the inner peripheral surface of the through hole 102c.

[0083] As shown in FIGS. 3 and 5 , the connector 20 may further include a second seal member 104 that seals between the outer peripheral surface of the back retainer holder 101 and the inner peripheral surface of the outer housing 41. The second seal member 104 is annular and surrounds the outer periphery of the back retainer holder 101. The second seal member 104 is, for example, a rubber ring. The second seal member 104 is interposed between the inner peripheral surface of the outer housing 41 and the outer peripheral surface of the back retainer holder 101. The second seal member 104 prevents liquids such as water from entering the interior of the outer housing 41 from between the outer peripheral surface of the back retainer holder 101 and the inner peripheral surface of the outer housing 41. In other words, the second seal member 104 prevents liquids such as water from entering the interior of the outer housing 41 through the first opening 45.

[0084] 10 and 11, back retainer holder 101 may have mounting portion 105a to which attachment 26a is attached and mounting portion 105b to which attachment 26b is attached. Note that FIG. 11 is a cross section taken along line 11-11 in FIG. 10. Mounting portion 105a protrudes in the direction opposite to second direction D2 from a portion of back retainer holder 101 between through holes 102a and 102b. Mounting portion 105b protrudes in the direction opposite to second direction D2 from a portion of back retainer holder 101 between through holes 102b and 102c. Note that mounting portion 105b has the same shape as mounting portion 105a, so detailed description of mounting portion 105b will be omitted.

[0085] For example, the mounting portion 105a has a first engagement recess 106a on an end surface facing the opposite direction to the first direction D1. Also, for example, the mounting portion 105a has a second engagement recess 106b on an end surface facing the first direction D1. The first engagement recess 106a is recessed in the first direction D1. The second engagement recess 106b is recessed in the opposite direction to the first direction D1.

[0086] The attachment 26a is disposed relative to the mounting portion 105a such that the tip region of the mounting portion 105a is sandwiched between the first extending portion 93a and the second extending portion 93b. The first engaging protrusion 99a is disposed within the first engaging recess 106a, and the second engaging protrusion 99b is disposed within the second engaging recess 106b, thereby mounting the attachment 26a to the back retainer holder 101. The first engaging protrusion 99a abuts against the inner surface of the first engaging recess 106a, and the second engaging protrusion 99b abuts against the inner surface of the second engaging recess 106b, thereby preventing the attachment 26a from falling off the mounting portion 105a. The attachment 26b is mounted to the mounting portion 105b in the same manner as the attachment 26a to the mounting portion 105a.

[0087] The back retainer holder 101 is mounted in the first opening 45 with the attachments 26a and 26b attached. That is, the attachments 26a and 26b are disposed between the shell rings 25a, 25b, and 25c that are adjacent in the first direction D1 when attached to the back retainer holder 101. For example, the fixing members 75 located on both sides of the attachment 26a in the first direction D1 come into contact with the attachment 26a. Also, for example, the fixing members 75 located on both sides of the attachment 26b in the first direction D1 come into contact with the attachment 26b.

[0088] 1, 2, and 5, the connector 20 may have a back retainer 111 attached to an end region of the outer housing 41, including the second end 43. The back retainer 111 prevents the first seal members 103a, 103b, and 103c from falling off through the first opening 45. The back retainer 111 also prevents the back retainer holder 101 from falling off from the outer housing 41. The back retainer 111 is composed of split retainers 112a and 112b that are split into two in the third direction D3, for example. Each of the electric wires 22a, 22b, and 22c passes through the back retainer 111 in the second direction D2 and is drawn out to the outside of the outer housing 41.

[0089] (Effects of the embodiment) The effects of this embodiment will be described. (1) The connector 20 includes a plurality of terminals 21 arranged in a first direction D1 and a plurality of electric wires 22 electrically connected to the plurality of terminals 21. The connector 20 also includes a connector housing 23 that holds the plurality of terminals 21 therein and has a first opening 45 through which the plurality of electric wires 22 pass in a second direction D2 intersecting the first direction D1, and a conductive shield shell 24 that covers the plurality of terminals 21. The connector 20 also includes a plurality of shell rings 25 that are attached to the plurality of electric wires 22 respectively and arranged in the first direction D1, and a conductive attachment 26 that is disposed between the shell rings 25 adjacent to each other in the first direction D1. The shield shell 24 has a second opening 64 through which the plurality of electric wires 22 pass in the second direction D2. Each of the plurality of electric wires 22 is a shielded electric wire including a core wire 31, an inner insulating coating 32 that covers the outer periphery of the core wire 31, and a conductive electromagnetic shield member 33 that covers the outer periphery of the inner insulating coating 32. Each of the multiple shell rings 25 electrically connects the shield shell 24 to the electromagnetic shield member 33 of the electric wire 22 to which the shell ring 25 is attached, among the multiple electric wires 22. The outer peripheral surface of each of the multiple shell rings 25 has a contact surface 85 that comes into contact with the attachment 26. The attachment 26a has a covering portion 91 that is located inside the second opening 64 when viewed from the second direction D2 and covers the gap G1 between the shell rings 25a and 25b that are adjacent to the attachment 26a in the first direction D1. The attachment 26a also has a first pressing portion 92a and a second pressing portion 92b that come into contact with the contact surface 85 of the shell rings 25a and 25b that are adjacent to the attachment 26a in the first direction D1 and press the contact surface 85 with a force that includes a component parallel to the first direction D1. The attachment 26b has a covering portion 91 that is located inside the second opening 64 when viewed from the second direction D2 and that covers the gap G1 between the shell rings 25b and 25c that are adjacent in the first direction D1. The attachment 26b also has a first pressing portion 92a and a second pressing portion 92b that come into contact with contact surfaces 85 of the shell rings 25b and 25c that are adjacent to the attachment 26b in the first direction D1 and press the contact surfaces 85 with a force that includes a component in a direction parallel to the first direction D1.

[0090] According to this configuration, the attachment 26a is electrically connected to the shell rings 25a and 25b by its first pressing portion 92a and second pressing portion 92b contacting the contact surface 85. The covering portion 91 of the shell ring 25a can prevent electromagnetic noise radiated from the electric wires 22 and terminals 21 from leaking to the outside of the connector 20 through the gap G1 between the shell rings 25a and 25b adjacent to each other in the first direction D1. The attachment 26b is electrically connected to the shell rings 25b and 25c by its first pressing portion 92a and second pressing portion 92b contacting the contact surface 85. The covering portion 91 of the shell ring 25b can prevent electromagnetic noise radiated from the electric wires 22 and terminals 21 from leaking to the outside of the connector 20 through the gap G2 between the shell rings 25b and 25c adjacent to each other in the first direction D1. Therefore, in order to accommodate the increase in the current passing through the electric wire 22, the electromagnetic shielding performance of the connector 20 can be ensured even if the shell rings 25a, 25b adjacent to each other in the first direction D1 and the shell rings 25b, 25c adjacent to each other in the first direction D1 are arranged apart in the first direction D1.

[0091] Furthermore, the first pressing portion 92a and the second pressing portion 92b press the contact surface 85 with a force that includes a component parallel to the first direction D1. This makes it difficult for the shell ring 25 to vibrate in the first direction D1. Therefore, vibration of the electric wire 22 to which the shell ring 25 is attached in the first direction D1 can be suppressed. As a result, vibration of the connector 20 caused by vibration of the electric wire 22 can be suppressed. Generally, the thicker the electric wire 22 is in order to pass a current with a large current value and voltage value, the more difficult it is to suppress vibration of the electric wire 22. Therefore, suppressing vibration of the electric wire 22 by suppressing vibration of the shell ring 25 as in this embodiment can contribute to suppressing vibration of the connector 20. Furthermore, suppressing vibration of the shell ring 25 can prevent the electrical connection between the shell ring 25 and the shield shell 24 from becoming unstable.

[0092] (2) When viewed from the second direction D2, the first pressing portion 92a and the second pressing portion 92b press the contact surfaces 85 of the shell ring 25 located on both sides of the attachment 26 in the first direction D1 on both sides of the imaginary straight line L1 passing through the centers of the multiple electric wires 22.

[0093] With this configuration, the attachment 26 can contact the shell ring 25 at multiple locations. This provides a more stable electrical connection between the attachment 26 and the adjacent shell ring 25 than when the attachment 26 and the adjacent shell ring 25 contact each other at a single location. Furthermore, this configuration makes it easier to suppress vibration of the shell ring 25 than when the attachment 26 presses the adjacent shell ring 25 at only one location using the first pressing portion 92a and the second pressing portion 92b. This configuration therefore further suppresses vibration of the electric wires 22 in the first direction D1.

[0094] (3) The attachment 26 has a contact portion 96 that comes into contact with the shielded shell 24. With this configuration, the attachment 26 is not only electrically connected to the shielded shell 24 indirectly via the shell ring 25, but also can be electrically connected to the shielded shell 24 directly by the contact portion 96 coming into contact with the shielded shell 24. Therefore, the attachment 26 can be electrically connected to the shielded shell 24 more stably. This ensures electromagnetic shielding performance in the attachment 26.

[0095] (4) The first pressing portion 92a has a leaf spring portion 94a and a contact protrusion 95a that protrudes from the surface of the leaf spring portion 94a and is pressed against the contact surface 85 by the elastic force of the leaf spring portion 94a. The second pressing portion 92b has a leaf spring portion 94b and a contact protrusion 95b that protrudes from the surface of the leaf spring portion 94b and is pressed against the contact surface 85 by the elastic force of the leaf spring portion 94b.

[0096] According to this configuration, the contact protrusion 95a protrudes from the leaf spring portion 94a, and therefore easily comes into contact with the contact surface 85. The contact protrusion 95a is pressed against the contact surface 85 by the elastic force of the leaf spring portion 94a, and therefore the first pressing portion 92a is easily maintained in contact with the contact surface 85. Similarly, the contact protrusion 95b protrudes from the leaf spring portion 94b, and therefore easily comes into contact with the contact surface 85. The contact protrusion 95b is pressed against the contact surface 85 by the elastic force of the leaf spring portion 94b, and therefore the second pressing portion 92b is easily maintained in contact with the contact surface 85. Therefore, the electrical connection between the shell ring 25 and the attachment 26 can be stabilized.

[0097] (5) The contact surface 85 is a plane perpendicular to the first direction D1. With this configuration, when the first pressing portion 92a presses the contact surface 85, the first pressing portion 92a can easily apply a force parallel to the first direction D1 to the shell ring 25. Furthermore, when the second pressing portion 92b presses the contact surface 85, the second pressing portion 92b can easily apply a force parallel to the first direction D1 to the shell ring 25. Therefore, vibration of the shell ring 25 in the first direction D1 can be further suppressed. Therefore, vibration of the electric wire 22 in the first direction D1 can be further suppressed.

[0098] (6) The outer shape of each of the multiple shell rings 25 is rectangular when viewed from the second direction D2. The outer peripheral surface of each of the multiple shell rings 25 has two faces parallel to the first direction D1 and two faces perpendicular to the first direction D1 when viewed from the second direction D2. The contact surface 85 is included in the faces perpendicular to the first direction D1 of the outer peripheral surface of each of the multiple shell rings 25.

[0099] This configuration prevents the gaps G1, G2 between adjacent shell rings 25 in the first direction D1 from becoming complex. Therefore, the shape of the covering portion 91 that covers the gaps G1, G2 can be prevented from becoming complex, and the shape of the attachment 26 can be prevented from becoming complex. As a result, the attachment 26 can be manufactured more easily. Furthermore, because the gaps G1, G2 between adjacent shell rings 25 in the first direction D1 can be easily covered by the covering portion 91, the electromagnetic shielding performance of the connector 20 can be easily ensured.

[0100] (7) The connector 20 further includes a back retainer holder 101 that is attached to the first opening 45 and has through holes 102a, 102b, and 102c through which the multiple electric wires 22 pass in the second direction D2. The connector 20 also includes first seal members 103a, 103b, and 103c that seal between the outer peripheral surfaces of the multiple electric wires 22 and the inner peripheral surfaces of the through holes 102a, 102b, and 102c. The attachment 26, when attached to the back retainer holder 101, is disposed between the shell rings 25 that are adjacent to each other in the first direction D1.

[0101] According to this configuration, when assembling the connector 20, the back retainer holder 101 with the attachment 26 attached can be attached to the first opening 45. In this way, the attachment 26 can be more easily positioned between the shell rings 25 adjacent in the first direction D1 than when a single attachment 26 is inserted between the shell rings 25 adjacent in the first direction D1. Furthermore, because the attachment 26 is attached to the back retainer holder 101, displacement of the attachment 26 inside the connector 20 can be suppressed.

[0102] This embodiment can be modified as follows: This embodiment and the following modifications can be combined and implemented within the scope of technical compatibility. In the above embodiment, the manner in which the attachments 26a, 26b are attached to the back retainer holder 101 is not limited to the manner in the above embodiment. For example, the attachments 26a, 26b may have first and second engagement holes in the first and second engagement portions 98a, 98b instead of the first and second engagement protrusions 99a, 99b. The back retainer holder 101 may have first and second engagement protrusions that fit into the first and second engagement holes instead of the first and second engagement recesses 106a, 106b. Furthermore, for example, the attachments 26a, 26b may be integrated with the back retainer holder 101 by insert molding. Furthermore, for example, the attachments 26a, 26b may be attached to the back retainer holder 101 by adhesive.

[0103] It should be noted that the attachments 26a and 26b do not necessarily have to be attached to the back retainer holder 101. In this case, when manufacturing the connector 20, the step of arranging the attachment 26 between the shell rings 25 adjacent to each other in the first direction D1 and the step of fitting the back retainer holder 101 into the first opening 45 are performed separately.

[0104] The shape of the back retainer holder 101 is not limited to that of the above embodiment. For example, the back retainer holder 101 may have a single through hole through which multiple electric wires 22 pass in the second direction D2, instead of the through holes 102a, 102b, and 102c.

[0105] The shape of the shell ring 25 is not limited to that of the above embodiment. The shell ring 25 may have any shape as long as it has a contact surface 85 on its outer periphery. The contact surface 85 may be a surface that intersects with the first direction D1. For example, the outer shape of the shell ring 25 may be any shape, such as a polygonal shape other than a rectangle, a circle, a rounded rectangle, or any other shape, when viewed from the second direction D2. Furthermore, for example, the shape of the contacted portion 73 may be any shape, such as a polygonal shape other than a rectangle, a circle, a rounded rectangle, or any other shape, when viewed from the second direction D2. Furthermore, the outer periphery of the contacted portion 73 may be inclined with respect to the second direction D2. For example, the outer shape of the contacted portion 73 may become larger or smaller from the end opposite the second direction D2 toward the end in the second direction D2. The outer peripheral surface of the contacted portion 73 may include a contact surface 85 that is pressed by the first pressing portion 92a or the second pressing portion 92b.

[0106] The contact surface 85 is not limited to a flat surface, but may be, for example, a curved surface or a surface including projections and recesses. The first pressing portion 92a does not necessarily have to have the contact protrusion 95a, and the second pressing portion 92b does not necessarily have to have the contact protrusion 95b.

[0107] The attachment 26 does not have to have the contact portion 96. The number and positions of the first pressing portions 92a and the number and positions of the second pressing portions 92b are not limited to those in the above embodiment. For example, the attachment 26 may have one or three or more first pressing portions 92a and one or more second pressing portions 92b.

[0108] Furthermore, for example, the first pressing portion 92a and the second pressing portion 92b may press a portion of the contact surface 85 of the attachment 26 and the shell ring 25 adjacent in the first direction D1, which intersects with the imaginary line L1 passing through the centers of the plurality of electric wires 22, as viewed from the second direction D2. In this case, the attachment 26 may have only the first pressing portion 92a and the second pressing portion 92b. In this case, the first pressing portion 92a and the second pressing portion 92b may be one of the plurality of first pressing portions 92a and one of the plurality of second pressing portions 92b. In this case, the force pressing the electric wire 22 in a direction parallel to the first direction D1 can be stably transmitted from the first pressing portion 92a and the second pressing portion 92b to the electric wire 22 via the shell ring 25. Therefore, vibration of the electric wire 22 in the first direction D1 can be further suppressed.

[0109] The shape of the covering portion 91 is not limited to the shape in the above embodiment, as long as it is a shape that covers the gap between the shell rings 25 adjacent to each other in the first direction D1. The configuration and shape of the connector housing 23 are not limited to those of the above embodiment. For example, the inner housing 51 may have one accommodating recess for accommodating the terminals 21a, 21b, and 21c. For example, the connector housing 23 may not have either the outer housing 41 or the inner housing 51 as long as it can hold the terminals 21.

[0110] The number of terminals 21 included in the connector 20 is not limited to three, but may be any plural number. The number of wires 22 included in the connector 20 may be changed as appropriate depending on the number of terminals 21. The direction opposite to the first direction D1 in the above embodiment may be defined as the first direction D1. The direction opposite to the third direction D3 in the above embodiment may be defined as the third direction D3. [Explanation of symbols]

[0111] 20 connector, 21, 21a, 21b, 21c terminal, 22, 22a, 22b, 22c electric wire, 23 connector housing, 24 shield shell, 25, 25a, 25b, 25c shell ring, 26, 26a, 26b shield attachment (attachment), 27a, 27b, 27c clip terminal, 31 core wire, 32 inner insulating coating, 33 electromagnetic shield member, 33a folded portion, 34 outer insulating coating, 41 outer housing (outer housing), 42 first end, 43 second end, 44 first connection opening, 45 first opening, 51 inner housing (inner housing), 52 inner housing main body (inner housing main body), 53 lid, 54a, 54b, 54c accommodating recess, 55a, 55b, 55c electric wire through hole, 56 terminal insertion hole, 61 Third end, 62 Fourth end, 63 Second connection opening, 64 Second opening, 65 First contact portion, 66 Second contact portion, 67 Contact protrusion, 71 Fixed portion, 72 Extension portion, 73 Contacted portion, 75 Fixed member, 81 First side surface, 82 Second side surface, 83 Third side surface, 84 Fourth side surface, 85 Contact surface, 91 Covering portion, 92a First pressing portion (pressing portion), 92b Second pressing portion (pressing portion), 93a First extension portion, 93b Second extension portion, 94a, 94b Leaf spring portion, 95a, 95b Contact protrusion, 96 Contact portion, 97 Contact protrusion, 98a First engagement portion, 98b Second engagement portion, 99a First engagement protrusion, 99b Second engagement protrusion, 101 Back retainer holder, 102a, 102b, 102c through holes, 103a, 103b, 103c first seal member (seal member), 104 second seal member, 105a, 105b mounting portion, 106a first engagement recess, 106b second engagement recess, 111 back retainer, 112a, 112b split retainer, 201a, 201b, 201c mating terminal, D1 first direction, D2 second direction, D3 third direction, G1, G2 gap, L1 imaginary straight line, L2, L3 center line

Claims

1. a plurality of terminals arranged in a first direction; a plurality of electric wires electrically connected to the plurality of terminals; a connector housing that holds the plurality of terminals therein and has a first opening through which the plurality of electric wires pass in a second direction that intersects the first direction; a conductive shield shell that covers the plurality of terminals; a plurality of shell rings respectively attached to the plurality of electric wires and arranged in the first direction; a conductive shield attachment disposed between the shell rings adjacent to each other in the first direction; the shield shell has a second opening through which the plurality of electric wires pass in the second direction, Each of the plurality of electric wires is a shielded electric wire including a core wire, an inner insulating coating covering an outer periphery of the core wire, and an electromagnetic shielding member having electrical conductivity and covering the outer periphery of the inner insulating coating, Each of the plurality of shell rings electrically connects the electromagnetic shielding member of the electric wire to which the shell ring is attached among the plurality of electric wires to the shield shell, an outer circumferential surface of each of the plurality of shell rings has a contact surface that contacts the shield attachment; The shield attachment has a covering portion that is located inside the second opening when viewed from the second direction and covers the gap between adjacent shell rings in the first direction, and a pressing portion that contacts the shield attachment and the contact surface adjacent to the first direction and presses the contact surface with a force that includes a component in a direction parallel to the first direction.

2. 2. The connector according to claim 1, wherein the pressing portion presses the contact surfaces of the shell ring located on both sides of the shield attachment in the first direction on both sides of an imaginary line passing through the centers of the plurality of electric wires when viewed from the second direction.

3. 2. The connector according to claim 1, wherein the pressing portion presses a portion of the contact surface of the shell ring adjacent to the shield attachment in the first direction that intersects with an imaginary line passing through the centers of the plurality of electric wires when viewed from the second direction.

4. The connector according to claim 1 , wherein the shield attachment has a contact portion that contacts the shield shell.

5. 2. The connector according to claim 1, wherein the pressing portion has a leaf spring portion and a contact protrusion protruding from a surface of the leaf spring portion and pressed against the contact surface by the elastic force of the leaf spring portion.

6. The connector of claim 1 , wherein the contact surface is a plane perpendicular to the first direction.

7. The outer shape of each of the plurality of shell rings is rectangular when viewed from the second direction, an outer circumferential surface of each of the plurality of shell rings has two surfaces parallel to the first direction and two surfaces perpendicular to the first direction when viewed from the second direction; The connector according to claim 1 , wherein the contact surface is included in a surface of the outer circumferential surface of each of the plurality of shell rings that is perpendicular to the first direction.

8. a back retainer holder that is attached to the first opening and has through holes through which the plurality of electric wires pass in the second direction; a sealing member that seals between an outer circumferential surface of each of the plurality of electric wires and an inner circumferential surface of the through hole, The connector according to claim 1 , wherein the shield attachment is disposed between the shell rings adjacent to each other in the first direction when attached to the back retainer holder.

Citation Information

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