Flexible coupler for fixed electrical connector

A flexible coupler between the connector body and base allows for angular movement, addressing damage from disconnection forces and facilitating cable orientation, ensuring efficient and damage-free connections.

GB2641526APending Publication Date: 2025-12-10HARTING INT INNOVATION AG
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Patent Information

Application Number
GB2024007894
Authority / Receiving Office
GB · GB
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-04
Publication Date
2025-12-10

AI Technical Summary

Technical Problem

Electrical connectors fixed to structures face damage from disconnection forces applied at angles, and orienting cables in desirable arrangements is challenging.

Method used

A flexible coupler is integrated between the connector body and base, allowing the connector body to move relative to the base through an angle of up to 90 degrees, using a polymeric material with corrugations or bellows to facilitate alignment and prevent damage.

Benefits of technology

The flexible coupler enables the connector body to align with disconnection forces without damage, reducing the required force to bend or move it relative to the base, and maintaining alignment for efficient connection and disconnection.

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Abstract

A connector 10 comprises a base 14 including a backside 22 and a front side 24 facing oppositely to the backside 22, and a mounting feature 26 by which the base 14 is fixed to a structure (figure 2, 1
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Description

Technical Field

[0001] The present disclosure relates generally to an electrical connector that is fixed to a structure in use and which includes a flexible coupler to permit changes in the orientation or position of a connector body of the electrical connector. Background

[0002] Some electrical connectors are fixed to a structure like a housing, cabinet or bulkhead of a device. Application of disconnection forces at an angle to the fixed connector can damage the connector, and orienting cables associated with the connector in a desirable arrangement or angle can be challenging in certain applications. Summary

[0003] In at least some implementations, a connector includes a base, a coupler, a connector body and at least one electrical contact. The base includes a backside and a front side facing oppositely to the backside, and a mounting feature by which the base is fixed to a structure. The coupler has a first end connected to the base at or adjacent to the front side and extends to a second end spaced from the base, and the coupler is hollow between the ends and is flexible so that at least part of the coupler including the second end can move relative to the base. The connector body is coupled to the second end and is movable with the second end. The at least one electrical contact is coupled to a wire extending through the coupler and to or through the base.

[0004] In at least some implementations, the connector body includes a socket and the electrical contact is accessible from within the socket. In at least some implementations, multiple electrical contacts are accessible within the socket.

[0005] In at least some implementations, the coupler is formed from a polymeric material and the coupler flexes to permit movement of the connector body relative to the base. In at least some implementations, the coupler includes corrugations and the connector body is movable through an angle of at least 90 degrees relative to a centerline of the base.

[0006] In at least some implementations, the coupler is cylindrical.

[0007] In at least some implementations, the coupler partially compresses and partially extends when the connector body moves relative to a centerline of the base. In at least some implementations, at least part of the coupler is extendable and compressible along a centerline of said at least part of the coupler.

[0008] In at least some implementations, the connector body is movable through an angular range in which a centerline of the connector body is at an angle of up to 90 degrees relative to a centerline of the base.

[0009] In at least some implementations, the connector body is movable so that a centerline of the socket is oriented at an angle of up to 90 degrees relative to a centerline of the base.

[0010] In at least some implementations, the coupler includes one or more of one or more of the following: bellows, corrugations, ridges, grooves or accordion folds.

[0011] In at least some implementations, a force needed to flex or bend the coupler or move the connector body relative to the base is less than a disconnection force that is required to disconnect a mating connector from the connector body. In at least some implementations, the force needed to flex or bend the coupler or move the connector body relative to the base is between 10% and 70% of the disconnection force. Brief Description of the Drawings

[0012] The following detailed description of preferred implementations and best mode will be set forth with regard to the accompanying drawings, m which:

[0013] FIG. 1 is a perspective view of an electrical connector including a base and a movable connector body coupled to the base by a flexible coupler;

[0014] FIG. 2 is a perspective view illustrating the connector body oriented at a nonzero angle to the base and aligned with a plug of a cable for improved connection or disconnection of the plug from / to the connector body;

[0015] FIG. 3 is a diagrammatic sectional view of the electrical connector with the connector body aligned with the base; and

[0016] FIG. 4 is a view similar to FIG. 3 and showing the connector body angularly moved relative to the base. Detailed Description

[0017] Referring in more detail to the drawings, FIGS. 1-4 illustrate an electrical connector 10 having a connector body 12 connected to a base 14 that is adapted to be connected to a structure 16, like a bulkhead, cabinet, wall or the like. The connector body 12 is adapted for connection with a mating connector 18 (FIGS. 2-4), for example, for example with a plug and socket type connection. Electrical power and data signals may be transmitted through the electrical connector 10, in known manner. To permit flexibility in the connection between the connector body 12 and the mating connector 18, a flexible or bendable coupler 20 is provided between the connector body 12 and the base 14, and permits the connector body 12 to move relative to the base 14 as will be set forth in more detail below.

[0018] Referring to FIGS. 1 and 3, the base 14 has a backside 22 and a front side 24 facing oppositely to the backside 22, and a mounting feature 26 by which the body is fixed to a structure 16. The mounting feature 26 may be, for example, a flange or a bracket and arranged to permit firm connection to the structure 16, such as via fasteners like screws, bolts or clips. In the example shown, the base 14 is or has a flange, and the backside 22 is flat or planar and arranged to be set against a planar surface of the structure 16 to which the base 14 is connected / fixed in use. One or more openings 28 are provided through the flange 26 to receive mounting bolts by which the base 14 is secured to the structure 16. The flange 26 extends outwardly farther than the coupler 20 and the openings 28 may be provided outboard of the coupler 20 for easy access to the bolts / fasteners.

[0019] Referring to FIG. 3, the coupler 20 has a first end 30 connected to the base 14 at or adjacent to the front side 24 and extending to a second end 32 spaced from the base 14. The coupler 20 may be hollow between the ends 30, 32 and is flexible so that at least part of the coupler 20 including the second end 32 can move relative to the base 14 while the first end 30 remains connected to the base 14. The coupler 20 may be connected to the base 14 in any suitable manner, such as by adhesive, weld, fasteners or the like.

[0020] In at least some implementations, the coupler 20 is cylindrical and hollow, and is formed from a polymeric material. The coupler 20 defines a passage 34 in which wires 36 are received, where the wires 36 are connected to the connector body 12 and extend through the base 14 (or may be coupled to the base 14, as desired). The coupler 20 has a centerline 38 or center of mass extending through the passage 34 and between the ends 30, 32.

[0021] To permit movement of the second end 32 relative to the first end 30, the coupler 20 may be formed of a flexible material that can bend or flex a desired amount without plastic deformation. In at least some implementations, the coupler 20 includes one or more flexing features 40 (FIGS. 1 and 2) such as bellows or accordion folds or is corrugated and has axially spaced apart corrugations which may include ridges or grooves or sections, where the spacing between sections / folds / bellows can vary as the coupler 20 is bent or flexed to move the second end 32 so that it is radially offset from the first end 30. When the second end 32 is radially offset from the first end 30, the centerline 38 relative to the center of mass of the coupler 20 is no longer a straight line between the ends 30, 32, as it is when the second end 32 is aligned with the first end 30. Further, in at least some implementations, the coupler 20 may extend to increase its axial length and / or contract to reduce its axial length. When the second end 32 is moved in a radially direction, part of the coupler 20 is in tension any may extend / be lengthened and part of the coupler 20 is in compression and may compress / be reduced in length. In this way, a portion of the second end 32 of the coupler 20 on a side or part of the coupler 20 that is in compression may be axially closer to the base 14 than a portion of the second end 32 of the coupler 20 on a side or part that is in tension. Such movement or bending of the coupler 20 permits the connector body 12 to be oriented at different angles relative to the base 14.

[0022] The connector body 12 is coupled to or located adjacent to the second end 32 of the coupler 20 and is movable with the second end 32 and relative to the base 14. The connector body 12 includes, as shown in FIG. 3, one or more conductive contacts called electrical contacts 42 that is / are coupled to a like number of wires 36 extending through the coupler 20 and to or through the base 14. In the implementation shown, the connector body 12 includes a socket 43 having multiple openings 44 in the base or bottom of the socket 43 and m which electrical contacts 42 are received. The electrical contacts 42 may be cylindrical and arranged to receive a separate one of multiple pins / conductive or electrical contacts 46 (FIG. 2) in a plug 47 of the mating connector 18. In this regard, the terms socket and plug are used for mating connection features of the two electrical connectors 10, 18 that are selectively coupled together. Also, the arrangement of electrical contacts 42, 46 may be reversed between the plug 47 and socket 43, or the plug 47 and socket 43 may have complementary ones of the different electrical contact types, or other types of electrical contacts, as desired.

[0023] With the connector body 12 coupled to the coupler 20, the connector body 12 may angularly move relative to the base 14, as shown in FIGS. 2 and 4, such that a centerline 48 of the connector body 12, or the socket cavity (or other connection feature) of the connector body 12, is not coaxial or aligned with a centerline 50 of the base 14. In this way, the socket 43 of the connector body 12 may be aligned at different angles relative to the base 14 and the structure 16 to which the base 14 is connected, to facilitate coupling the connector body 12 with the mating connector 18. As shown in FIGS. 2 and 4, the permitted movement of the connector body 12 may also help to align the connector body 12 relative to a disconnection or breakaway force which may be applied to the mating connector 18 along a line 52 that is not parallel to the centerline 50 of the base 14. This may permit the mating connector 18 to disconnect or breakaway from the connector body 12 while aligned with the connector body 12 to limit or prevent damage to the components. In one example, the electrical connector 10 is used with a vehicle charging cable at a vehicle charging station. If the vehicle is inadvertently driven away while the charging cable is still coupled to the connector, the flexible coupler 20 permits the connector body 12 to move to align with or become better aligned with the disconnection force to limit or prevent damage to the connector and the charging cable and the mating connector 18 that is part of the charging cable.

[0024] In at least some implementations, the centerline 48 of the connector body 12 or the socket 43 / connection feature thereof, may move through an angular range of up to 90 degrees relative to the centerline 50 of the base 14, where the angle 0 (shown in FIGS. 2 and 4) is measured between a centerline 48 of the socket 43 / connection feature of the connector body 12 and the centerline 50 of the base 14 (note that angle 0 is zero in the orientation of the connector 10 shown in FIGS. 1 and 3). In at least some implementations, the coupler 20 is a single piece body and does not include any joints or openings, and is weather / waterproof and provides protection for the internal wires 36. Of course, the coupler 20 could include a joint / elbow / ball and socket arrangement that permits pivoted or bending movement of the second end 32 of the coupler 20 relative to the first end 30, if desired. In at least some implementations, the coupler 20 has a low resilience and tends to stay in a position in which it is connected, rather than tending to spring back to a position in which the centerline 48 of the connector body 12 is aligned with the centerline 50 of the base 14. In at least some implementations, a low resilience means that the coupler 20 maintains the connector body 12 at or within forty-five degrees of a maximum angle achievable by the coupler 20 / connector body 12. Of course, a coupler 20 having greater resilience may also be used, including a coupler 20 that returns to or close to a position aligned with the centerline 50 of the base 14, as desired. In at least some implementations, the force needed to flex or bend the coupler 20 or move the connector body 12 relative to the base 14 is less than the force required to disconnect the mating connector 18 from the connector body 12, and may be between 10% and 70% of the force required for disconnection of the mating connector 18 from the connector body 12.

[0025] All terms used in the claims are intended to be given their broadest reasonable construction and their ordinary meanings as understood by those skilled in the art unless an explicit indication to the contrary is made herein. In particular, use of the singular articles such as “a,” “the,” “said,” etc. should be read to recite one or more of the indicated elements unless a claim recites an explicit limitation to the contrary.

Claims

1. A connector, comprising:a base including a backside and a front side facing oppositely to the backside, and a mounting feature by which the base is fixed to a structure;a coupler having a first end connected to the base at or adjacent to the front side and extending to a second end spaced from the base, wherein the coupler is hollow between the ends and is flexible so that at least part of the coupler including the second end can move relative to the base;a connector body coupled to the second end and movable with the second end; and at least one electrical contact that is coupled to a wire extending through the coupler and to or through the base.

2. The connector of claim 1 wherein the connector body includes a socket and the electrical contact is accessible from within the socket.

3. The connector of claim 2 wherein multiple electrical contacts are accessible within the socket.

4. The connector of claim 1 wherein the coupler is formed from a polymeric material and the coupler flexes to permit movement of the connector body relative to the base.

5. The connector of claim 4 wherein the coupler includes corrugations and the connector body is movable through an angle of at least 90 degrees relative to a centerline of the base.

6. The connector of claim 1 wherein the coupler is cylindrical.

7. The connector of claim 1 wherein the coupler partially compresses and partiallyextends when the connector body moves relative to a centerline of the base.

8. The connector of claim 7 wherein at least part of the coupler is extendable and compressible along a centerline of said at least part of the coupler.

9. The connector of claim 1 wherein the connector body is movable through an angular range in which a centerline of the connector body is at an angle of up to 90 degrees relative to a centerline of the base.

10. The connector of claim 2 wherein the connector body is movable so that a centerlineof the socket is oriented at an angle of up to 90 degrees relative to a centerline of the base.

11. The connector of claim 1 wherein the coupler includes one or more of one or more of the foilowing: bellows, corrugations, ridges, grooves or accordion folds.

12. The connector of claim 1 wherein a force needed to flex or bend the coupler or move the connector body relative to the base is less than a disconnection force that is required to disconnect a mating connector from the connector body.

13. The connector of claim 12 wherein the force needed to flex or bend the coupler or move the connector body relative to the base is between 10% and 70% of the disconnection force.

Citation Information

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