This invention relates to electrical data connectors and, more particularly, to high speed data connectors that may be employed in automotive vehicles.
High speed data connectors, such as for example those that can handle data transmission rates of 1 Gb/second or more, are in wide use and may be employed in automotive data network architectures, which may include driver assist systems, vehicle display units, vehicle camera systems, consumer electronic ports, vehicle infotainment modules, and vehicle on-board diagnostics. Such high speed data connectors that are employed in automotive data networks must meet passenger car standards and regulations, while still being relatively inexpensive, reliable, and easy to fabricate and assemble.
According to a first aspect, this invention provides a high speed data connector that can, for example, handle data transmission rates of 1 Gb/second or more and that may be employed in an automotive data network, while meeting passenger car regulations and standards. Such a high speed data connector may be modular and scalable, compatible with unshielded and shielded twisted pair cables, relatively cost effective, reliable, and easy to fabricate and assemble.
According to another aspect, this invention provides grounding and shielding in the connector assembly, which provides an electrical connection of wire-shielding to a fixation-element to board locks.
According to yet another aspect, this invention provides an electrical data connector that includes a socket, a plug connector, and a cable head. The socket may have a socket body that defines a plug connector cavity and electrically conductive shields within the cavity. The plug connector may have a plug body that telescopically slides into and is releasably secured in the plug connector cavity, with the plug body having an insert cavity and adjacent spring openings, each of the spring openings aligning with a respective one of the shields. The cable head has an insert module that telescopically slides into and is releasably secured in the insert cavity, with the cable head including an electrically conductive fixation element that is fixed to the insert module and fixed to a cable, the fixation element including integral spring elements that extend generally radially outwardly from the insert module and each extend through respective spring openings into contact with respective shields when the cable head, the plug connector, and the socket are assembled together.
According to a further aspect, the invention provides for an electrical data connector that includes: a socket having a socket body that defines a plug connector cavity and electrically conductive shields within the cavity; a plug connector having a plug body configured to slide into the plug connector cavity, the plug body having an insert cavity and adjacent spring openings, each of the spring openings configured to align with a respective one of the shields when the plug connector is assembled to the socket; and a cable head having an insert module configured to slide into the insert cavity, the cable head including an electrically conductive fixation element that is fixed to the insert module, the fixation element including integral spring elements that are configured to flex radially inwardly, biased against the respective shields, when the cable head, the plug connector, and the socket are assembled together.
Various aspects of this invention will become apparent to those skilled in the art from the following detailed description of the preferred embodiment, when read in light of the accompanying drawings.
Referring now to the drawings, there is illustrated in
The cable head 26 also includes the insert module 34, which may have a radially extending tab 38 to assist in securing the fixation element 28 to the insert module 34, and a secondary lock opening 40, which may be employed to assist in securing the cable head 26 to a plug connector (discussed below). The insert module 34 may also include a pair of terminal cavities 42 recessed within a main body 44, with each of the terminal cavities 42 receiving a respective one of the terminals 24. With this overall cable head 26, the insert module 34 is fixed relative to the cable 20 and wires 22.
The plug connector 50 may include a body 60 defining an insert cavity 62. The insert cavity 62 is sized and shaped to telescopically receive the insert module 34 and releasably secure it therein. The body 60 may include an insert lock 64 that is cantilevered from a living hinge, from which it extends backward into releasable engagement with the cable head 26. For example, the insert lock 64 may include a barb 65 on its rearward end that releasably engages a recess in the cable head 26, thereby securing the cable head 26 to the plug connector 50 when the cable head 26 is telescopically inserted into the plug connector 50.
The body 60 of the plug connector 50 may also include a socket lock 66. The socket lock 66 may be cantilevered from a living hinge, from which it extends backwardly into releasable engagement with the socket 52. For example, the socket 52 may include a plug connector catch 68 recessed into a body 70 of the socket 52, which catch 68 releasably secures to a barb 72 on the socket lock 66 when the plug connector 50 is telescopically inserted into the socket 52. The body 60 may also include a secondary lock 75 that is also extends from a living hinge and is engageable with the secondary lock opening 40 of the insert module 34 when the cable head 26 is telescopically inserted into the plug connector 50.
The body 60 of the plug connector 50 may also include a pair of spring openings 74 that are respectively aligned with the spring elements 36 formed integrally with the fixation element 28, and also with respective shields 76 provided on the socket 52. The spring elements 36 and the shields 76 are located in a plug connector cavity 78 of the socket 52 when the high speed data connector 54 is fully assembled. The shields 76 may be formed from electrically conductive materials. The assembly of the high speed data connector 54 can be accomplished by initially inserting the cable head 26 telescopically into the plug connector 50, and then inserting the plug connector 50 telescopically into the socket 52. As this assembly takes place, the spring elements 36, which extend out radially farther than the respective radially inner surfaces of the shields 76, are caused to elastically flex inwardly. Thus, the spring elements 36 are biased into contact with their respective shields 76. After assembly, because the spring elements 36 are in contact with the respective shields 76 and are integral with the fixation element 28, grounding and complete shielding in the connector assembly is provided. Additionally, the fixation element 28, with which the spring elements 36 are integrally formed, may be secured to the outer shielding (if shielded) of the cable 20, providing a connection, via the fixation element 28, between the shielding of the cable 20 and the spring elements 36, which are in contact with the shields 76 of the socket 52.
The principle and mode of operation of this invention have been explained and illustrated in its preferred embodiment. However, it must be understood that this invention may be practiced otherwise than as specifically explained and illustrated without departing from its spirit or scope.
Number | Date | Country | Kind |
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102020133318.8 | Dec 2020 | DE | national |
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German Patent and Trademark Office, Examination Report, Application No. 102020133318.8, dated Jul. 16, 2021. |
Number | Date | Country | |
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20220190515 A1 | Jun 2022 | US |