All priority rights as authorized by statute are claimed for this application from German Patent Application No. 102 41 650.8 filed on Sep. 9, 2002.
1. Field of the Invention
The present invention relates to a device for strain-relieving connection of at least one cable to a contact partner, and more particularly to an electrical connector cable strain relief device including a strain-relieving element positioned about a cable having an electrical lead extending out from the strain-relieving element, and a non-circular cross section positioning pin also extending out from the strain-relieving element so that it can be compression fit in an opening in the contact partner.
2. Description of the Related Technology
Conventionally electrical leads of a cable are provided with contact elements such as sockets or plugs. After a socket and a plug have been joined, which results in electrical connections between the electrical leads attached to the socket and plug, it is known that there needs to be a way to prevent the resulting electrical connections from being disconnected due to naturally occurring external effects, such as especially from vibration. Environmentally caused tensile and compressive forces that may act on and be conveyed along the cables must not result in any breaking of the electrical connections provided by the joined socket and plug. Therefore it is known to provide the electrical leads associated with a socket and a plug with strain relief for the joined socket and plug electrical connections.
The same applies for the case in which the electrically conductive end of a lead of at least one cable is electrically connected to a contact partner, such as especially a contact partner on a circuit board. Here, again, it is known that environmentally produced stresses and strains should be relieved to protect and maintain the electrical connection (especially a solder joint between the electrical lead and a printed conductor laid out on the circuit board).
An object of the present invention is to provide a mechanism for providing stress and strain relief (hereafter strain relief) for electrical leads associated with electrical connections, including the situation of at least one cable being electrically connected to a contact partner. Further objects include providing an extremely effective mechanism with respect to strain relief and at the same time providing a mechanism that is economical to produce and simple to handle.
For the present invention at least one cable is extrusion-coated with a strain-relieving plastic element, and the strain-relieving element can be connected to a contact partner. This arrangement has several advantages. On the one hand the strain-relieving plastic element easily and economically can be produced by an injection molding process. Since there generally is an electrically insulating outer shell (jacket) coated on an electrical cable and this electrically insulating shell often is made of plastic, the strain-relieving element of the present invention can be adapted to form an intimate connection with this outer shell for example by form-fit or plastic-to-plastic adhesion so that an associated cable is reliably fixed in association with the strain-relieving element of the present invention. At the same time this strain-relieving element of the present invention makes it possible for not only a cable, but for example also several round cables or even a single flat strip cable to be fixed in association with this strain-relieving element for purposes of effecting strain relief to protect and preserve an electrical connection. Thus, for example several round cables can be inserted next to one another in an injection mold so that after the injection molding process is completed several round cables located parallel next to one another are also fixed with respect to their arrangement sequence. Before or after extrusion-coating of the cable or of several cables the electrical leads can be exposed by stripping the outer non-conductive shell(s). After an end area of at least one cable has been extrusion-coated with a strain-relieving element according to the present invention, an electrically conductive area of the electrical lead can be joined to a contact partner. Here especially the insertion of the end area of the electrical lead into an opening of a circuit board is possible, the opening can be located to be through a printed conductor on the circuit board and the electrically conductive end area of the electrical lead and the printed conductor can be electrically joined to one another by a soldering process. Before, after or simultaneously with the soldering process the strain-relieving element according to the present invention can be joined detachably or captively to the contact partner, especially the circuit board. After establishing this connection, by for example an adhesive connection between the strain-relieving element and the contact partner, at least one cable having a strain-relieved arrangement is appropriately located in association with the contact partner. Accordingly, environmentally caused tensile or compressive forces acting on the cable are routed via the strain-relieving element according to the present invention to a structure for the contact partner, e.g., the circuit board. These forces thus are isolated from the electrical connection.
While there can be a captive connection of the strain-relieving element of the present invention to a contact partner for example by an adhesive connection, the strain-relieving element also can be connected via snap connections, positioning pins, screw connections or the like to a contact partner. In general, therefore, many different mechanisms for detachable connection are possible. Holding the strain-relieving element according to the present invention, though, in, on or at the contact partner without vibratory movement or play is important.
An embodiment of the present invention for a cable strain-relieving mechanism to which the invention however is not limited and to which differences therefrom may occur to one skilled in the art without departing from the scope of the invention is described below and explained using the figures, wherein:
An aspect of the invention includes a strain-relieving element 4 that can be made of plastic which is located adjacent end areas of several cables 2 which run parallel and next to one another. This strain-relieving element 4 can be produced by an injection molding process in which a cable 2 is placed in a corresponding mold and is extrusion-coated with plastic. Since both the strain-relieving element 4 and also the outer shell of at least one cable 2 consist of plastic, they are able to form an intimate connection so that at least one cable 2 is fixed in position in the strain-relieving element 4.
For the embodiment of the cable strain relief device 1 which is shown in
Another available advantage of the strain-relieving element 4 consists in that after extrusion coating cable 2 with plastic, several such cables 2 can be fixed in parallel positions next to one another so that the end areas of the electrical leads 3 are arranged in a definable grid (order and distances from one another). Thus, for purposes of easier installation several cables 2 can be located next to one another and thus prefabricated as an assembly, with which handling and installation of several electrical connections are simplified.
In the embodiment of the present invention shown in
As another aspect of the invention, an arm 8 can be extended from the strain-relieving element 4. This arm 8 can have an end from which a positioning pin 7 can be extended. Between the end and the strain-relieving element 4 there can be recesses 9 which are pointed to be parallel to the positioning pin 7. These recesses 9 are shaped to correspond to the contours of other cables. Other cables not shown can be routed over a contact partner 13 or circuit board and through the recesses 9 formed on the arm 8.
When ambient caused tension or compressive forces act on the strain-relieving element 4, the pin clips 11 can be deformed to such a degree that the pin body 10 comes to rest on an edge area of a corresponding opening 12 in order to thus increase the strain-relieving action since the acting ambient forces no longer are exclusively absorbed by the pin clips 11, but instead are transmitted to the more solid pin body 10.
An available application for the cable strain relief device 1 is in association with High Frequency (HF) cables, power supply and ground cables for antenna amplifiers for motor vehicles, e.g., passenger cars. These possible applications do not constitute any limitation on use of the cable strain relief device 1 according to the present invention. It further is pointed out that the strain-relieving element 4 can be assembled from two or more parts.
Number | Date | Country | Kind |
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102 41 650 | Sep 2002 | DE | national |
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Number | Date | Country | |
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20040077211 A1 | Apr 2004 | US |