This application is related to and claims the benefit of priority from European Patent Application No. 04 292 581.8, filed on Oct. 29, 2004, the entirety of which is incorporated herein by reference.
The object of the present invention is a flexible multicore electrical cable.
Flexible cables are used, e.g., as electric power lines for moving machines, in which the cables can be wound on drums or dragged. They are used at surface mining sites and underground mining sites.
In the design of cables of this type, it is necessary to optimize the expansion behavior of the conductors for small bend radii and to provide the cable with sufficient tensile strength.
The German journal “Elektrodienst”, 1983, No. 1, pp. 26–27, describes an elevator control cable, in which the cores are stranded around a supporting member to form a cable core, and the cable core is surrounded by a plastic sheath. The previously known cable is distinguished by a cable structure in which five cores are stranded around a core with high tensile strength to form a bundle, and six of these bundles are then arranged with a short length of lay around the supporting member, which is designed as a torsion-free steel cable. The advantages of this design are:
The objective of the present invention is to make available a cable that can be wound on a drum and used for power transmission and/or data transmission, can be subjected to very high dynamic tensile loads, and can thus be used under harsh underground conditions.
Due to the structure of the steel cable, which has high tensile strength and torsional rigidity, a fracture of the cable elements occurs in the central courses of the steel cable after an extremely long period of use, so that premature damage of the cores is avoided.
The invention is explained below in greater detail with reference to the specific embodiments shown schematically in
The supporting member 3 can be advantageously used as a control conductor or as an overload control conductor.
The main cores 1 and protective conductors 2 are stranded on the supporting member 3.
The steel cable 3a consists of a core strand 6, which consists, for example, of seven individual wires.
The core strand 6 is surrounded by four strands 7, each of which consists of twenty-six individual wires.
Four smaller strands 8 are provided in the gaps between the strands 7. The diameters of the strands 7 and 8 are adjusted relative to each other in such a way that they are tangent to a common surrounding sheath 9. An outer course is formed by sixteen outer strands 10, which, like the core strand 6, consist of seven individual wires each.
The strands 7 of the first course are stranded on the core strand 6 with a length of lay of 35 mm. The outer strands 10 of the second course are stranded on the first course with a length of lay of 50 mm and with a reversed lay from that of the first course.
The supporting member constructed in this way gives the cable an extremely high flexural fatigue strength and thus a very long service life.
In the extreme case, the cable structure guarantees that the wires of the inner course fracture first and thus avoid or at least delay any damage to the main cores.
Number | Date | Country | Kind |
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04292581 | Oct 2004 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
2098162 | Reed | Nov 1937 | A |
4196307 | Moore et al. | Apr 1980 | A |
4538022 | Barnicol-Ottler et al. | Aug 1985 | A |
4657342 | Bauer | Apr 1987 | A |
4689444 | Burgess | Aug 1987 | A |
4719319 | Tighe, Jr. | Jan 1988 | A |
5408560 | Seynhaeve et al. | Apr 1995 | A |
6140589 | Blackmore | Oct 2000 | A |
6362432 | LaPidus et al. | Mar 2002 | B1 |
Number | Date | Country | |
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20060131062 A1 | Jun 2006 | US |