The invention relates to an insulating switching rod for initiating a drive movement in a moving contact of an electrical contact system of a switching device and for producing a contact force in the closed state of the contact system with a tensioning apparatus, which is arranged in a cavity, for a drive element of the switching rod for maintaining the contact force.
Such an insulating switching rod is known from the general prior art. In switching devices, such as circuit breakers, for example, with an electrical contact system arranged in a vacuum interrupter, a drive movement being initiated via a drive unit onto a moving contact of the contact system, the insulating switching rod is used firstly for DC-isolating the drive unit from the contact system and secondly for initiating the drive movement and for producing a substantially constant contact force in the closed state of the contact system. For this purpose, the insulating switching rod comprises a tensioning apparatus, which is arranged in a cavity of the switching rod and acts between a drive element and a housing of the switching rod, with the result that, in the closed state, the contact force is maintained on the contact system as a result of the tensioning apparatus. In the case of the insulating switching rod known from the general prior art, the tensioning apparatus comprises an arrangement of disk springs, by means of which the contact force is produced. Such disk springs are subject to wear as a result of erosion of the edges and, owing to their steep characteristic profile, result in considerable changes in the contact force introduced given small changes in the working excursion of the switching device.
The object of the present invention is to develop an insulating switching rod of the type mentioned at the outset in such a way that constant contact forces and a low degree of wear are ensured throughout the life.
According to the invention, this object is achieved in the case of an insulating switching rod of the type mentioned at the outset by virtue of the fact that the tensioning apparatus comprises a helical compression spring arrangement.
By means of the helical compression spring arrangement, the wear of the switching rod is advantageously considerably reduced. The helical compression spring arrangement does not have any edges, with the result that friction effects on the wall of the cavity are reduced and the wear of the springs is decreased. Furthermore, helical compression springs have a flatter characteristic in comparison with disk springs which have been conventional to date, with a comparatively constant contact force as a result.
In a preferred embodiment, the helical compression spring arrangement comprises a plurality of helical compression springs which are wound in opposite senses and are interleaved with one another. In other words, the helical compression spring arrangement is in the form of a set of helical compression springs, with the plurality of helical compression springs, which are wound in opposite senses and are interleaved with one another, overall having a high spring force. In particular, it is possible with such a helical compression spring arrangement to produce high contact forces of 3500 to 5000 N given a compact physical volume and given a working excursion between 0 and 5 mm, with the helical compression spring arrangement having a mean spring constant of 200 N/mm.
Furthermore, protection against kinking of the helical compression spring arrangement is advantageously substantially increased because the helical compression springs wound in opposite senses stabilize one another so as to prevent kinking, as a result of which the wear of the apparatus is reduced. The helical compression spring arrangement is guided, for example, by means of an inner drive bolt, which is fixedly connected to the drive element.
In a further expedient configuration, a first helical compression spring of the helical compression spring arrangement has an outer diameter which corresponds to an inner diameter of the cavity. With a first helical compression spring given such dimensions, guidance of the helical compression spring arrangement against the wall of the cavity is ensured, as a result of which the protection against kinking of the helical compression spring arrangement is increased. Owing to the bent helical configuration of the helical compression springs, wear is reduced in comparison with disk springs.
In a further expedient configuration, the drive element has a drive bolt, a second helical compression spring with an outer diameter which is smaller than the inner diameter of the first helical compression spring having an inner diameter which corresponds to an outer diameter of the drive bolt. In the case of such a second helical compression spring, guidance of the helical compression spring arrangement against the drive bolt is ensured, as a result of which the protection against kinking of the helical compression spring arrangement is furthermore increased and wear is reduced. Furthermore, with such a second helical compression spring, mutual stabilization of the first and the second helical compression springs with respect to one another is ensured, as a result of which the protection against kinking is likewise increased.
The invention will be explained in more detail below using the drawing and an exemplary embodiment with reference to the attached figures, in which:
With such an insulating switching rod 10, firstly DC isolation between the drive unit and the contact system is formed in the case of a switching device since a drive movement of the drive unit is transmitted via the insulating switching rod, with no DC connection being provided between the drive bolt 16 and the connecting rod 6. Furthermore, once the drive movement has taken place for closing the contact system of the vacuum interrupter 5, a contact force is transmitted by the helical compression spring arrangement 22 of the insulating switching rod onto the moving contact in the closed state of the contact system of the vacuum interrupter 5 because, once the drive movement has taken place and the drive unit has stopped, the spring force of the helical compression spring arrangement acts on the connecting rod 6 and therefore on the moving contact of the vacuum interrupter 5 by means of the helical compression spring arrangement 22 between the flange-like section 19 via the housing part 12. As can be seen in
Number | Date | Country | Kind |
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10 2006 015 308.1 | Mar 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2007/052435 | 3/15/2007 | WO | 00 | 11/21/2008 |