The invention relates to a power switch, especially a high-current switch, comprising at least one pole unit with a pole head and a pole base and a vacuum switching tube interposed therebetween, said vacuum switching tube having a fixed contact and a moving contact, the fixed contact being connected to a first conductor rail of the pole unit via a first connecting element and the moving contact being connected to a second conductor rail of the pole unit via a second connecting element.
A power switch of this kind is disclosed in the Siemens publication “Siemens HG 11.11, 1999” for example. The high-current switch disclosed there in the form of a power switch comprises three pole units each having a pole head and a pole base as well as a vacuum switching tube arranged between them in each case. A fixed contact and a moving contact of the vacuum switching tube are connected to first and second conductor rails of the pole unit. With this previously known power switch, connecting elements are screwed to the respective contact on the one hand and to the respective conductor rail on the other for connecting the contacts to the conductor rails.
The object of the present invention is to further develop a power switch of the kind mentioned in the introduction, which has a higher current carrying capacity.
According to the invention, this object is achieved with a power switch of the kind mentioned in the introduction in that the first connecting element is welded to the first conductor rail and the fixed contact, and the second connecting element is welded to the second conductor rail and the moving contact.
Advantageously, force-activated and fused connecting areas are formed by the welds between the first connecting element and the first conductor rail and the fixed contact, and between the second connecting element and the second conductor rail and the moving contact. As a result of these force-activated and fused connecting areas, the current path from the first conductor rail via the vacuum switching tube to the second conductor rail has adequate mechanical stability and does not require screw fittings in the area of the connecting elements. This is advantageous, as the temperature at the screw fittings must not be more than 65 to 75 degrees Kelvin above the ambient temperature of the power switch. Welding dispenses with this problem, as a result of which the current carrying capacity of the whole power switch is considerably increased.
In a preferred embodiment, the second conductor rail has a flexible current conductor and is welded to the flexible current conductor and the second connecting element.
In a particularly preferred embodiment, the connecting elements are electron beam welded. Electron beam welds are particularly advantageous, as the welding seams can be executed with high precision.
The invention is explained in more detail below based on the drawing and an exemplary embodiment with reference to the attached figures. In the drawing:
As can be seen from
1 Power switch
2 Pole unit
3 Pole head
4 Pole base
5 Vacuum switching tube
6 First conductor rail
7 Second conductor rail
8 Moving contact
9 Drive rod
10 Drive unit
11 Second connecting element
12 Fixed contact
13 First connecting element
14, 15 Supporting devices
16, Retaining wall
17, 18 Connecting areas
19 Stabilizing element
20 Moving contact bolt
21 Connecting areas
22, 23 Flexible current conductor
24, 25, 26, 27 Connecting areas
28, 29 Fastening elements
3
a,
4
a Cooling bodies
Number | Date | Country | Kind |
---|---|---|---|
20 2006 007 973.4 | May 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP07/54494 | 5/9/2007 | WO | 00 | 11/10/2008 |