ELECTROMAGNETIC DRIVE FOR A POWER CIRCUIT-BREAKER WITH A VACUUM INTERRUPTER
20210350989 · 2021-11-11
Inventors
Cpc classification
H01H33/6662
ELECTRICITY
H01H2001/545
ELECTRICITY
International classification
Abstract
A drive unit is provided for a moving contact of a vacuum tube. The drive unit has a tube pin which is conductively connected to the moving contact, a drive which is connected to the tube pin, and a conductor bridge. The drive moves the tube pin. The conductor bridge is directly conductively connected to the tube pin and a stationary conductor and bridges a travel of the tube pin between a conductive switching state of the vacuum tube and a non-conductive switching state. A magnet drive is provided, which contains a first magnet element, which is connected to the tube pin, and a second magnet element. The two magnet elements are configured to build up a magnetic force between them when current is flowing through the vacuum tube and in this way generates a contact-pressure force of the moving contact onto a fixed contact of the vacuum tube.
Claims
1. A drive unit for a moving contact of a vacuum tube, the drive unit comprising: a tube pin which is or can be conductively connected to the moving contact; a drive connected to said tube pin and configured to move said tube pin along a movement direction; a conductor bridge directly or indirectly conductively connected to said tube pin and a stationary conductor, said conductor bridge bridging a travel of said tube pin between a conductive switching state of the vacuum tube and a non-conductive switching state of the vacuum tube; and a magnet drive having a first magnet element, being mechanically connected to said tube pin, and a second magnet element, wherein said first and second magnet elements are configured to build up a magnetic force between them when current is flowing through the vacuum tube and in this way generating a contact-pressure force of the moving contact onto a fixed contact of the vacuum tube, and wherein one of said first and second magnet elements is a first coil through which the current flowing through the vacuum tube in the conductive switching state of the vacuum tube flows.
2. The drive unit according to claim 1, wherein an other of said first and second magnet elements is a second coil through which the current flowing through the vacuum tube in the conductive switching state of the vacuum tube flows.
3. The drive unit according to claim 1, wherein said first coil has a first winding direction and said second coil has a second winding direction which is opposite to the first winding direction.
4. The drive unit according to claim 1, wherein an other of said first and second magnet elements has a ferromagnetic material or is formed from said ferromagnetic material.
5. The drive unit according to claim 1, wherein an other of said first and second magnet elements is a permanent magnet.
6. The drive unit according to claim 1, wherein said first and second magnet elements are disposed offset in relation to one another along a longitudinal axis of said tube pin.
7. The drive unit according to claim 1, wherein said first and second magnet elements are disposed coaxially in relation to one another.
8. The drive unit according to claim 1, wherein a circumference of a selected one of said first and second magnet elements and a cutout area of a remaining one of said first and second magnet elements are selected such that said selected magnet element can be at least partially displaced through said remaining magnet element.
9. A circuit breaker, comprising: a vacuum tube having a moving contact and a fixed contact; a drive unit for said moving contact of said vacuum tube, said drive unit containing: a tube pin which is or can be conductively connected to said moving contact; a drive connected to said tube pin and configured to move said tube pin along a movement direction; a conductor bridge directly or indirectly conductively connected to said tube pin and a stationary conductor, said conductor bridge bridging a travel of said tube pin between a conductive switching state of said vacuum tube and a non-conductive switching state of said vacuum tube; and a magnet drive having a first magnet element, being mechanically connected to said tube pin, and a second magnet element, wherein said first and second magnet elements are configured to build up a magnetic force between them when current is flowing through said vacuum tube and in this way generates a contact-pressure force of said moving contact onto said fixed contact of said vacuum tube, and wherein one of said first and second magnet elements is a first coil through which the current flowing through the vacuum tube in the conductive switching state of said vacuum tube flows.
10. A gas-insulated or air-insulated switchgear assembly for a medium or high voltage, comprising: a circuit breaker according to claim 9.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE INVENTION
[0033] Referring now to the figures of the drawings in detail and first, particularly to
[0034] The vacuum tube 1 constitutes the central switching element of the circuit breaker 20. A low pressure prevailing in the interior of the vacuum tube 1 largely suppresses the production of arcs in this case. It is customary in the art for the vacuum tube to be dimensioned depending on the voltages and currents switched. For example, an electrode 5 can be provided for a mid-potential in order to reduce potential differences within the vacuum tube 1 and therefore to be able to switch larger voltages given the same size of vacuum tube 1.
[0035] The vacuum tube 1 is connected to first and second fixed conductors 6 and 8, wherein the connection in the case of the moving contact 3 takes place via a conductor bridge 7 which compensates for the travel of the moving contact 3 or of the tube pin 19 between the conductive and the non-conductive switching state. It is customary in the art for the conductor bridge 7 to be able to be manufactured, for example, as a stranded wire or else as a large number of thin strips composed of a conductive material, such as copper, which are laid one above the other and can be displaced in relation to one another. However, the use of a sliding contact for a conductor bridge is also conceivable.
[0036] The tube pin 19 is connected by means of an insulator 9 to a drive 10 which moves the tube pin 19 and therefore the moving contact 3 in order to switch over the vacuum tube 1 between the two switching states. In the exemplary embodiment shown, the drive 10 contains a spring mechanism 11, which can quickly drive the tube pin 19 by spring force, and an auxiliary motor 12 which is connected to the spring mechanism 11 and is intended to tension one or more springs (not illustrated) of the spring mechanism 11 for further tripping of the spring mechanism 11. However, the drive 10 can also have an electrical or electromagnetic drive instead of the spring mechanism 11 and a rechargeable electrical energy store instead of the auxiliary motor 12.
[0037]
[0038] The magnet drive 30 has two magnet elements which are configured as a first coil 13 and a second coil 14 in the present case. In the example shown, the first coil 13 is electrically conductively and mechanically connected to the tube pin 19 and accordingly moves with the tube pin 19. In contrast, the second coil 14 is stationary and connected to a second fixed conductor 8. In order to compensate for a travel of the tube pin 19, a conductor bridge 7 which electrically conductively connects the first coil 13 to the second coil 14 is provided, as in the prior art.
[0039] In the example shown, the first coil 13 and the second coil 14 each comprise only one conductor coil, but can also be embodied with more conductor coils, depending on the desired magnetic and therefore contact-pressure force. In the exemplary embodiment of
[0040]
[0041] In the exemplary embodiment shown in
[0042] Within the scope of the invention, it is possible to provide more than two magnet elements, for example by way of the exemplary embodiments of
[0043] Each coil can also be provided with a ferromagnetic coating which is preferably electrically isolated from the coil by an insulator. In this case, the ferromagnetic coating is magnetized by the magnetic field of the coil when a current is flowing and can therefore maintain the magnetic field and therefore the contact-pressure force for a certain time after the flow of current ends.
[0044]
[0045]
[0046]
[0047] The invention has been described in more detail with reference to exemplary embodiments which, however, are not to be interpreted as limiting the scope of protection, which is defined solely by the following patent claims, and serve merely for better understanding of the invention.
LIST OF REFERENCE SYMBOLS
[0048] 1 Vacuum tube [0049] 2 Fixed contact [0050] 3 Moving contact [0051] 4 Movement direction [0052] 5 Electrode [0053] 6 First fixed conductor [0054] 7 Conductor bridge [0055] 8 Second fixed conductor [0056] 9 Insulator [0057] 10 Drive [0058] 11 Spring mechanism [0059] 12 Auxiliary motor [0060] 13 First coil [0061] 14 Second coil [0062] 15 Ferromagnetic body [0063] 16 Grounding conductor [0064] 17 Housing [0065] 18 Grounding switch [0066] 19 Tube pin [0067] 20 Circuit breaker [0068] 30 Magnet drive [0069] 40 Switchgear assembly