The present invention relates to a vacuum switch and in particular to a vacuum switch which is suitably used as a single-phase alternating current interruption switch for use in an electric railway, or the like.
Generally, a Shinkansen (super express train) vehicle of an electric railway, for example, a railway vehicle 20 as shown in
For example, assume that in
However, when the current interruption vacuum switch VS1 is on and the current passage vacuum switch VS2 is off as shown in
Note that when the current is passed, the electrode surfaces become rough due to advanced discharge, and conductive foreign matter arising from the surfaces tends to cause electrical breakdown between the electrodes. Accordingly, it is preferable to improve insulation reliability.
Since a potential difference as described above occurs, two vacuum valves VI (vacuum interrupters) are coupled together in series in a traditional vacuum switch VS, as shown in
Specifically, assuming that the feed voltage of the railway substation G1 and the feed voltage of the railway substation G2 are V1 [V] and V2 [V], respectively, and that two vacuum valves VI are coupled together in series, a maximum potential difference VK which occurs across each vacuum valve VI is reduced to VK/2, as shown in
Prior art documents related to a dead section include Patent Literature 1. Patent Literature 1 discloses that a switching section is disposed between two trolley lines having different power supplies on a Shinkansen; switch interrupters are coupled between a first trolley line and the switching section and between a second trolley line and the switching section, respectively; switching is performed between the two switching circuit breakers in accordance with the traveling of the vehicle, so that the power supply of the first trolley line or that of the second trolley line applies a voltage to the switching section; and thus the vehicle passes through the switching section while keeping the notch on.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2002-369311
As described above, two vacuum valves VI are coupled together in series in the traditional vacuum switch and thus withstand voltage performance of the open electrodes of each vacuum valve is improved. Further, assuming that the feed voltage of the railway substation G1 and the feed voltage of the railway substation G2 are V1 [V] and V2 [V], respectively, a maximum potential difference VK which occurs across each vacuum valve V1 is reduced to VK/2, as shown in
While vacuum switches have been required to have higher insulation characteristics in recent years, the traditional structure, where two vacuum valves are coupled together in series, has a limit to obtaining higher insulation properties. Patent Literature 1 has no description on improving of the insulation properties of the switch or description on the structure of the switching circuit breaker.
The present invention has been made in view of the foregoing, and an object thereof is to provide a vacuum switch that can achieve higher insulation properties to improve reliability.
To achieve the above object, a vacuum switch according to the present invention is a vacuum switch for interrupting a single-phase alternating current and includes three vacuum valves (VI) for a three-phase alternating current which are coupled together in series.
Specifically, the three vacuum valves for a three-phase alternating current are coupled together in such a manner that a current flows through the adjacent vacuum valves in the same direction or in such a manner that a current flows through the adjacent vacuum valves in different directions.
Further, the three vacuum valves for a three-phase alternating current are coupled together in such a manner that the adjacent vacuum valves are coupled together through solid insulated busbars.
Further, the three vacuum valves for a three-phase alternating current are collectively molded.
According to the present invention, it is possible to obtain a vacuum switch that can achieve higher insulation properties to improve reliability.
Now, a vacuum switch according to an embodiment of the present invention will be described with reference to the drawings.
The present embodiment is intended to further improve the insulation reliability of a vacuum switch VS. Specifically, the present embodiment improves insulation performance by coupling three vacuum valves VI together in series rather than coupling two vacuum valves VI together in series as has been done traditionally.
In other words, the present embodiment is characterized in that three vacuum valves VI for a three-phase alternating current are coupled together in series in a vacuum switch for interrupting a single-phase alternating current.
More specifically, three vacuum valves VI for a three-phase alternating current are coupled together in such a manner that the current flows through adjacent vacuum valves VI in the same direction, as shown in
A device for different application for a vacuum circuit breaker VCB, instead of that for a vacuum switch VS, is used as an operation device for operating the vacuum valves VI. Note that while the feeder line is a feeder line for a single-phase alternating current, the vacuum circuit breaker is a vacuum circuit breaker for interrupting a three-phase alternating current.
Since the vacuum circuit breaker is intended to interrupt a three-phase alternating current, it includes three vacuum valves VI. That is, by coupling the three vacuum valves VI together in series, it is possible to interrupt the current at more points than those in a vacuum switch VS where two vacuum valves VI are coupled together in series.
In the coupling configuration shown in
That is, use of the coupling configuration shown in
Further, consider the current flow direction. In the coupling configuration shown ). This may cause an electromagnetic repulsive force. On the other hand, in the coupling configuration shown in
The coupling configuration shown in
Typically, a vacuum circuit breaker is required to be used indoors and therefore it is not appropriate to install it outdoors as it is, unlike the vacuum switch VS. For this reason, the vacuum circuit breaker is stored in a cradle (metal box) including a holder for the terminals thereof so that it can be used outdoors.
As shown in
As seen above, by interrupting the current at three points using the vacuum circuit breaker where the three vacuum valves VI are coupled together in series, it is possible to further improve reliability, to reduce the potential difference of each the vacuum valve VI to VK/3 [V], and to further improve the insulation properties between the vacuum valves VI.
Further, molding of vacuum valves VI (that is, mold insulation in place of air insulation) improves insulation properties, and collective molding of three vacuum valves VI allows downsizing.
For the insulation performance of vacuum valves VI used, just one vacuum valve is made capable of withstanding a potential difference of VKMax [V], and reliability can be further improved by coupling together in series three vacuum valves VI.
The vacuum valves VI may be coupled together using the cradle 10 and the solid insulated busbars 11A, and a standard product having performance records may be used as the vacuum circuit breaker. By coupling vacuum valves VI included in the vacuum circuit breaker in series, the vacuum circuit breaker can have a function of interrupting a single-phase alternating current at three points.
Next, details of the vacuum circuit breaker including the vacuum switch of the present embodiment will be described with reference to
As shown in
An interruption spring 3 and contact pressure springs 5 are disposed between the operation mechanism 2 and the vacuum valves 6. To pass the current, a contact pressure is applied to the electrodes 8 of each vacuum valve 6 by the force of the contact pressure spring 5; to interrupt the current, the electrodes 8 of each vacuum valve 6 are opened by the force of the contact pressure spring 5.
Specifically, when the operation mechanism 2 moves downward, each movable rod 7 moves upward, and the corresponding electrodes 8 contact each other. Thus, the current is passed (the state of
According to the present embodiment, the three vacuum valves VI are coupled together in series. Thus, it is possible to achieve much higher insulation properties to improve reliability. Also, by using the solid insulated busbars to couple the three vacuum valves VI together in series, it is possible to unify the current flow directions and to further improve the insulation performance between the vacuum valves VI. In this case, by electrically coupling the vacuum valves VI of different phases together in series using one vacuum circuit breaker which is usually used for a three-phase alternating current, the vacuum circuit breaker can serve as a circuit breaker for a single-phase alternating current. This increases the versatility of the vacuum circuit breaker for a three-phase alternating current.
Further, by molding the vacuum valves VI, insulation performance can be improved (compared to air insulation); by collectively molding the three vacuum valves VI to reduce the inter-phase insulation distance, the entire vacuum circuit breaker can be downsized; and by coupling the vacuum valves VI together in series using the solid insulated busbars, an electromagnetic operation device which is a standard product can be used.
Further, by coupling the three vacuum valves in series using the solid insulated busbars between the terminals of the vacuum circuit breaker for a three-phase alternating current, it is possible to interrupt a single-phase alternating current using the three vacuum valves.
1 . . . vacuum circuit breaker, 2 . . . operation mechanism, 3 . . . interruption spring, 4 . . . shaft, 5 . . . contact pressure spring, 6, VI . . . vacuum valve, 7 . . . movable rod, 8 . . . electrodes, 9 . . . case, 10 . . . cradle, 11A, 11B, 11C, 11D, 11E . . . solid insulated busbar, 12 . . . terminal, 20 . . . railway vehicle, 21 . . . feeder line, VS . . . vacuum switch, VS1 . . . current interruption vacuum switch, VS2 . . . current passage vacuum switch, G1, G2 . . . railway substation
Number | Date | Country | Kind |
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2012-072992 | Mar 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/051025 | 1/21/2013 | WO | 00 |