The present application claims priority from Japanese application serial no. 2004-215789, filed on Jul. 23, 2004, the content of which is hereby incorporated by reference into this application.
The present invention relates to an electromagnetic operation device, particularly to the electromagnetic operation device that is suitable for switching a switch such as circuit breaker with the aid of electromagnetic force.
To operate a switch such as circuit breaker, an electromagnetic operator that switches with the aid of electromagnetic force generated by electromagnet is utilized (see Japanese Patent Laid-open No. 2002-217026).
There is also available a hybrid type operator on which electromagnetic suction force of electromagnet is used to turn on the switch and permanent magnet is employed to keep the switch on (see Japanese Patent Laid-open No. 2001-216875).
When the above electromagnetic operator is used for vacuum valve in a three-phase power system, the electromagnetic operator is usually paired one-to-one with vacuum valve of each phase by a main shaft, but lag may be caused in the operation of the electromagnetic operator because of the variation of each phase. Consequently, there arises a problem that the shut-off timing of vacuum valve of each phase varies and so stable shut-off of the power system cannot be achieved.
In addition, the size of the electromagnetic operator and its controller has become larger as electromagnet has become larger, which resultantly disables space saving.
In view of the above problems associated with the prior art, an object of the present invention is to offer an electromagnetic operation device that can absorb variation of each phase. Another object is to offer an electromagnetic operation device that encloses its own parts and components efficiently.
To achieve the above objects, the present invention is an electromagnetic operation device comprises a main shaft that can operate for each phase and a connecting shaft that synchronizes the operation of the main shafts of three phases.
According to the present invention, even in case the main shaft connected with the vacuum valve of each phase operates differently and one of the main shafts operates quicker than the others, lag of each phase can be absorbed and so the vacuum valve can be shut off stably because the electromagnetic operation device is equipped with a three-phase connecting shaft that enables the other main shafts to follow the quicker main shaft.
Embodiments of the present invention are described hereunder, using figures. In the figures, the same symbol represents the same component.
(First Embodiment)
As shown in
As shown in
The control board 81 contains a control logic section that receives a signal of turn-on command (ON) or shut-off command (OFF) to the vacuum valve 1 and performs logical operation for controlling the electromagnetic operator 4, charging/discharging circuit for charging and discharging the capacitor 82, relay for controlling the current direction through a coil 43, and contacts. In addition, there are provided an “ON” pushbutton for sending a turn-on command to the vacuum valve 1 and an “OFF” pushbutton for sending a shut-off command. A mechanism for detecting the condition of vacuum valve 1, comprising an auxiliary contact 83, display panel 84 and counter 85, is mounted above the electromagnetic operator 4.
As explained above, the auxiliary contact section (counter 85, display panel 84, and auxiliary contact 83) of the controller is mounted above the center electromagnetic operator 4 and so designed to operate in line with the electromagnetic operator 4. In addition, since the control board 81, capacitor 82, and auxiliary contact section are enclosed in a separate box from the electromagnetic operators, affect of big impact can be reduced. Furthermore, separate wiring for the auxiliary contact section becomes possible and parts replacement of the section becomes easier.
On the other hand, when a reverse current runs through the coil 43 upon the shut-off operation of the controller, since the flux generated by the coil 43 becomes opposite to that of the permanent magnet 42 and so the suction force of the moving core 41 becomes less than the elastic force of a spring (not shown), the moving core 41 moves upward. Accordingly, a reverse operation to the above is performed via the main shaft 2 that connects the vacuum valve one-to-one with the electromagnetic operator 4, and the valve contact 11 goes OFF.
When one vacuum valve 1 is paired with one electromagnetic operator 4, variation in the operation of the electromagnetic operator 4 causes lag in the turn-on and shut-off timing of the vacuum valve 1 of each phase. To prevent this, a three-phase connecting shaft 3 is provided below each main shaft 2 and each main shaft 2 is connected with the three-phase connecting shaft 3 via the linkage 7.
According to the above embodiment, since the contacting time lag of the valve contact 11 due to the variation in the operation of the electromagnetic operator 4 of each phase can be reduced and the operation of the three phases can be synchronized by the three-phase connecting shaft 3 connecting each electromagnetic operator 4, stable turn-on and shut-off operation of the power system becomes available. In addition, in case of using multiple electromagnetic operators, imbalanced load to the shaft due to the variation in the operation of electromagnetic operators 4 can be reduced because a main shaft 2 that enables independent operation of each phase is employed.
In shutting off the vacuum valve 1, it is necessary to absorb impact applied to the main shaft 2 upon the shut-off and stop the motion of the valve quickly. As shown in
In the construction in
According to this embodiment, impact can be absorbed quickly and well in balance by the shock absorbers 6 on both sides where no deflection is caused, and by dispersing a force like the above, smaller shock absorber becomes applicable.
(Second Embodiment)
Next, the second embodiment of the present invention is described hereunder.
The three-phase connecting shaft 3 is provided above the electromagnetic operator 4 and the main shaft 2 is provided below the electromagnetic operator 4. The two shafts are connected via the rod 44 of the electromagnetic operator 4. That is to say, because the rod 44 is connected with the blade 45 of the main shaft 2 at the fulcrum 46, the motion of the rod 44 is transmitted to the blade 47 of the three-phase connecting shaft 3. Accordingly, the three-phase connecting shaft 3 can synchronize the operation of the main shafts 3 of each phase.
(Third Embodiment)
Next, the third embodiment of the present invention is described hereunder.
While any of the three embodiments described above shall be selected in accordance with the arrangement of the electromagnetic operation device, the first and third embodiments allow easier installation and adjustment because the main shafts and three-phase connecting shafts are provided in the same portion of the case. On the other hand, the second embodiment is advantageous in case space is available above the electromagnetic operator because a linkage for connecting two blades with each other is no longer necessary.
Number | Date | Country | Kind |
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2004-215789 | Jul 2004 | JP | national |