The present invention relates to stationary induction electric machines such as transformers and reactors and in particular to a stationary induction electric machine using a polymer bushing.
It is a common practice for diagnosing the soundness of electrical machinery and apparatus to detect the presence of partial discharge occurring in a winding of a stationary induction electric machine such as a transformer and a reactor. One of the methods for detecting partial discharge is to detect electromagnetic waves in the UHF (Ultra High Frequency) band radiated from a place of the occurrence of partial discharge with an electromagnetic wave detection sensor or antenna.
Since this electromagnetic wave does not penetrate a metal conductor but is reflected, the electromagnetic wave cannot penetrate a metal tank covering almost all the part of a stationary induction electric machine. For bushings, generally, porcelain insulator-type oil-filled capacitor bushings are used. The interior of such a bushing is sealed with a number of the laminated layers of metal foil of a capacitor core and electromagnetic waves can hardly penetrate the interior.
Consequently, a detection sensor for electromagnetic waves is often installed in the tank beforehand when a stationary induction electric machine is fabricated. Or, the tank is beforehand provided with an insulator observation window and a detection sensor is installed out of the window. However, it is not easy to newly install a detection sensor in a tank in an existing transformer already used in the field. This requires large-scale electrical work, such as stopping the operation of the stationary induction electric machine, pulling out an insulating medium, and modifying the tank.
To solve the above problem, Patent Document 1 discloses an invention in which a transformer tank and a sensor housing container are connected with each other through a butterfly valve.
Specifically, the invention is configured as described below. A partial discharge detection sensor made, up of a signal detecting unit and a sensor support unit is attached to the tip of a pipe-like sensor insertion rod made of metal. A signal cable is installed in the sensor insertion rod and the signal cable is connected to an external terminal. The partial discharge detection sensor provided at one end of the sensor insertion rod is installed in the sensor housing container; and the other end of the sensor insertion rod is pulled out to the outside through an opening formed in the sensor housing container and is slidably supported by a rod support cylinder. Thus the partial discharge detection sensor is configured to be able to be moved between the transformer tank and the sensor housing container.
Patent Document 1: Japanese Patent Application Laid-Open No. 2010-73984
In the case of the invention described in Patent Document 1, when an electromagnetic wave detection sensor is retrofitted to an existing stationary induction electric machine, a drain valve of the existing stationary induction electric machine or a valve in a cooler pipe is utilized. Therefore, the position of the electromagnetic wave detection sensor is limited to the positions of these valves. In many cases, these valves are positioned on the side of the stationary induction electric machine tank. It is unknown in which winding of the stationary induction electric machine partial discharge will occur. When the place of occurrence of partial discharge is located far away from the electromagnetic wave detection sensor or on the back side with the core in-between, a problem results. While an electromagnetic wave is repeatedly reflected and propagated, electromagnetic wave signals are attenuated and the detection sensitivity of the electromagnetic wave detection sensor can be degraded.
Consequently, it is an object of the present invention to provide a stationary induction electric machine which makes it possible to detect partial discharge in the stationary induction, electric machine with favorable sensitivity and to easily retrofit an electromagnetic wave detection sensor to the already installed stationary induction electric machine.
To solve the above problem, the present invention provides a stationary induction electric machine having in a tank a core having a plurality of core legs and windings wound around the core legs, characterized in that a polymer bushing is secured on the upper face of the tank through a support fitting and the polymer bushing includes an electromagnetic wave detection sensor, and the electromagnetic wave detection sensor is placed in a position where the support fitting is avoided.
According to the present invention, it is possible to retrofit an electromagnetic wave detection sensor even to an existing stationary induction electric machine and detect partial discharge with favorable sensitivity.
Hereinafter, a description will be given to an embodiment in which the present invention is preferably exploited with reference to the drawings. Below is just an example and is not meant to limit the embodiments of the present invention.
As illustrated in
As illustrated in
The surface of the solid insulator 8 located above the metal flange 13 is covered with the housing 9; and the housing 9 has a plurality of fins 10. The support fitting 18 is molded in the solid insulator 8 and plays a role as a reinforcing fitting for supporting the inverted polymer bushing 6; and the support fitting 18 is electrically connected with the metal flange 13 at an identical potential (ground potential).
The polymer bushing 6 is secured on a bushing mounting seat 12 welded to the bushing pocket 5 with a fixing bolt 14 through the metal flange 13 coupled with the support fitting 18 and is thereby coupled with the tank 1. That is, the support fitting 18 is placed on the inner circumference side of the polymer bushing 6.
The polymer bushing 6 is provided with an electromagnetic wave detection sensor 11 on the surface of the housing 9, that is, on the outer circumference side of the polymer bushing 6. The electromagnetic wave detection sensor 11 is secured with a sensor fixture 19 of insulator such as a glass tape and a measurement cable 16 is connected to the sensor. The outer surface of the electromagnetic wave detection sensor 11 is connected between the metal flange and the fixing bolt 14 through a ground wire 17 and grounded.
The electromagnetic wave detection sensor 11 is mounted in a position where the support fitting 18 is avoided. The electromagnetic wave detection sensor 11 is preferably placed above the support fitting 18 and directly under the fin closest to the support fitting 18.
Hereinafter, a description will be given to partial discharge monitoring in the stationary induction electric machine in this embodiment with reference to
Especially, an electromagnetic wave radiated from the interior of the winding 2 in the axial direction of the winding 2 is propagated by way of the insulative separation space between the primary winding 2a and the secondary winding 2b and between the core 3 and the secondary winding 2b, and for this reason, the electromagnetic wave relatively readily arrives at the outside of the winding 2 as compared with propagation in the radial direction of the winding 2.
The electromagnetic wave that has arrived at the outside of the winding arrives at the polymer bushing 6 located immediately above the winding 2. The electromagnetic wave passes through the solid insulator 8 portion between the central conductor 7 and the support fitting 18 in the polymer bushing 6 and is detected by the electromagnetic wave detection sensor 11 attached to the housing 9 above the support fitting 18. That is, the electromagnetic wave does not penetrate the support fitting 18; therefore, the electromagnetic wave penetrates from the upper end side of the support fitting 18 to the outside of the polymer bushing 6 and is detected by the electromagnetic wave detection sensor 11.
The electromagnetic wave detected by the electromagnetic wave detection sensor 11 is converted into an electric signal, which is transmitted to observation equipment through a measurement cable 16. Based on a resulting measurement value thereof, any anomaly is diagnosed in the transformer. The signal may be transmitted using a transmitter and there is not any special limitation on the method of signal transmission from the electromagnetic wave detection sensor 11.
It is desirable that the electromagnetic wave detection sensor 11 should be attached on the outer circumference side of the polymer bushing 6 and above the support fitting 18. Since electromagnetic waves that have propagated between the central conductor 7 and the support fitting 18 are concentrated in this position, electromagnetic waves can be detected here with high sensitivity.
Placement of the electromagnetic wave detection sensor 11 directly under the fins 10 makes it possible to prevent contamination of the sensor due to weather or dust. Therefore, it is preferable that the electromagnetic wave detection sensor 11 should be placed above the support fitting 18 and directly under the fins 10.
In case where the electric machine is placed indoor or other like cases, the electromagnetic wave detection sensor 11 need not be placed directly under the fins 10 as long as there is not a possibility of contamination of the electromagnetic wave detection sensor 11. In such cases, it is desirable that the electromagnetic wave detection sensor 11 should be placed directly above the support fitting 18.
The electromagnetic wave detection sensor 11 may be secured on the polymer bushing 6, for example, with the sensor fixture 19 using a tightening ring or may be secured with an adhesive. Alternatively, the electromagnetic wave detection sensor 11 may be secured with a sensor fixture 19 of such a structure that semicircles obtained by dividing a metal ring into two are coupled together by tightening bolts.
In this case, the outer surface of the electromagnetic wave detection sensor 11 may be grounded together with the sensor fixture 19 by connecting the sensor fixture 19 to the metal flange 13 through the ground wire 17. Methods for attaching or grounding the electromagnetic wave detection sensor 11 in the embodiment are not limited to the foregoing.
In the polymer bushing 6, the solid insulator 8 can be made of, for example, epoxy resin and the housing 9 and the fins 10 can be made of, for example, silicone rubber. The embodiment is not limited to these materials or shapes.
In this embodiment, there is a possibility that the electromagnetic wave detection sensor 11 may detect electromagnetic wave noise in the UHF band from outside the stationary induction electric machine. To cope with this, it is desirable that the electromagnetic wave detection sensor 11 should be provided with an electromagnetic wave shield 21.
The electromagnetic wave shield 21 can be embodied as shown in
With the configuration in
As illustrated in
In the mode in
In the stationary induction electric machine of the present invention, as described up to this point, an electromagnetic wave can be detected on the upper side of a winding 2 in the axial direction where the electromagnetic wave of partial discharge occurring in the winding 2 is readily propagated. Therefore, the electromagnetic wave can be detected before the electromagnetic wave is not attenuated so much by propagation and the detection sensitivity can be enhanced. Furthermore, since the electromagnetic wave detection sensor 11 is attached outside the stationary induction electric machine, the electromagnetic wave detection sensor 11 can also be attached to the already installed stationary induction electric machine.
Number | Date | Country | Kind |
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2013-093182 | Apr 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/055897 | 3/7/2014 | WO | 00 |