The invention relates to the field of high voltage circuit breakers in electrical power generation and distribution systems. It is based on an insulating part for a high voltage switch of a metal-enclosed circuit breaker system, in particular a generator circuit breaker system with rated maximum voltages of typically 20 to 30 kV, rated continuous currents of typically 1 to 30 kA and rated short current circuits of up to up some hundred kA.
At present insulating material for a mechanically and electrically stressed insulating part of complex design which is applied in a high voltage switch of such a system is milled out of hard paper plates. These milled hard-paper plates can be stuck together in order to manufacture specific designs of complex structure and with different functions. Such an insulating part is applied in a starting switch of a generator circuit breaker system of the type HECS manufactured and sold by ABB Switzerland Ltd.
It is an object of the invention as described in the patent claims to specify an insulated part for a high voltage switch of a metal enclosed circuit breaker system which fully meets the mechanical, electrical and thermal requirements during operation of the system and which at the same time can be manufactured in an easy manner.
The insulating part according to the invention is executed as a pressure-gelated casting on the base of a polymeric composite material and comprises a comparatively complex design, which enables the performance of a plurality of functions. A base-plate of the insulating part has a centrally arranged large through-hole for receiving a stationary current terminal block of the high voltage switch and small through-holes for receiving fastening screws. The large through-hole and the small through-holes are extended from a first to a second side of the base-plate, wherein the first side is provided for exposure to the interior of the metal encapsulation. The insulating part further comprises two bearing blocks for receiving a shaft of a movable contact of a contact arrangement of the switch wherein the bearing blocks are arranged on the first side of the base-plate. Besides the insulating part includes at least a first collar which surrounds the large through-hole and which is arranged on the first or the second side of the base-plate.
For reason of the execution as a pressure-gelated casting the insulating part according to the invention can be manufactured easily with low costs but with high precision. In general a finish-maching of the casting is not required. The integration of the large through-hole and of the small through-holes as well as of the two bearing plates and the first collar into the insulating part during pressure gelation of the polymeric composite material result in a complex design which fulfills several functions. On the one hand the insulating part can support the movable contact and the stationary current terminal block and can be connected to the metal enclosure of the system. On the other hand the insulating part and thus the high voltage switch can be charged with strong mechanical forces and can withstand high voltages, in particular during opening or closing the switch.
In a preferred embodiment of the invention the first collar includes said two bearing blocks and two spacers which are arranged between the two bearing blocks. The first collar then stabilizes the insulating part mechanically and at the same time ensures a safe bearing of the movable contact and an improved resistance to tracking between the current terminal block and the metal enclosure even under extreme environmental conditions. The mechanical stability and the resistance to tracking can be remarkably improved, when the first collar and a second collar are oppositely arranged on the base-plate.
In a further embodiment the first collar and the two bearing blocks are oppositely arranged on the base-plate. Then the resistance to tracking outside the metal encapsulation is improved.
A high resistance to tracking, a high breakdown strength, a high thermal longterm stability and convenient mechanical properties, like flexural strength, can be achieved with a polymeric composite material which is based on an outdoor epoxy system filled with an anorganic powder, like quartz or alumina flour. For instance an increase in the creep distance from 9 to 16 mm/kV can easily be realised without additional costs. The manufactured insulating parts can be stored for an unlimited time at room temperature (UV resistance, negligible moisture absorption).
A further embodiment of the insulating part according to the invention which can be applied to a metal enclosure filled with an insulating gas, like air, with a small overpressure comprises a first annular groove for receiving a gasket in which the groove is arranged on the first side of the base-plate and is surrounded by a first group of the small through-holes. These through-holes can receive a first group of said fastening screws which enable a gastight fastening of the insulating part to the metal enclosure. A gastight passing of a current terminal of the high voltage switch through the metal enclosure is ensured when a second annular groove for receiving a gasket is arranged on the second side of the base-plate and surrounds a second group of said small through-holes. These through-holes can receive a second group of said fastening screws which enable a gastight fastening of a current terminal block of said current terminal to the base-plate.
An embodiment of the insulating part in which in the pressure-gelated casting is cast at least one insert can be manufactured in a particular cost- and time-saving manner. In particular the lateral insert can be positioned in a mould and then can be fixed during pressure gelation and hardening of the polymer system. Such an insert can be executed as a threaded sleeve. It is to recommend to arrange the threaded sleeve at the edge of the base-plate and to use it for receiving a further fastening screw which can fasten a metallic envelope surrounding a current conductor which connects an external current source to the high voltage switch.
In order to reduce installation costs it is to recommend in a further embodiment of the invention to execute the insert as a bearing bolt and to arrange it in a through-hole of one of the bearing blocks.
In order to improve the reliability and to reduce the manufacturing and maintenance costs it is to recommend to apply the insulating part according to the invention in a circuit breaker system in which the switch is executed as starting switch and in which the insulating part supports a current terminal block which on the first side of the base-plate is connected to a flexible current conductor section of the starting switch and on the second side of the base-plate to a current conductor of a static frequency converter.
Further embodiments, advantages and applications of the invention are given in the drawings and in a part of the description which follows.
There are shown in:
In the figures same reference symbols are used for identical parts and repetitive reference symbols may be omitted.
The pole of the generator circuit breaker system of
Details of the starting switch ST are shown in
Details of the insulating part 20 are shown in
In
In
The insulating part 20 is manufactured in an automatic pressure gelation (APG) process using an outdoor epoxy system which is filled with quartz flour and which fully meets the required mechanical, electrical, thermal and surrounding boundary conditions. An appropriate epoxy system comprises for instance an epoxy resin of the type CY5622, a hardener of the type XW1235 and an accelerator of the type DY062, all distributed from Huntsman, Basel/Switzerland. The quartz flour in general is silanised and contributes with more than fifty, typically 60 until 65, % of weight to a paste-like starting mixture including mainly the epoxy system and the quartz flour. Typically the insulating part 20 has a mass of about 10 to 20 kg.
In the pressure-gelated casting at least one insert can be cast. Such an insert can be executed as a threaded sleeve 44 and can be arranged at the edge of the base-plate 21 (
Number | Date | Country | |
---|---|---|---|
20080245644 A1 | Oct 2008 | US |