Compact high voltage shunt reactor

4298853
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Inventors

Philp, Sanborn F.

Application #

134429

Filed

Mar-27-1980

Published

Nov-3-1981

Current US Class

336/212
336/219
336/234
336/83

International Classes

H01B 027/24

Field of Search

336/83 336/84

Assignee

General Electric Company (Schenectady, NY)

Examiners

Kozma; Thomas J.

Attorney, Agent or Firm

Steinberg; William H., Davis, Jr.; James C., Webb, II; Paul R.

Referenced by:

View Backward References

Other References

Christoffel, Martin, "The Design and Testing of EHV Shunt Reactors", IEEE Transactions on Power Apparatus and Systems, vol. PAS-86, No. 6, Jun. 1967, pp. 684-692. Edlinger, A., "Transformers and Shunt Reactors for 750 kV", The Brown Boveri Review, vol. 51, No. 1/2, Jan./Feb., 1964, pp. 56-58. Meyerhaus, A., "A New Design for Shunt Reactors of High Rating", The Brown Boveri Review, vol. 45, No. 9, Sep., 1958, pp. 407-410. Dixon, G. F. and Price, J. B. S., "Multi-Core Single-Phase Generator Transformers", Electrical Review, Oct. 4, 1968, pp. 488-491. Dietrich, W., and Weigel, G., "380-kV Power Transformers for the Netherlands", Siemens Review, vol. 36, No. 8, 1969, pp. 296-301.

Citation

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Abstract
A high voltage shunt reactor includes a cylindrical magnetic shell of radially extending laminated layers of magnetic material, and a coil wound within the shell having a large reactance volume within the coil. The reactor uses a portion of the nonmagnetic, reactance volume within the coil for high voltage insulation. This construction substantially increases the energy storage volume within the reactor, so that a high energy storage level may be achieved.
 
Claims
I claim:

1. A high voltage shunt reactor comprising:

a cylindrical housing;

a magnetic shell comprising an annular ring and two generally circular end plates disposed within said housing; said annular ring comprising a plurality of radially extending, circumferentially adjacent laminations of magnetic material separated by layers of insulation and arranged in said annular ring within said housing; each of said end plates comprising a plurality of wedge-shaped members bonded together; and each of said wedge-shaped members comprising a plurality of laminations of magnetic material separated by layers of electrical insulation and bonded thereto to form said wedge-shaped members;



Description
BACKGROUND OF THE INVENTION

The instant invention relates to high voltage shunt reactors for high voltage electrical power transmission lines, and more particularly, to a coreless reactor contained within a magnetic shell for use on high voltage power transmission lines.

High voltage shunt reactors are employed on electrical power transmission lines, normally operating in the 138 kilovolt to 1300 kilovolt range, where they are usually connected from line to ground. These devices are an essential element in such power transmission systems in the control of line voltage, and of line impedance and, therefore, also power flow. Reactors are installed at terminal substations as well as at strategic points along the transmission line, and are designed to provide a constant reactance, or a reactance which changes with voltage, or in some cases, a reactance which can be changed by a suitable switching operation.

Conventional, high voltage reactors closely resemble conventional power transformers in their physical construction. In the conventional design, the reactance characteristics are achieved by providing a number of thin "air gaps" in the main leg of the magnetic core, which is surrounded by a coil. These are not really air gaps but are filled with some non-magnetic material, chosen to meet the mechanical and electrical requirements of the reactor design. The reactance gaps are often filled with pieces of stone, cut and ground to the desired shape or may be filled with other commonly-used insulation material, for example, mineral oil combined with cellulosic material such as craft paper, paper composites and wood. The thermal and mechanical stresses present in a high voltage reactor and the limitations of these conventional materials have presented a limitation on the design of high voltage reactors. Another major practical limitation is in the design of the pole faces of the core where they meet the reactance gaps. Large losses have been associated with this region in the conventional machines, due to stray flux entering the adjacent coil parts and heating them.
 
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