DocumentCode
1299094
Title
A Galerkin model to study the field distribution in electrical components employing nonlinear stress grading materials
Author
Egiziano, L. ; Tucci, V. ; Petrarca, C. ; Vitelli, M.
Author_Institution
Dip. di Ing. dell´´Inf. e Ing. Elettrica, Salerno Univ., Italy
Volume
6
Issue
6
fYear
1999
fDate
12/1/1999 12:00:00 AM
Firstpage
765
Lastpage
773
Abstract
An effective model is presented for the evaluation of the electric field dynamics inside electrical components, using nonlinear stress grading materials. The model, implemented in a numerical procedure, permits the solution of the Laplace equation and the diffusion equation by adopting the Galerkin method. Two-dimensional domains, even of very complex shapes and the finite thickness of the grading materials are properly taken into account, allowing an accurate evaluation of the electric field distribution and a sound understanding of the influence of the different types of nonlinearities on the stress grading efficiency. The proposed technique has been applied to study the field distributions inside a cable termination equipped with a stress control tube and in a suspension cap-and-pin glass insulator covered with an anti-corona layer. Numerical results for sinusoidal power frequency and standard impulse voltages elucidate the different role of resistive and capacitive contributions in determining the overall potential maps
Keywords
Galerkin method; Laplace equations; electric connectors; electric fields; insulators; Galerkin method; Laplace equation; anti-corona layer; cable termination; diffusion equation; electric field distribution; electrical component; impulse voltage; nonlinear stress grading material; nonlinearity; numerical model; potential map; sinusoidal power frequency; stress control tube; suspension cap-and-pin glass insulator; two-dimensional domain; Acoustic materials; Cable insulation; Glass; Laplace equations; Moment methods; Nonlinear equations; Power cable insulation; Power cables; Shape; Stress control;
fLanguage
English
Journal_Title
Dielectrics and Electrical Insulation, IEEE Transactions on
Publisher
ieee
ISSN
1070-9878
Type
jour
DOI
10.1109/94.822012
Filename
822012
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