DocumentCode :
50763
Title :
Reduction of Linear Subdomains for Non-Linear Electro-Quasistatic Field Simulations
Author :
Schmidthausler, Daniel ; Schops, Sebastian ; Clemens, Markus
Author_Institution :
Dept. of Electromagn. Theor., Bergische Univ. Wuppertal, Wuppertal, Germany
Volume :
49
Issue :
5
fYear :
2013
fDate :
May-13
Firstpage :
1669
Lastpage :
1672
Abstract :
A method is presented that reduces the degrees of freedom (DoFs) in linear subdomains in transient non-linear electro-quasistatic (EQS) field finite-element method (FEM) simulations. The electro-quasistatic field model yields a suitable approximation to simulate high-voltage devices such as insulators or surge arresters featuring non-linear resistive field grading materials. These materials are usually applied as thin layers, i.e., they represent only a very small volume part in the overall model. Despite the application of unstructured FEM meshes, commonly most of the DoFs are located in the domain with constant material parameters. The non-linear subdomain is much smaller with respect to the number of DoFs than the part with constant materials. The application of model order reduction techniques, in particular proper orthogonal decomposition (POD), is proposed to minimize the DoFs in the linear subdomain of the simulation model. POD captures the dynamic in the linear subdomain. Large reduction factors can be achieved for low dynamic exterior domains, thus considerably reducing the computational costs. Numerical results are presented for an IEC norm surge arrester and a typical 11 kV insulator design with a field grading inlay.
Keywords :
arresters; electric fields; finite element analysis; insulators; magnetic domains; magnetic fields; 11 kV insulator design; DoF; EQS FEM simulations; IEC norm surge arrester; POD; computational costs; constant material parameters; degrees of freedom; field grading inlay; finite-element method; high-voltage devices; linear subdomains; low dynamic exterior domains; minimization; model order reduction techniques; nonlinear resistive field grading materials; nonlinear subdomain; numerical method; proper orthogonal decomposition; reduction factors; thin layers; transient nonlinear electro-quasistatic field simulations; unstructured FEM meshes; Electro-quasistatic (EQS) field; model order reduction; proper orthogonal decomposition (POD);
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2013.2238905
Filename :
6514566
Link To Document :
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