DocumentCode
1428453
Title
Application of Multi-Stage Diagonally-Implicit Runge-Kutta Algorithm to Transient Magnetic Field Computation Using Finite Element Method
Author
Li, H.L. ; Ho, S.L. ; Fu, W.N.
Author_Institution
Dept. of Electr. Eng., Hong Kong Polytech. Univ., Kowloon, China
Volume
48
Issue
2
fYear
2012
Firstpage
279
Lastpage
282
Abstract
A multi-stage diagonally-implicit Runge-Kutta (DIRK) algorithm is applied to discretize the time variable in transient magnetic field computation using finite element method (FEM). A formulation, which has the same format as the backward Euler (BE) algorithm for both linear and nonlinear problems, is deduced for simple and ready numerical implementation. The DIRK algorithm is compared with the BE algorithm which is an effective and popular algorithm in FEM. The merits and disadvantages of these two algorithms are highlighted. An ingeniously combined algorithm exploiting the merits of both BE and DIRK is presented and a numerical experiment shows that it can significantly improve the accuracy with no additional computing burden. For nonlinear problems, a DIRK nonlinear iteration strategy is presented and it can be shown that the total computing time of one integration time step can be shortened by about 36% without any accuracy loss in the solutions.
Keywords
Runge-Kutta methods; finite element analysis; iterative methods; magnetic fields; BE algorithm; DIRK algorithm; DIRK nonlinear iteration strategy; FEM; backward Euler algorithm; computing burden; finite element method; multistage diagonally-implicit Runge-Kutta algorithm; nonlinear problems; time variable; transient magnetic field computation; Accuracy; Equations; Finite element methods; Jacobian matrices; Mathematical model; Switches; Transient analysis; Computing time; DIRK algorithm; finite element method; nonlinear iteration; transient magnetic field;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2011.2175481
Filename
6136652
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