DocumentCode :
1274068
Title :
Fast computational methods for large-scale eddy-current computation
Author :
Rubinacci, Guglielmo ; Tamburrino, Antonello ; Ventre, Salvatore ; Villone, Fabio
Author_Institution :
Lab. of Comput. Electromagn. Assoc., Universita degli Studi di Cassino, Italy
Volume :
38
Issue :
2
fYear :
2002
fDate :
3/1/2002 12:00:00 AM
Firstpage :
529
Lastpage :
532
Abstract :
In this paper, we present a technique for solving large-scale problems arising from the discretization of an integral formulation for three-dimensional eddy current problems in the magnetoquasi-static limit using edge-element-based shape functions. The proposed approach is in the framework of the precorrected fast Fourier transform method (PFFTM) that allows to compute the product of the full stiffness matrix with a vector in O(N log N) operations. A key point of standard PFFTM is the introduction of point-like sources defined onto a regular grid to approximate an arbitrary current density in the conductor and to compute the large distance interactions by FFT. Point-like sources are not suitable for representing solenoidal current densities as required for eddy currents problems. In this paper, edge-element-based shape functions onto the regular grid are introduced instead of the point-like sources. This allows us to improve the approximation (solenoidal current densities are approximated by solenoidal basis functions) and to reduce further the computational cost
Keywords :
current density; eddy currents; fast Fourier transforms; finite element analysis; integral equations; computational electromagnetics; conductor; edge element shape function; fast algorithm; finite element method; integral equation; large-scale problem; magneto-quasi-static limit; numerical discretization; precorrected fast Fourier transform method; solenoidal current density; stiffness matrix; three-dimensional eddy current; Computational efficiency; Conducting materials; Current density; Eddy currents; Fast Fourier transforms; Finite element methods; Grid computing; Large-scale systems; Shape; Time sharing computer systems;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.996139
Filename :
996139
Link To Document :
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