Title :
Time-Domain Surface Impedance Boundary Conditions Enhanced by Coarse Volume Finite-Element Discretisation
Author :
Sabariego, Ruth V. ; Geuzaine, Christophe ; Dular, Patrick ; Gyselinck, Johan
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci. (ACE), Univ. of Liege, Liège, Belgium
Abstract :
In computational magnetodynamics, surface impedance boundary conditions allow to accurately account for high-frequency flux components while removing the massive conducting regions from the computation domain. The time-domain approach previously proposed by the authors relies on the spatial discretisation of a 1-D eddy-current problem by means of dedicated basis functions derived from the analytical frequency-domain solution. In this paper, these time-domain impedance conditions are combined with a coarse volume finite-element discretisation of the massive conductors to capture slowly varying flux components. The accuracy of the hybrid approach can further be improved by introducing a fictitious frequency-dependent conductivity. The method is illustrated and validated by means of 1-D and 2-D test cases in the frequency and time domain.
Keywords :
eddy currents; finite element analysis; physics computing; surface impedance; time-frequency analysis; 1D eddy-current problem; analytical frequency-domain solution; coarse volume finite-element discretisation; computation domain; computational magnetodynamics; dedicated basis functions; frequency-dependent conductivity; high-frequency flux components; hybrid approach; massive conducting regions; massive conductors; slowly varying flux components; spatial discretisation; time-domain approach; time-domain surface impedance boundary conditions; Boundary conditions; Conductivity; Impedance; Iron; Magnetic domains; Surface impedance; Time domain analysis; Finite-element methods; magnetodynamics; surface-impedance boundary conditions; time-domain analysis;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2011.2172923