DocumentCode :
1475869
Title :
An Inner-Constrained Separation Technique for 3-D Finite-Element Modeling of Grain-Oriented Silicon Steel Laminations
Author :
Weiying Zheng ; Zhiguang Cheng
Author_Institution :
LSEC, Acad. of Math. & Syst. Sci., Beijing, China
Volume :
48
Issue :
8
fYear :
2012
Firstpage :
2277
Lastpage :
2283
Abstract :
Grain-oriented (GO) silicon steel laminations are widely used in iron cores and shielding structures of power equipments. When the leakage magnetic flux is very strong and enters the lamination plane perpendicularly, the eddy current loss induced there must be taken into account in electromagnetic design. It is preferable to accurately compute three-dimensional (3-D) eddy currents at least in a few outer sheets of the lamination stack. Since the coating film applied to each sheet is only 2-5 thick, finite element modeling of 3-D eddy currents is very difficult in GO silicon steel laminations of large electromagnetic devices. This paper proposes an inner-constrained separation technique (ICST) to compute the 3-D eddy currents. Instead of the coating film, the ICST introduces an inner constraint into the A-formulation to separate the laminations from each other. By the ICST, the 3-D eddy currents can be computed accurately without meshing the coating film. Numerical experiments are carried out on the TEAM (Testing Electromagnetic Analysis Methods) benchmark model P21c-M1 and the numerical results show good agreement with the measured data.
Keywords :
eddy currents; finite element analysis; laminates; power apparatus; silicon alloys; steel; 3D eddy currents; 3D finite element modeling; P21c-M1 benchmark model; TEAM benchmark model; Testing Electromagnetic Analysis Methods; coating film; eddy current loss; grain oriented silicon steel lamination; inner constrained separation technique; iron cores; leakage magnetic flux; power equipments; shielding structures; Coatings; Eddy currents; Films; Finite element methods; Lamination; Steel; Three dimensional displays; Eddy currents; GO silicon steel lamination; finite element methods; inner-constrained separation technique;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2012.2191591
Filename :
6172588
Link To Document :
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