DocumentCode
1428607
Title
Efficient Iterative Integral Technique for Computation of Fields in Electric Machines with Rotor Eccentricity
Author
Ciric, Ioan R. ; Hantila, Florea I. ; Maricaru, Mihai ; Marinescu, Stelian
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Manitoba, Winnipeg, MB, Canada
Volume
48
Issue
2
fYear
2012
Firstpage
1015
Lastpage
1018
Abstract
To analyze the effects of small variations of the electric machine airgaps due to rotor eccentricity it is necessary to compute the magnetic field highly accurately. An efficient iterative integral technique is proposed, where the material nonlinearity is treated by the polarization method, with the magnetic field determined at each iteration by superposing the contributions of the given electric currents and the polarizations. This computation technique has great advantages over the finite element based procedures, namely, the change in the rotor position does not require the construction of a new discretization mesh, very small airgaps can be taken into consideration without increasing the amount of computation, and the calculated magnetic field in the air is divergenceless and curlless, thus eliminating the introduction of spurious forces. As well, the phase voltages and the magnetic forces are easily calculated from the magnetic field quantities.
Keywords
air gaps; electric machines; iterative methods; magnetic fields; rotors; discretization mesh; electric currents; electric machine airgaps; finite element based procedures; iterative integral technique; magnetic field; magnetic forces; material nonlinearity; phase voltages; polarization method; rotor eccentricity; rotor position; spurious forces; Couplings; Rotors; Soft magnetic materials; Stator windings; Tensile stress; Vectors; Electric machines; iterative methods; nonlinear field computation; rotor eccentricity;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2011.2173752
Filename
6136706
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