DocumentCode :
1390215
Title :
Comparison of Nonoriented and Grain-Oriented Material in an Axial Flux Permanent-Magnet Machine
Author :
Kowal, Damian ; Sergeant, Peter ; Dupré, Luc ; Van den Bossche, Alex
Author_Institution :
Dept. of Electr. Energy, Syst. & Autom., Ghent Univ., Ghent, Belgium
Volume :
46
Issue :
2
fYear :
2010
Firstpage :
279
Lastpage :
285
Abstract :
The performance and iron losses of an axial flux permanent-magnet synchronous machine (AFPMSM) using nonoriented (NO) steel are compared with the performance and iron losses of an AFPMSM using grain-oriented (GO) material. The machine is modeled by several 2-D finite element models in circumferential direction, at different radii. The material model for the GO material is an anhysteretic anisotropic model based on the magnetic energy. The magnetic energy is computed by using several measured quasi-static BH-loops on an Epstein frame in seven directions starting from the rolling direction to the transverse direction. The losses are calculated a posteriori, based on the principles of loss separation and dynamic loop measurements. A loss model was made for each of the seven directions, assuming unidirectional fields. In comparison with the more usual NO material, both the saturation induction and the torque are higher with GO material. The magnetic field in the GO material is lower than for NO material in the major part of the iron, but higher in the tooth tips where the field is not in the rolling direction. The stator iron losses are about 7 times lower for the considered GO compared to the NO material.
Keywords :
electromagnetic induction; finite element analysis; magnetic anisotropy; magnetic flux; magnetic hysteresis; permanent magnet machines; steel; synchronous machines; torque; 2-D finite element models; Epstein frame; FeCJk; anhysteretic anisotropic model; axial flux permanent-magnet synchronous machine; circumferential direction; dynamic loop measurements; grain-oriented material; iron losses; loss separation; magnetic energy; nonoriented material; nonoriented steel; quasistatic BH-loops; rolling direction; saturation induction; torque; Iron; Magnetic anisotropy; Magnetic field measurement; Magnetic flux; Magnetic materials; Magnetic separation; Performance loss; Perpendicular magnetic anisotropy; Saturation magnetization; Synchronous machines; Finite element methods; losses; permanent magnet machines;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2009.2032145
Filename :
5393206
Link To Document :
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