DocumentCode :
1369509
Title :
Multiphase Flux-Switching Permanent-Magnet Brushless Machine for Aerospace Application
Author :
Thomas, Arwyn S. ; Zhu, Z.Q. ; Owen, Richard L. ; Jewell, Geraint W. ; Howe, David
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Sheffield, Sheffield, UK
Volume :
45
Issue :
6
fYear :
2009
Firstpage :
1971
Lastpage :
1981
Abstract :
Flux-switching permanent-magnet (FSPM) brushless machines have attracted considerable interest as a candidate machine technology for applications requiring high torque density and robust rotors. To date, published findings have focused exclusively on single- and three-phase FSPM machines. This paper investigates FSPM brushless machines of higher phase numbers by means of a detailed comparison of the electromagnetic performances of three-, four-, five-, and six-phase variants within the specific context of aerospace machine. Machines having both all poles and alternate poles wound are investigated, with the latter offering scope to reduce mutual coupling between phases so as to achieve improved fault tolerance. The finite-element (FE)-predicted electromagnetic performances in both machines, such as electromotive force waveform, winding inductance, cogging torque, and static torque, are validated by the experiments made on a small-scale five-phase FSPM machine. The nature of the machine specification requires that consideration must be given to mechanical stress in the rotor and the tradeoff with electromagnetic design considerations, notably the degree of rotor saliency which can be incorporated. Therefore, a mechanical FE study of the rotor mechanical stresses of multiphase FSPM machines is also comparatively assessed.
Keywords :
aerospace engineering; brushless machines; finite element analysis; permanent magnet machines; rotors; aerospace machines; cogging torque; electromotive force waveform; finite-element method; flux-switching permanent-magnet brushless machine; mutual coupling; rotor saliency; torque density; winding inductance; Aerospace; flux switching; high speed; multi-phase; permanent-magnet generator;
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2009.2031901
Filename :
5238623
Link To Document :
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