Title :
Analysis of the Torque Production Mechanism for Flux-Switching Permanent-Magnet Machines
Author :
McFarland, James D. ; Jahns, Thomas M. ; El-Refaie, Ayman M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin-Madison, Madison, WI, USA
Abstract :
This paper investigates the principles underlying torque production in a flux-switching permanent-magnet (FSPM) machine. Because the phase windings and permanent magnets (PMs) in FSPM machines are both located on the stator, the torque production mechanism is not the same as for a conventional PM synchronous machine. Spatial harmonic analysis is applied to examine the frequency components present in the electric and magnetic loading of the machine. Since torque is proportional to the product of the electric and magnetic loading, understanding the source of the principal harmonics in these waveforms yields powerful insights into the components that result in torque production. The analysis is first presented for a specific FSPM machine (12-slot/10-pole) and then extended to a general FSPM machine. The primary torque-producing harmonics in the air-gap flux density waveform are found to be the heterodyned harmonics of the magnetomotive force produced by the stator magnets and the air-gap permeance seen by the stator looking into the rotor. Analytical results are compared to results from finite-element analysis and exhibit good agreement.
Keywords :
air gaps; finite element analysis; magnetic flux; permanent magnet machines; permanent magnets; rotors; stators; synchronous machines; torque; FSPM machine; PM synchronous machine; air gap flux density waveform; air gap permeance; electric loading; finite element analysis; flux switching permanent magnet machine; frequency components; magnetic loading; magnetomotive force heterodyned harmonics; permanent magnets; phase windings; rotor; spatial harmonic analysis; stator magnet; torque production mechanism analysis; Harmonic analysis; Magnetic flux; Rotors; Stator windings; Torque; Finite-element analysis; harmonic analysis; modulation; permanent-magnet machines; permeability; torque; traction motors;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2015.2411655