Title :
Secondary Resistive Losses With High-Frequency Injection-Based Self-Sensing in IPM Machines
Author :
Limsuwan, Natee ; Kato, Toshihiko ; Chen-Yen Yu ; Tamura, Junji ; Diaz Reigosa, David ; Akatsu, Kan ; Lorenz, Robert D.
Author_Institution :
Wisconsin Electr. Machines & Power Electron. Consortium, Univ. of Wisconsin, Madison, WI, USA
Abstract :
This paper investigates the impact of high-frequency-injection-based self-sensing on secondary resistive losses associated with the high-frequency carrier component in interior permanent magnet (IPM) machines. Two types of salient machines, a flux-weakening IPM (Lq > Ld) and a flux-intensifying IPM (FI-IPM, Lq <; Ld) are investigated. Simulation with 3-D finite-element analysis is used to analyze the loss characteristics of the machines. Iron loss and eddy-current loss in permanent magnets dominate during high-frequency carrier-signal injection. The magnet eddy-current loss is found to be dependent on the magnet location and to be sensitive to loading, while the iron loss is dependent on stator and rotor structural designs and is less sensitive to loading. The understanding of this characteristic is useful for position and magnet temperature sensing. Experimental evaluation of losses on a built FI-IPM machine is used to evaluate the simulation results.
Keywords :
eddy current losses; finite element analysis; machine theory; magnetic flux; permanent magnet motors; 3D finite element analysis; IPM Machines; eddy current loss; flux intensifying IPM; flux weakening IPM; high frequency carrier signal injection; high frequency injection based self-sensing; high-frequency carrier component; interior permanent magnet machines; iron loss; magnet temperature sensing; position sensing; salient machine; secondary resistive loss; Carrier-signal injection; eddy-current magnet loss; interior permanent-magnet (IPM) machines; iron loss; resistance; self-sensing;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2013.2256091