Title :
Ultrafast steady-state multi-physics model for PM and synchronous reluctance machines
Author :
Yi Wang ; Ionel, Dan M. ; Staton, David
Author_Institution :
Univ. of Wisconsin-Milwaukee, Milwaukee, WI, USA
Abstract :
A new technique for coupling the electromagnetic, thermal, and air-flow analysis is proposed especially for electric machines that exhibit a reduced dependency of core losses with temperature and load, and have low rotor losses. Within the overall iterative loop, another inner loop that cycles only the thermal calculations and employs a simplified model for estimating losses is introduced. The thermal and air-flow analysis models the conduction, radiation, and convection heat transfer and is based on equivalent circuit networks. A computationally efficient FE technique is employed for the electromagnetic field analysis. The combination of algorithms results in ultra-fast processing as the number of outer loop iterations, which include electromagnetic FEA, is minimized. The overall computational time is significantly reduced in comparison with the conventional method, such that the new technique is highly suitable for large scale optimization studies. Example simulation studies and measurements from an integral hp IPM motor are included to support validation.
Keywords :
convection; equivalent circuits; finite element analysis; machine theory; permanent magnet machines; reluctance machines; thermal analysis; PM machines; air-flow analysis model; conduction heat transfer; convection heat transfer; core losses; electric machines; electromagnetic FEA technique; electromagnetic coupling; electromagnetic field analysis; equivalent circuit networks; integral hp IPM motor; large scale optimization studies; losses estimation; low rotor losses; outer loop iterations; radiation heat transfer; synchronous reluctance machines; thermal analysis; ultrafast steady-state multiphysics model; Atmospheric modeling; Computational modeling; Couplings; Electromagnetics; Mathematical model; Thermal analysis; Torque; air-flow problem; coupled electromagnetic; design optimization; electric machine; electromagnetic finite element analysis; equivalent thermal network; multi-physics analysis; thermal;
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2014 IEEE
Conference_Location :
Pittsburgh, PA
DOI :
10.1109/ECCE.2014.6954108