DocumentCode :
1934713
Title :
Flux-barrier design technique for improving torque performance of interior permanent magnet synchronous motor for driving compressor in HEV
Author :
Fang, Liang ; Hong, Jung-Pyo
Author_Institution :
Dept. of Automotive Eng., Hanyang Univ., Seoul, South Korea
fYear :
2009
fDate :
7-10 Sept. 2009
Firstpage :
1486
Lastpage :
1490
Abstract :
This paper presents flexible flux-barrier designs in an interior permanent magnet synchronous motor (IPMSM) for driving compressor in hybrid electrical vehicle. A conventional single-layer IPMSM model, a popular double-layer IPMSM model and a proposed novel double-barrier IPMSM model are built and optimized for improving torque performance by reducing cogging torque and torque ripple. The novel double-barrier IPMSM has beneficial attributes of simplest single-layer PM and flexible double pairs of flux-barriers in IPM rotor design. The optimal geometries of flux-barriers in each IPMSM designs are determined by response surface methodology (RSM). The cogging torque and torque ripple of IPMSM model are calculated using finite element analysis (FEA), and confirmed by test. Finally, the effectivity of the novel double-barrier IPMSM design on torque performance improvement is well proved, and its advantages are emphasized.
Keywords :
compressors; finite element analysis; hybrid electric vehicles; machine theory; permanent magnet motors; response surface methodology; rotors; synchronous motors; torque; driving compressor; finite element analysis; flux-barrier design technique; hybrid electrical vehicle; interior permanent magnet synchronous motor; response surface methodology; rotor design; torque performance; torque ripple; Automotive engineering; Finite element methods; Forging; Geometry; Hybrid electric vehicles; Magnetic analysis; Permanent magnet motors; Response surface methodology; Testing; Torque; FEA; IPMSM; RSM; cogging torque and torque ripple; single-layer/double-layer/novel double-barrier IPMSM deisgn;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Vehicle Power and Propulsion Conference, 2009. VPPC '09. IEEE
Conference_Location :
Dearborn, MI
Print_ISBN :
978-1-4244-2600-3
Electronic_ISBN :
978-1-4244-2601-0
Type :
conf
DOI :
10.1109/VPPC.2009.5289547
Filename :
5289547
Link To Document :
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