DocumentCode :
1331878
Title :
High Power Density Design of 6-Slot–8-Pole Hybrid Excitation Flux Switching Machine for Hybrid Electric Vehicles
Author :
Sulaiman, Erwan ; Kosaka, Takashi ; Matsui, Nobuyuki
Author_Institution :
Univ. Tun Hussein Onn Malaysia, Johor Bahru, Malaysia
Volume :
47
Issue :
10
fYear :
2011
Firstpage :
4453
Lastpage :
4456
Abstract :
Over the last decade, many automotive companies have been commercializing hybrid electric vehicles (HEVs) as one of candidates for sustainable human life. Some of the recent HEVs employ electric propulsion systems using a combination of reduction gear and interior permanent magnet synchronous motors (IPMSM) operated by relatively high-speed more than 12 000 r/min, resulting in achieving high torque and power densities simultaneously. In the combination, since all rare-earth permanent magnets are embedded in its rotor core, a machine design of high-speed IPMSM tends to be difficult. This is due to a design confliction between keeping enough mechanical strength of the rotor core and bringing out better electromagnetic performances. To cope with this problem, this paper deals with a 6-slot-8-pole hybrid excitation flux switching machine, in which both permanent magnets and wound field excitation are employed as magnetomotive force sources. This machine has all active parts on the stator body and a rugged rotor structure similar to that of switched reluctance motor suitable for high-speed operation. Some design parameter refinements are conducted to the machine in order to elevate maximum torque capability and maximum power density as much as possible under given design requirements and constraints. As a result, it is demonstrated that the machine designed becomes a good candidate for the target HEV drive application.
Keywords :
cores; electric propulsion; hybrid electric vehicles; mechanical strength; permanent magnet motors; reluctance motors; rotors; 6-slot-8-pole hybrid excitation flux switching machine; IPMSM; automotive companies; electric propulsion systems; electromagnetic performances; high power density design; hybrid electric vehicles; interior permanent magnet synchronous motors; magnetomotive force sources; maximum power density; maximum torque capability; mechanical strength; reduction gear; rotor core; switched reluctance motor; Coils; Hybrid electric vehicles; Permanent magnet motors; Rotors; Shape; Torque; Traction motors; Electric traction drive; high-speed motor; hybrid electric vehicles (HEVs); hybrid excitation flux switching machine (HEFSM); permanent magnet (PM); wound field excitation;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2011.2140315
Filename :
6028140
Link To Document :
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