DocumentCode :
3130388
Title :
Design and model-free predictive current control for dual air-gap transverse-flux sensorless permanent magnet brushless direct current motors with low rare earth material
Author :
Yu, H. ; Wang, Z. ; Chuang, H. ; Lin, C.
Author_Institution :
Dept. of Syst. Eng. & Naval Archit., Nat. Taiwan Ocean Univ., Keelung, Taiwan
fYear :
2015
fDate :
11-15 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
Recently, permanent magnet (PM)-brushless direct current motors (BLDCMs) have been widely used in high-performance motor drive applications, thanks to their many attractive advantages, such as higher power and torque density and efficiency, simpler motor assembly and maintenance, lower cost, acoustic noise, and vibration. However, due to cost increase rapidly and restricted exploitation of rare earth material (REM) in PMs, PM-BLDCM design at the same usage quantity of REM under limited resources become more and more important. Many researchers have presented sensorless axial-flux PM-BLDCMs because they have advantages of light-weight and small-dimension, thus they have been widely adopted in high-level servo drives, electric vehicles, and medical assist devices. In addition, model free predictive current control (MFPCC) method has insensitive to the motor parameters different form model base predictive current control (MBPCC). Current was sampled once before switching state of commutation in motor drivers, and the next state could be obtained by a minimum-cost function. It can avoid current surge when switching state. Therefore, a novel slim sensorless axial-flux PM-BLDCM with dual air-gap transverse-flux stator and low REM has designed and manufactured in this sturdy, and the MFPCC combined with a velocity controller is adopted for the proposed dual air-gap transverse-flux sensorless PM-BLDCM with low REM to improve and to achieve better current track and velocity control capability.
Keywords :
DC motor drives; brushless DC motors; commutation; electric current control; magnetic flux; permanent magnet motors; predictive control; sensorless machine control; velocity control; commutation; current track; dual air-gap transverse-flux sensorless permanent magnet brushless direct current motors; dual air-gap transverse-flux stator; model-free predictive current control; motor drivers; rare earth material; slim sensorless axial-flux PM-BLDCM; velocity controller; Air gaps; Brushless DC motors; Magnetic flux; Permanent magnet motors; Solid modeling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
Type :
conf
DOI :
10.1109/INTMAG.2015.7156987
Filename :
7156987
Link To Document :
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