DocumentCode :
2655442
Title :
Oscillation mitigation for sliding-mode observers in sensorless control of IPMSMs
Author :
Zhao, Yue ; Qiao, Wei ; Wu, Long
Author_Institution :
Dept. of Electr. Eng., Univ. of Nebraska-Lincoln, Lincoln, NE, USA
fYear :
2012
fDate :
18-20 June 2012
Firstpage :
1
Lastpage :
6
Abstract :
Back electromagnetic force (EMF)-based methods are commonly used for sensorless control of interior permanent magnet synchronous machines (IPMSMs) in medium and high speed range. The feature of high robustness to system structure and parameter uncertainties makes the sliding-mode observer (SMO) a promising candidate for rotor position estimation. In a practical drive system, because of physical limitations, e.g., sampling frequency and computational resource, it is challenging to obtain a perfect sinusoidal waveform for the back EMF by a SMO, especially in high speed range. As a result, the rotor position obtained from the estimated back EMF by using the traditional inverse tangent method will have nonnegligible oscillations. This paper proposes a novel algorithm, which uses the estimated rotor speed as a feedback signal with the conventional back EMF-based inverse tangent method to extract the rotor position. The proposed algorithm can effectively mitigate the oscillation and improve the dynamic performance of the SMO for rotor position estimation. The proposed algorithm is validated by simulations in MATLAB Simulink as well as experiments on a high-power IPMSM drive system.
Keywords :
drives; electromagnetic forces; observers; permanent magnet machines; rotors; sensorless machine control; synchronous machines; variable structure systems; MATLAB Simulink; back EMF; back electromagnetic force-based methods; computational resource; dynamic performance; feedback signal; high-power IPMSM drive system; interior permanent magnet synchronous machines; nonnegligible oscillations; oscillation mitigation; parameter uncertainties; perfect sinusoidal waveform; physical limitations; practical drive system; rotor position estimation; rotor speed; sampling frequency; sensorless control; sliding-mode observers; system structure; traditional inverse tangent method; Observers; Oscillators; Position measurement; Pulse width modulation; Rotors; Sensorless control; Interior permanent magnet synchrnous machine (IPMSM); oscillation mitigation; sensorless control; sliding-mode observer (SMO); speed feedback;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Transportation Electrification Conference and Expo (ITEC), 2012 IEEE
Conference_Location :
Dearborn, MI
Print_ISBN :
978-1-4673-1407-7
Electronic_ISBN :
978-1-4673-1406-0
Type :
conf
DOI :
10.1109/ITEC.2012.6243496
Filename :
6243496
Link To Document :
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