TY - JOUR
T1 - A Time-Delay Compensation Method for IPMSM Hybrid Sensorless Drives in Rail Transit Applications
AU - Zhang, Hang
AU - Liu, Weiguo
AU - Chen, Zhe
AU - Mao, Shuai
AU - Meng, Tao
AU - Peng, Jichang
AU - Jiao, Ningfei
N1 - Publisher Copyright:
© 1982-2012 IEEE.
PY - 2019/9
Y1 - 2019/9
N2 - This paper proposes a hybrid sensorless control strategy for rail transit application employing interior permanent magnet synchronous machine (IPMSM), which works under low switching frequency. Due to a long system time delay, the convergence rate of estimated position in the sensorless dynamic region is reduced. As the speed increases, the $dq$ axes currents coupling is more severe, and deteriorates the control performance. In order to solve these problems, the analysis of time-delay effect on the IPMSM sensorless drives is first derived. Then, using $q$-axis current error, a global time-delay compensation method is designed to eliminate the lag angle of estimated position. Furthermore, the effect of this compensation on audible noise reduction is also analyzed. Through a phase-locked loop, the hybrid estimated position is obtained from a normalized position error. Finally, a 3.7-kW IPMSM is tested to verify the feasibility of the proposed sensorless method.
AB - This paper proposes a hybrid sensorless control strategy for rail transit application employing interior permanent magnet synchronous machine (IPMSM), which works under low switching frequency. Due to a long system time delay, the convergence rate of estimated position in the sensorless dynamic region is reduced. As the speed increases, the $dq$ axes currents coupling is more severe, and deteriorates the control performance. In order to solve these problems, the analysis of time-delay effect on the IPMSM sensorless drives is first derived. Then, using $q$-axis current error, a global time-delay compensation method is designed to eliminate the lag angle of estimated position. Furthermore, the effect of this compensation on audible noise reduction is also analyzed. Through a phase-locked loop, the hybrid estimated position is obtained from a normalized position error. Finally, a 3.7-kW IPMSM is tested to verify the feasibility of the proposed sensorless method.
KW - Dynamic region
KW - hybrid sensorless control
KW - interior permanent magnet synchronous machine (IPMSM)
KW - low switching frequency
KW - time-delay compensation
UR - http://www.scopus.com/inward/record.url?scp=85056324351&partnerID=8YFLogxK
U2 - 10.1109/TIE.2018.2879288
DO - 10.1109/TIE.2018.2879288
M3 - 文章
AN - SCOPUS:85056324351
SN - 0278-0046
VL - 66
SP - 6715
EP - 6726
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
IS - 9
M1 - 8526527
ER -