TY - JOUR
T1 - Initial Position Detection and Polarity Identification for IPMSMs Using a Linear Time-Invariant Enhanced Phase-Locked Loop in HFSI
AU - Shi, Xinran
AU - Liu, Jinglin
AU - Gong, Chao
AU - Yin, Jiasheng
N1 - Publisher Copyright:
© 2013 IEEE.
PY - 2025
Y1 - 2025
N2 - This article proposes an improved position sensorless control method for interior permanent magnet synchronous motors (IPMSMs) using high-frequency square-wave injection (HFSI). Conventional HFSI methods obtain the initial position using a quadrature phase-locked loop (QPLL) and then identify the NS polarity through additional pulse voltage injection. This method requires extra signal injection, and the identification process is independent of the initial position estimation process, complicating the system design. To address these issues, a linear time-invariant enhanced phase-locked loop (LTI-EPLL) is introduced to replace the QPLL. The LTI-EPLL has a bidirectional convergence property, enabling it to estimate both the position and the amplitude of the input signal simultaneously. The estimated amplitude corresponds to the high-frequency response current amplitude in the HFSI, with its sign indicating the NS polarity. By using this method, the initial position and NS polarity can be determined simultaneously during HFSI, significantly simplifying the system design process. This method also ensures accurate position estimation, contributing to high-energy efficiency. The proposed LTI-EPLL-based HFSI method is verified through experiments on a 15 kW IPMSM.
AB - This article proposes an improved position sensorless control method for interior permanent magnet synchronous motors (IPMSMs) using high-frequency square-wave injection (HFSI). Conventional HFSI methods obtain the initial position using a quadrature phase-locked loop (QPLL) and then identify the NS polarity through additional pulse voltage injection. This method requires extra signal injection, and the identification process is independent of the initial position estimation process, complicating the system design. To address these issues, a linear time-invariant enhanced phase-locked loop (LTI-EPLL) is introduced to replace the QPLL. The LTI-EPLL has a bidirectional convergence property, enabling it to estimate both the position and the amplitude of the input signal simultaneously. The estimated amplitude corresponds to the high-frequency response current amplitude in the HFSI, with its sign indicating the NS polarity. By using this method, the initial position and NS polarity can be determined simultaneously during HFSI, significantly simplifying the system design process. This method also ensures accurate position estimation, contributing to high-energy efficiency. The proposed LTI-EPLL-based HFSI method is verified through experiments on a 15 kW IPMSM.
KW - Energy efficiency
KW - high-frequency square-wave injection (HFSI)
KW - initial position estimation
KW - interior permanent magnet synchronous motor (IPMSM)
KW - linear time-invariant enhanced phase-locked loop (LTI-EPLL)
KW - NS polarity identification
KW - sensorless control
UR - http://www.scopus.com/inward/record.url?scp=105003681212&partnerID=8YFLogxK
U2 - 10.1109/JESTPE.2024.3488207
DO - 10.1109/JESTPE.2024.3488207
M3 - 文章
AN - SCOPUS:105003681212
SN - 2168-6777
VL - 13
SP - 1844
EP - 1855
JO - IEEE Journal of Emerging and Selected Topics in Power Electronics
JF - IEEE Journal of Emerging and Selected Topics in Power Electronics
IS - 2
ER -