TY - JOUR
T1 - Sensorless Control of Multithree-Phase Permanent Magnet Synchronous Generator in Distributed Architecture
AU - Lyu, Mingcheng
AU - Ding, Yutao
AU - Liang, Ge
AU - Wang, Fengxiang
AU - Huang, Sheng
AU - Liao, Wu
AU - Wu, Xuan
AU - Ouyang, Xiaoping
AU - Huang, Shoudao
N1 - Publisher Copyright:
© 1982-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - The distributed architecture of a multithree-phase permanent magnet synchronous generator (MTP-PMSG) is extremely compact and requires interconnecting communication cables to transmit position information for decoupling control, significantly reducing fault tolerance. Moreover, sensorless control methods employed in distributed architecture suffer from significant position errors under power imbalance across windings. To address these issues, this article proposes a distributed sensorless control method for MTP-PMSG within the distributed architecture, which improves the accuracy of position estimation in both balanced and imbalanced power scenarios. First, the mathematical model of MTP-PMSG is derived from the distributed architecture without interconnection, serving as the foundation for the distributed sensorless control strategy. Then, an adaptive selective harmonic elimination filter with harmonic extractors is proposed to construct the distributed sensorless control, which overcomes the limitations of conventional sensorless strategies. The proposed approach effectively suppresses harmonic and dc components, compensates for phase delay, and mitigates back electromotive force (BEMF) attenuation, thereby enhancing the accuracy of rotor position estimation. Finally, the proposed method is experimentally validated on a dual three-phase PMSG platform, demonstrating improved rotor position estimation accuracy, enhanced dynamic response, and significantly reduced BEMF total harmonic distortion under both balanced and imbalanced operating conditions.
AB - The distributed architecture of a multithree-phase permanent magnet synchronous generator (MTP-PMSG) is extremely compact and requires interconnecting communication cables to transmit position information for decoupling control, significantly reducing fault tolerance. Moreover, sensorless control methods employed in distributed architecture suffer from significant position errors under power imbalance across windings. To address these issues, this article proposes a distributed sensorless control method for MTP-PMSG within the distributed architecture, which improves the accuracy of position estimation in both balanced and imbalanced power scenarios. First, the mathematical model of MTP-PMSG is derived from the distributed architecture without interconnection, serving as the foundation for the distributed sensorless control strategy. Then, an adaptive selective harmonic elimination filter with harmonic extractors is proposed to construct the distributed sensorless control, which overcomes the limitations of conventional sensorless strategies. The proposed approach effectively suppresses harmonic and dc components, compensates for phase delay, and mitigates back electromotive force (BEMF) attenuation, thereby enhancing the accuracy of rotor position estimation. Finally, the proposed method is experimentally validated on a dual three-phase PMSG platform, demonstrating improved rotor position estimation accuracy, enhanced dynamic response, and significantly reduced BEMF total harmonic distortion under both balanced and imbalanced operating conditions.
KW - Adaptive selective harmonic elimination filter (ASHEF)
KW - distributed architecture control
KW - multithree-phase permanent magnet synchronous generator (MTP-PMSG)
KW - sensorless control
UR - https://www.scopus.com/pages/publications/105019598297
U2 - 10.1109/TIE.2025.3594431
DO - 10.1109/TIE.2025.3594431
M3 - 文章
AN - SCOPUS:105019598297
SN - 0278-0046
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
ER -