TY - JOUR
T1 - High-Precision Field Dynamic Balancing for High-Speed AMB-Rotor Considering Unbalanced Magnetic Pull
AU - Wang, Kun
AU - Ge, Yucheng
AU - Zhou, Jinxiang
AU - Zheng, Shiqiang
AU - Dong, Baotian
AU - Wang, Can
N1 - Publisher Copyright:
© 2025 IEEE. All rights reserved,
PY - 2026/4/1
Y1 - 2026/4/1
N2 - Active magnetic bearings (AMBs) are developed aiming at higher speed and lower vibration, which imposes improvement of rotor dynamic balancing. Field dynamic balancing based on system synchronous response for rotor unbalance is widely used for AMB-rotors, but its precision can be affected by unbalanced magnetic pull (UMP) since it accounts for an obvious part of the AMB synchronous force during balancing process. Consequently, a high-precision field dynamic balancing method considering UMP is proposed to mitigate the adverse effect of UMP. First, the dynamic model of AMB-rotor system considering UMP is established, then the difference between the system response of rotor unbalance and UMP is analyzed in the autocentering control mode. Second, based on the difference analysis, a UMP separation method is used at two rotational speeds to calculate UMP and extract corresponding AMB compensation current component. Hence, the accurate correction masses can be calculated according to the equivalent relationship between the residual unbalance and corresponding AMB current. Finally, experiments are carried out on a turbomolecular pump prototype to verify the effectiveness of the method. The experimental results demonstrate that the proposed method achieves higher precision and lower vibration at operating speed.
AB - Active magnetic bearings (AMBs) are developed aiming at higher speed and lower vibration, which imposes improvement of rotor dynamic balancing. Field dynamic balancing based on system synchronous response for rotor unbalance is widely used for AMB-rotors, but its precision can be affected by unbalanced magnetic pull (UMP) since it accounts for an obvious part of the AMB synchronous force during balancing process. Consequently, a high-precision field dynamic balancing method considering UMP is proposed to mitigate the adverse effect of UMP. First, the dynamic model of AMB-rotor system considering UMP is established, then the difference between the system response of rotor unbalance and UMP is analyzed in the autocentering control mode. Second, based on the difference analysis, a UMP separation method is used at two rotational speeds to calculate UMP and extract corresponding AMB compensation current component. Hence, the accurate correction masses can be calculated according to the equivalent relationship between the residual unbalance and corresponding AMB current. Finally, experiments are carried out on a turbomolecular pump prototype to verify the effectiveness of the method. The experimental results demonstrate that the proposed method achieves higher precision and lower vibration at operating speed.
KW - Active magnetic bearing (AMB)
KW - field dynamic balancing
KW - high-speed rotor
KW - unbalanced magnetic pull (UMP)
UR - https://www.scopus.com/pages/publications/105015854124
U2 - 10.1109/TMECH.2025.3603049
DO - 10.1109/TMECH.2025.3603049
M3 - 文章
AN - SCOPUS:105015854124
SN - 1083-4435
VL - 31
SP - 1324
EP - 1333
JO - IEEE/ASME Transactions on Mechatronics
JF - IEEE/ASME Transactions on Mechatronics
IS - 2
ER -