TY - JOUR
T1 - Dynamics Modeling and Measurement of the Microvibrations for a Magnetically Suspended Flywheel
AU - Peng, Cong
AU - Fang, Jiancheng
AU - Cui, Peiling
N1 - Publisher Copyright:
© 2015 IEEE.
PY - 2015/12
Y1 - 2015/12
N2 - Microvibrations produced by high-speed flywheels can highly degrade the performance of precision instruments on satellites. Magnetically suspended flywheel (MSFW) is a promising attitude actuator for the ultraprecision satellites due to the convenient and effective microvibration suppression algorithm. The comprehensive microvibration characteristics of an MSFW are important for designing the microvibration suppression algorithm. This paper focuses on studying the microvibration characteristics of an MSFW with a specific magnetic bearing structure. A complete microvibration dynamical model of the MSFW, including the rotor dynamics, the magnetic bearing control system, and the microvibration sources, is developed. Simulations are performed to predict the microvibration characteristics according to the proposed theoretical model and experimental tests are conducted to measure the comprehensive microvibrations of the practical MSFW. Simulation and experimental results are compared to prove the validity of the proposed microvibration dynamical model. Thus, the proposed theoretical model can predict the microvibration characteristics of the MSFW and can be used to design the microvibration suppression algorithm in the future work.
AB - Microvibrations produced by high-speed flywheels can highly degrade the performance of precision instruments on satellites. Magnetically suspended flywheel (MSFW) is a promising attitude actuator for the ultraprecision satellites due to the convenient and effective microvibration suppression algorithm. The comprehensive microvibration characteristics of an MSFW are important for designing the microvibration suppression algorithm. This paper focuses on studying the microvibration characteristics of an MSFW with a specific magnetic bearing structure. A complete microvibration dynamical model of the MSFW, including the rotor dynamics, the magnetic bearing control system, and the microvibration sources, is developed. Simulations are performed to predict the microvibration characteristics according to the proposed theoretical model and experimental tests are conducted to measure the comprehensive microvibrations of the practical MSFW. Simulation and experimental results are compared to prove the validity of the proposed microvibration dynamical model. Thus, the proposed theoretical model can predict the microvibration characteristics of the MSFW and can be used to design the microvibration suppression algorithm in the future work.
KW - Active magnetic bearing
KW - dynamics modeling
KW - magnetically suspended flywheel (MSFW)
KW - microvibration
KW - microvibration measurement.
UR - https://www.scopus.com/pages/publications/84938804773
U2 - 10.1109/TIM.2015.2459491
DO - 10.1109/TIM.2015.2459491
M3 - 文章
AN - SCOPUS:84938804773
SN - 0018-9456
VL - 64
SP - 3239
EP - 3252
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
IS - 12
M1 - 7182333
ER -