Xu Xiangbo, Chen Shao
School of Technology, Beijing Forestry University, No.35 Tsinghua East Road, Haidian District, Beijing 100083, China.
Sensors (Basel). 2015 Aug 31;15(9):21876-97. doi: 10.3390/s150921876.
Harmonic vibrations of high-speed rotors in momentum exchange devices are primary disturbances for attitude control of spacecraft. Active magnetic bearings (AMBs), offering the ability to control the AMB-rotor dynamic behaviors, are preferred in high-precision and micro-vibration applications, such as high-solution Earth observation satellites. However, undesirable harmonic displacements, currents, and vibrations also occur in the AMB-rotor system owing to the mixed rotor imbalances and sensor runout. To compensate the rotor imbalances and to suppress the harmonic vibrations, two control methods are presented. Firstly, a four degrees-of-freedom AMB-rotor model with the static imbalance, dynamic imbalance, and the sensor runout are described. Next, a synchronous current reduction approach with a variable-phase notch feedback is proposed, so that the rotor imbalances can be identified on-line through the analysis of the synchronous displacement relationships of the geometric, inertial, and rotational axes of the rotor. Then, the identified rotor imbalances, which can be represented at two prescribed balancing planes of the rotor, are compensated by discrete add-on weights whose masses are calculated in the vector form. Finally, a repetitive control algorithm is utilized to suppress the residual harmonic vibrations. The proposed field balancing and harmonic vibration suppression strategies are verified by simulations and experiments performed on a control moment gyro test rig with a rigid AMB-rotor system. Compared with existing methods, the proposed strategies do not require trial weights or an accurate model of the AMB-rotor system. Moreover, the harmonic displacements, currents, and vibrations can be well-attenuated simultaneously.
动量交换装置中高速转子的谐波振动是航天器姿态控制的主要干扰源。主动磁轴承(AMB)能够控制AMB-转子的动态行为,在高精度和微振动应用中更受青睐,例如高分辨率地球观测卫星。然而,由于转子不平衡和传感器跳动的综合影响,AMB-转子系统中也会出现不良的谐波位移、电流和振动。为了补偿转子不平衡并抑制谐波振动,提出了两种控制方法。首先,描述了一个具有静态不平衡、动态不平衡和传感器跳动的四自由度AMB-转子模型。其次,提出了一种具有可变相位陷波反馈的同步电流降低方法,通过分析转子几何轴、惯性轴和旋转轴的同步位移关系,可以在线识别转子不平衡。然后,通过以矢量形式计算质量的离散附加配重,对在转子的两个规定平衡面上表示的已识别转子不平衡进行补偿。最后,利用重复控制算法抑制残余谐波振动。通过在具有刚性AMB-转子系统的控制力矩陀螺试验台上进行的仿真和实验,验证了所提出的现场平衡和谐波振动抑制策略。与现有方法相比,所提出的策略不需要试重或AMB-转子系统的精确模型。此外,谐波位移、电流和振动可以同时得到很好的衰减。