TY - GEN
T1 - A robust vibration suppression controller design for space flexible structures
AU - Zhang, Long
AU - Duan, Guangren
PY - 2012
Y1 - 2012
N2 - Being an active vibration suppression method, the positive position feedback (PPF) control has attracted great attentions to damp out the flexible space structure vibrations which make adverse impacts for spacecraft attitude pointing precision. But the robustness with respect to the inaccurate structure modal frequencies is seldom considered in PPF controller designing. In this paper, robust asymptotically stability criterions are proposed to deal with the inaccurate structure modal frequencies. According to these criterions, a robust PPF controller design method is proposed. The robust PPF controller is derived from solving a group of LMIs with adjustable parameters. These parameters describe the robustness with respect to the structure modal frequency variations and convergence velocity of the vibration modes, respectively. Properly setting these parameters can achieve a tradeoff between the robustness for the modal frequency variations and the damping performances of the structure oscillations. Finally, a simulation is presented to illustrate the effectiveness of the proposed robust PPF controller design method.
AB - Being an active vibration suppression method, the positive position feedback (PPF) control has attracted great attentions to damp out the flexible space structure vibrations which make adverse impacts for spacecraft attitude pointing precision. But the robustness with respect to the inaccurate structure modal frequencies is seldom considered in PPF controller designing. In this paper, robust asymptotically stability criterions are proposed to deal with the inaccurate structure modal frequencies. According to these criterions, a robust PPF controller design method is proposed. The robust PPF controller is derived from solving a group of LMIs with adjustable parameters. These parameters describe the robustness with respect to the structure modal frequency variations and convergence velocity of the vibration modes, respectively. Properly setting these parameters can achieve a tradeoff between the robustness for the modal frequency variations and the damping performances of the structure oscillations. Finally, a simulation is presented to illustrate the effectiveness of the proposed robust PPF controller design method.
KW - active vibration suppression
KW - flexible structures
KW - positive position feedback
KW - robust control
UR - https://www.scopus.com/pages/publications/84866666356
U2 - 10.1109/CCDC.2012.6244641
DO - 10.1109/CCDC.2012.6244641
M3 - 会议稿件
AN - SCOPUS:84866666356
SN - 9781457720727
T3 - Proceedings of the 2012 24th Chinese Control and Decision Conference, CCDC 2012
SP - 4020
EP - 4024
BT - Proceedings of the 2012 24th Chinese Control and Decision Conference, CCDC 2012
T2 - 2012 24th Chinese Control and Decision Conference, CCDC 2012
Y2 - 23 May 2012 through 25 May 2012
ER -