TY - GEN
T1 - Robust aeroservoelastic stability margin analysis using the structured singular value
AU - Dai, Yuting
AU - Wu, Zhigang
AU - Yang, Chao
PY - 2010
Y1 - 2010
N2 - A new framework based on structured singular value (μ) analysis is introduced to evaluate the robust stability margin of an SISO aeroservoelastic system with the structural and actuator uncertainties considered. The essential of the proposed method is to extend the nominal gain margin concept based on open-loop analysis to robust stability margin by introducing an extra uncertainty. This newly developed stability margin framework is performed on a large aspect ratio wing model with GVT data to evaluate the considered uncertainties. Three main results are obtained from the current work: (1) The measurement of robust stability margin, compatible with the classical nominal margin evaluation, is practical to associate the nominal aeroservoelastic system and the perturbed one. (2)The results show that the aircraft may go critically unstable with only 0.9% frequency variations, though gain margin of the nominal aeroservoelastic system exceeds 6dB. (3) The sensitivity of gain margin is defined and calculated numerically to decide the most important uncertainties affecting the stability margin. The result shows that the damping ratio of the elastic structure can be omitted to save computation time of μ because of its relative small sensitivity.
AB - A new framework based on structured singular value (μ) analysis is introduced to evaluate the robust stability margin of an SISO aeroservoelastic system with the structural and actuator uncertainties considered. The essential of the proposed method is to extend the nominal gain margin concept based on open-loop analysis to robust stability margin by introducing an extra uncertainty. This newly developed stability margin framework is performed on a large aspect ratio wing model with GVT data to evaluate the considered uncertainties. Three main results are obtained from the current work: (1) The measurement of robust stability margin, compatible with the classical nominal margin evaluation, is practical to associate the nominal aeroservoelastic system and the perturbed one. (2)The results show that the aircraft may go critically unstable with only 0.9% frequency variations, though gain margin of the nominal aeroservoelastic system exceeds 6dB. (3) The sensitivity of gain margin is defined and calculated numerically to decide the most important uncertainties affecting the stability margin. The result shows that the damping ratio of the elastic structure can be omitted to save computation time of μ because of its relative small sensitivity.
UR - https://www.scopus.com/pages/publications/79952172925
U2 - 10.1109/ISSCAA.2010.5633026
DO - 10.1109/ISSCAA.2010.5633026
M3 - 会议稿件
AN - SCOPUS:79952172925
SN - 9781424460441
T3 - ISSCAA2010 - 3rd International Symposium on Systems and Control in Aeronautics and Astronautics
SP - 643
EP - 648
BT - ISSCAA2010 - 3rd International Symposium on Systems and Control in Aeronautics and Astronautics
T2 - 3rd International Symposium on Systems and Control in Aeronautics and Astronautics, ISSCAA2010
Y2 - 8 June 2010 through 10 June 2010
ER -