DocumentCode :
3390102
Title :
Active flutter control of transonic flapped wing based on CFD/CSD coupling
Author :
Zijian Zhang ; Min Xu ; Shilu Chen
Author_Institution :
Coll. of Astronaut., Northwest Polytech. Univ., Xi´an
fYear :
2008
fDate :
10-12 Oct. 2008
Firstpage :
430
Lastpage :
435
Abstract :
Transonic unsteady aerodynamics model can be obtained by CFD/CSD coupling computation, but it is disadvantaged to analyze and integrate ASE problems because of the high order of model. The high order ASE model is dealt with order reduction technique using system differentiate and analyses and balanced truncation in this paper, and integrate with the low order model. Outlines of this paper can be generalized as follow: 1) the unsteady aerodynamics reduced-order model (ROM) is gained by applying Volterra series theory, and the aeroservoelasticity (ASE) model is gained by coupling configuration dynamics and servo dynamics; 2) a lower ASE reduced-order model is obtained using the balanced truncation method; 3) based on ASE reduced-order model a mixed sensitivity Hinfin controller is designed for flutter suppression. At last, in a typical BACT system, simulations of model reduction and active flutter suppression controller designing are given. The result shows that the ASE reduced-order model based on ROM can reflect flutter characteristic of practical system factually, and it has lower order than CFD/CSD coupling model, while the low-order robust controller designed based on balanced truncated ASE model can apply to practical system effectually, and increased the flutter speed by 36%.
Keywords :
Hinfin control; Volterra series; aerodynamics; aircraft control; computational fluid dynamics; reduced order systems; transonic flow; CFD-CSD coupling; Volterra series theory; active flutter control; aeroservoelasticity model; balanced truncation method; configuration dynamics; mixed sensitivity Hinfin controller; order reduction technique; servo dynamics; transonic flapped wing; transonic unsteady aerodynamics model; unsteady aerodynamics reduced-order model; Aerodynamics; Computational efficiency; Computational fluid dynamics; Frequency domain analysis; Genetic algorithms; MIMO; Navier-Stokes equations; Neural networks; Read only memory; Reduced order systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
System Simulation and Scientific Computing, 2008. ICSC 2008. Asia Simulation Conference - 7th International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-1786-5
Electronic_ISBN :
978-1-4244-1787-2
Type :
conf
DOI :
10.1109/ASC-ICSC.2008.4675399
Filename :
4675399
Link To Document :
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