DocumentCode :
114359
Title :
Controlling flutter for nonlinear panels in subsonic flows via structural velocity feedback
Author :
Lasiecka, Irena ; Webster, Justin T.
Author_Institution :
Dept. of Math. Sci., Univ. of Memphis, Memphis, TN, USA
fYear :
2014
fDate :
15-17 Dec. 2014
Firstpage :
577
Lastpage :
582
Abstract :
Mechanical control of flutter for a thin panel immersed in an inviscid flow is considered. The model arises in aeroelasticity and comprises the interaction between a clamped von Karman plate a surrounding potential flow of gas. Recent results show that the plate dynamics of the model converge to a global compact attracting set of finite dimension [6]. This result was obtained in the absence of mechanical damping of any type. Here, we incorporate a sufficiently large velocity feedback control applied to the structure to show that the full flow-plate system exhibits strong convergence to a stationary state (when flows are subsonic and a “good” energy identity is available). Our method is based on first showing the desired convergence properties when the plate dynamics exhibit additional regularity. We then show a dichotomy for the plate dynamics: they are either asymptotically regular or the plate velocities decay uniformly exponentially. In the case when no additional plate regularity is available, we utilize an approximation by smooth initial data; this requires propagation of initial regularity on the infinite time horizon. The final result complements results previous obtained (for this model and similar models), as we show that there is a strong convergence for the entire dynamics and that the limiting behavior of the flow-plate system is, in fact, stationary. Physically, this implies that flutter (a non-static end behavior) can be eliminated by a velocity feedback control in subsonic flows.
Keywords :
convergence; elasticity; feedback; infinite horizon; mechanical variables control; plates (structures); structural panels; subsonic flow; velocity control; aeroelasticity; clamped von Karman plate; convergence properties; full flow-plate system; infinite time horizon; inviscid flow; mechanical flutter control; nonlinear panels; plate dynamics; plate regularity; structural velocity feedback; subsonic flows; thin panel; velocity feedback control; Aerodynamics; Convergence; Damping; Equations; Feedback control; Mathematical model; Trajectory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control (CDC), 2014 IEEE 53rd Annual Conference on
Conference_Location :
Los Angeles, CA
Print_ISBN :
978-1-4799-7746-8
Type :
conf
DOI :
10.1109/CDC.2014.7039443
Filename :
7039443
Link To Document :
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