LPV Modeling and Control for Active Flutter Suppression of a Smart Airfoil
Author(s) -
Ali M.H. Al-Hajjar,
Ali Khudhair AlJiboory,
Sean ShanMin Swei,
Guoming Zhu
Publication year - 2018
Publication title -
aiaa guidance, navigation and control conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2018-1342
Subject(s) - airfoil , control theory (sociology) , flutter , airspeed , gain scheduling , aeroelasticity , scheduling (production processes) , computer science , engineering , aerodynamics , control system , aerospace engineering , control (management) , artificial intelligence , operations management , electrical engineering
In this paper, a novel technique of linear parameter varying (LPV) modeling and control of a smart airfoil for active flutter suppression is proposed, where the smart airfoil has a groove along its chord and contains a moving mass that is used to control the airfoil pitching and plunging motions. The new LPV modeling technique is proposed that uses mass position as a scheduling parameter to describe the physical constraint of the moving mass, in addition the hard constraint at the boundaries is realized by proper selection of the parameter varying function. Therefore, the position of the moving mass and the free stream airspeed are considered the scheduling parameters in the study. A state-feedback based LPV gain-scheduling controller with guaranteed H∞ performance is presented by utilizing the dynamics of the moving mass as scheduling parameter at a given airspeed. The numerical simulations demonstrate the effectiveness of the proposed LPV control architecture by significantly improving the performance while reducing the control effort.
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