DocumentCode :
420319
Title :
Fuzzy gain scheduling using output feedback for flutter suppression in unmanned aerial vehicles with Piezoelectric materials
Author :
Applebaum, E. ; Ben-Asher, J.
Author_Institution :
Dept. of Aerosp. Eng., Technion-Israel Inst. of Technol., Haifa, Israel
Volume :
1
fYear :
2004
fDate :
27-30 June 2004
Firstpage :
242
Abstract :
This research addresses the modeling, analysis, and control of flutter, in a high order nonminimum phase aeroservoelastic UAV system with Piezoelectric single servo input. Flutter suppression requires output feedback supplied by four accelerometer sensor readings. Linear time invariant plant models vary with the exogenous parameter, velocity. The fuzzy gain scheduling control strategy, in conjunction with Linear Quadratic Gaussian regulation, with prescribed degree of stability, at nominal operating conditions, produces interpolated controller and observer gains over a uniform grid of operating velocities. "Worst case" highest velocity eigenvalues are used for stabilization. Simulations of augmented closed-loop systems show settling times ranging between 0.2 s and 0.4 s. Control effort is uniform and converges to 0 rad within 0.1 s. The end result is a robust global controller that suppresses flutter over the entire velocity envelope.
Keywords :
accelerometers; aerodynamics; aerospace control; closed loop systems; convergence; eigenvalues and eigenfunctions; fuzzy control; fuzzy set theory; interpolation; linear quadratic Gaussian control; model reference adaptive control systems; observers; piezoelectric materials; remotely operated vehicles; robust control; servomechanisms; state feedback; 0.2 to 0.4 s; UAV system; accelerometer sensor; augmented closed loop systems; flutter analysis; flutter control; flutter modeling; flutter suppression; fuzzy gain scheduling; interpolated controller; linear quadratic Gaussian regulation; linear time invariant plant models; nonminimum phase aeroservoelastic system; observer gain; output feedback; piezoelectric materials; piezoelectric single servo input; robust global controller; stability; unmanned aerial vehicles; worst case highest velocity eigenvalues; Accelerometers; Control system analysis; Eigenvalues and eigenfunctions; Fuzzy control; Output feedback; Piezoelectric materials; Servomechanisms; Stability; Unmanned aerial vehicles; Velocity control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Information, 2004. Processing NAFIPS '04. IEEE Annual Meeting of the
Print_ISBN :
0-7803-8376-1
Type :
conf
DOI :
10.1109/NAFIPS.2004.1336285
Filename :
1336285
Link To Document :
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