Title :
High-performance switching QFT control for large radio telescopes with saturation constraints
Author :
Garcia-Sanz, Mario ; Ranka, Trupti ; Joshi, B.C.
Author_Institution :
EECS Dept., Case Western Reserve Univ., Cleveland, OH, USA
Abstract :
This paper presents a novel, switching quantitative-feedback-theory (QFT) control system design methodology with a nonlinear model-based internal loop, and applies it to control a large radio telescope with saturation constraints. The dynamics of servo-systems of large radio telescopes typically vary according to azimuth and elevation angles, temperature, friction, speed and acceleration, leading to nonlinearities and plant parameter uncertainty. The new controller design methodology combines robust QFT techniques with nonlinear switching strategies and a nonlinear model-based inner loop, going beyond the classical linear limitations of conventional controllers. As shown in the paper, high performance for robust reference tracking and robust disturbance rejection is achieved, even under saturation constraints in the actuators. The controller performance is demonstrated by using realistic/simplified rigid body model of an existing extra-large radio telescope.
Keywords :
control system synthesis; feedback; nonlinear control systems; radiotelescopes; servomechanisms; acceleration; azimuth angle; control system design methodology; elevation angle; friction; nonlinear model-based internal loop; nonlinear switching strategy; plant parameter uncertainty; radio telescope; robust disturbance rejection; robust reference tracking; saturation constraint; servo system dynamics; speed; switching QFT control; switching quantitative-feedback-theory; temperature; QFT control; large telescope control; nonlinear switching control; robust control; saturation constraints; servo-systems;
Conference_Titel :
Aerospace and Electronics Conference (NAECON), 2012 IEEE National
Conference_Location :
Dayton, OH
Print_ISBN :
978-1-4673-2791-6
DOI :
10.1109/NAECON.2012.6531034