Title :
Design of dynamic dissipative compensators for flexible space structures
Author :
Joshi, S.M. ; Maghami, P.G. ; Kelkar, A.G.
Author_Institution :
NASA Langley Res. Center, Hampton, VA, USA
Abstract :
Control system design is considered for attitude control and vibration suppression of flexible space structures. The problem addressed is that of controlling both the zero-frequency rigid-body modes and the elastic modes. Model-based compensators, which employ observers tuned to the plant parameters, are first investigated. Such compensators are shown to generally exhibit high sensitivity to the knowledge of the parameters, especially the elastic mode frequencies. To overcome this problem, a class of dynamic dissipative compensators is next proposed which robustly stabilize the plant in the presence of unmodeled dynamics and parametric uncertainties. An analytical proof of robust stability is given, and a method of implementing the controller as a strictly proper compensator is described. Methods of designing such controllers to obtain optimal performance and robust stability are presented. Numerical and experimental results of application of the methods are presented, which indicate that dynamic dissipative controllers can simultaneously provide excellent performance and robustness.<>
Keywords :
attitude control; compensation; control system synthesis; flexible structures; observers; robust control; vibration control; attitude control; control system design; dynamic dissipative compensators; elastic modes; flexible space structures; model-based compensators; observers; parametric uncertainties; robust stability; unmodeled dynamics; vibration suppression; zero-frequency rigid-body modes; Aerodynamics; Control systems; Damping; Frequency; Mathematical model; NASA; Observers; Robust stability; Space vehicles; Vibration control;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on