Title :
Globally convergent adaptive tracking of spacecraft angular velocity with inertia identification and adaptive linearization
Author :
Sanyal, Amit K. ; Chellappa, Madhusudhan ; Valk, Jean Luc ; Ahmed, Jasim ; Shen, Jinglai ; Bernstein, D.S.
Author_Institution :
Dept. of Aerosp. Eng., Michigan Univ., Ann Arbor, MI, USA
Abstract :
The problem of a rigid body tracking a desired angular velocity trajectory is addressed using adaptive feedback control. An adaptive controller is developed for a planar rotating body tracking a desired angular velocity command. Lyapunov analysis is used to show that tracking is achieved globally. A periodic angular velocity command is then used to identify the inertia parameter. The adaptive controller is implemented on a triaxial attitude control testbed with fan thrusters. A piecewise linear approximation of an observed input nonlinearity is inverted to obtain improved angular velocity tracking and inertia identification. To eliminate residual tracking error, an adaptive algorithm is used for improved feedback linearization. Lyapunov analysis is used to show boundedness of the angular velocity and inertia estimate errors. The approach is validated by numerical simulation.
Keywords :
Lyapunov methods; adaptive control; angular velocity control; attitude control; feedback; inertial systems; linearisation techniques; piecewise linear techniques; Lyapunov analysis; adaptive feedback control; adaptive linearization; adaptive tracking; angular velocity trajectory; fan thrusters; feedback linearization; inertia identification; piecewise linear approximation; rigid body tracking; spacecraft angular velocity; triaxial attitude control; Adaptive algorithm; Adaptive control; Angular velocity; Angular velocity control; Feedback control; Piecewise linear approximation; Programmable control; Space vehicles; Testing; Trajectory;
Conference_Titel :
Decision and Control, 2003. Proceedings. 42nd IEEE Conference on
Print_ISBN :
0-7803-7924-1
DOI :
10.1109/CDC.2003.1273032