Title :
Finite-Time Reentry Attitude Control Based on Adaptive Multivariable Disturbance Compensation
Author :
Bailing Tian ; Liping Yin ; Hong Wang
Author_Institution :
Sch. of Electr. Eng. & Autom., Tianjin Univ., Tianjin, China
Abstract :
The finite-time tracking control for reusable launch vehicle with unmatched disturbance is investigated. An adaptive-multivariable-disturbance-compensation scheme is proposed to provide the estimation for external disturbances where the bounds of the perturbations are not known. Based on the estimation, a continuous multivariable homogeneity second order sliding mode controller is designed to ensure that the attitude tracking is achieved in finite time. A proof of the finite-time convergence of the closed-loop system under the integrated controller and disturbance observer is derived using the Lyapunov technique. The features of the proposed control scheme are that it does not require any information on the bounds of the disturbance and its gradient except for their existence. At the same time, the finite-time convergence, nominal performance recovery, and chattering alleviation are guaranteed. Finally, some simulation tests are provided to demonstrate the effectiveness of the proposed control scheme.
Keywords :
Lyapunov methods; adaptive control; attitude control; centralised control; closed loop systems; compensation; control system synthesis; convergence; entry, descent and landing (spacecraft); multivariable control systems; observers; variable structure systems; Lyapunov technique; adaptive multivariable disturbance compensation scheme; chattering alleviation; closed loop system; continuous multivariable homogeneity second order sliding mode controller design; disturbance estimation; disturbance observer; finite time attitude tracking control; finite time convergence; finite time reentry attitude control; integrated controller; nominal performance recovery; reusable launch vehicle; Attitude control; Control systems; Convergence; Observers; Robustness; Symmetric matrices; Uncertainty; Adaptive multivariable disturbance observer; Reusable Launch Vehicle; finite time convergence; finite-time convergence; reusable launch vehicle (RLV);
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2015.2442224