DocumentCode
3218756
Title
Adaptive fault-tolerant controller for satellite proximity operations with finite-time convergence
Author
Hongyang Dong ; Qinglei Hu ; Guangfu Ma
Author_Institution
Dept. of Control Sci. & Eng., Harbin Inst. of Technol., Harbin, China
fYear
2015
fDate
23-25 May 2015
Firstpage
3162
Lastpage
3167
Abstract
Study results of developing control system for spacecraft formation proximity operations between a target and a chaser are presented. In particular, a coupled model using dual quaternion is employed to describe the proximity problem of spacecraft formation, and a nonlinear adaptive fault-tolerant feedback control law is developed to enable the chaser spacecraft to track the position and attitude of the target even though its actuator occurs fault. Multiple-task capability of the proposed control system is further demonstrated in the presence of disturbances and parametric uncertainties as well. In addition, the practical finite-time stability feature of the closed-loop system is guaranteed theoretically under the designed control law. Numerical simulation of the proposed method is presented to demonstrate the advantages with respect to interference suppression, fast tracking, fault tolerant and practical finite-time stability.
Keywords
adaptive control; artificial satellites; attitude control; closed loop systems; control system synthesis; convergence; fault tolerant control; feedback; nonlinear control systems; number theory; position control; stability; uncertain systems; actuator; chaser spacecraft; closed-loop system; control law design; control system development; coupled model; disturbances; dual quaternion; fast tracking; finite-time convergence; finite-time stability feature; interference suppression; multiple-task capability; nonlinear adaptive fault-tolerant feedback control law; numerical simulation; parametric uncertainty; proximity problem; satellite proximity operation; spacecraft formation proximity operation; target attitude tracking; target position tracking; Actuators; Attitude control; Couplings; Fault tolerance; Fault tolerant systems; Quaternions; Space vehicles; Adaptive Control; Dual Quaternion; Fault Tolerant Control; Finite Time; Spacecraft Formation;
fLanguage
English
Publisher
ieee
Conference_Titel
Control and Decision Conference (CCDC), 2015 27th Chinese
Conference_Location
Qingdao
Print_ISBN
978-1-4799-7016-2
Type
conf
DOI
10.1109/CCDC.2015.7162464
Filename
7162464
Link To Document