DocumentCode
744598
Title
Robust NSV Fault-Tolerant Control System Design Against Actuator Faults and Control Surface Damage Under Actuator Dynamics
Author
Dezhi Xu ; Bin Jiang ; Peng Shi
Author_Institution
Key Lab. of Adv. Process Control for Light Ind. (Minist. of Educ.), Jiangnan Univ., Wuxi, China
Volume
62
Issue
9
fYear
2015
Firstpage
5919
Lastpage
5928
Abstract
In this paper, a decentralized fault-tolerant control (FTC) system is proposed for near-space vehicle (NSV) attitude dynamics. First, NSV reentry attitude dynamic models with an uncertainty, actuator failure models, and a control surface damage model are described. Next, a new local fault identification algorithm is proposed to iden tify different types of actuator faults, which is based on multiobserver techniques. The local fault identification is constituted by a fault detection observer, fault parameter identification observers, and a decision-making mechanism. Then, a global adaptive sliding-mode observer is used to design the command filter backstepping fault- tolerant controller. Our focus is on the accommodation for actuator faults, control surface damage, uncertainties, and the resulting disturbances of the NSV. Finally, simulation results are given to demonstrate the effectiveness and poten tial of the proposed FTC scheme.
Keywords
actuators; adaptive control; attitude control; decision making; fault tolerant control; observers; parameter estimation; robust control; space vehicles; uncertain systems; variable structure systems; vehicle dynamics; actuator failure models; actuator faults; command filter backstepping controller; control surface damage model; decentralized FTC system; decision-making mechanism; fault detection observer; fault parameter identification observers; global adaptive sliding-mode observer; local fault identification algorithm; multiobserver techniques; near-space vehicle; reentry attitude dynamic models; robust NSV fault-tolerant control system design; uncertainties; Actuators; Aerodynamics; Fault detection; Fault tolerance; Fault tolerant systems; Observers; Vehicle dynamics; Actuator faults; Fault-tolerant control; actuator faults; backstepping; control surface damage; fault identification; fault-tolerant control (FTC); multi-observer; multiobserver; near space vehicle; near-space vehicle (NSV);
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2015.2450714
Filename
7140787
Link To Document