Decentralised fault compensation of time-delayed interactions and dead-zone actuators for a class of large-scale non-linear systems

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초록

An approximation-based decentralised adaptive fault compensation (FC) problem is addressed for large-scale non-linear time-delay systems with unknown faults in both time-delayed C-1 non-linear interconnections and non-symmetric dead-zone actuators. Error surfaces constrained by prescribed performance bounds, which characterise the convergence rate and maximum overshoot of control errors, are presented to provide predefined bounds of control errors. Then, we design a memoryless decentralised FC control system using the constrained-surfaces-based dynamic surface design methodology, without constructing a dead-zone inverse and requiring the information about dead-zone parameters and time-delayed interactions. For the compensator design, the function approximation technique using neural networks is applied to adaptively estimate unknown non-linear effects and changes in model dynamics because of time-delayed interaction and dead-zone actuator faults. It is shown from Lyapunov stability theorem that all the error surfaces are preserved within the prescribed performance bounds and finally converge to an adjustable neighbourhood of the origin. Therefore guaranteed transient performance is achieved at the moment the faults occur.

키워드

ROBUST ADAPTIVE-CONTROLDYNAMIC SURFACE CONTROLGUARANTEED ERROR-BOUNDSOUTPUT-FEEDBACK CONTROLTOLERANT CONTROLNEURAL-NETWORKSSTABILITY ANALYSISCONTROLLER-DESIGNVARYING DELAYSTABILIZATION
제목
Decentralised fault compensation of time-delayed interactions and dead-zone actuators for a class of large-scale non-linear systems
저자
Yoo, Sung Jin
DOI
10.1049/iet-cta.2014.0334
발행일
2015-06
유형
Article
저널명
IET Control Theory and Applications
9
9
페이지
1461 ~ 1471