Title :
Adaptive fault-tolerant control for time-delay systems with saturation nonlinearity and L2-disturbances
Author :
Wei Guan ; Ling Guo
Author_Institution :
Sch. of Autom., Shenyang Aerosp. Univ., Shenyang, China
Abstract :
This paper studies the problem of designing adaptive fault-tolerant H∞ controllers for linear time-delay systems with actuator saturation. The disturbance tolerance ability of the closed-loop system is measured by an optimal index. A notion of adaptive H∞ performance index is proposed to describe the disturbance attenuation performances of closed-loop systems. New methods for designing indirect adaptive fault-tolerant controllers via state feedback are presented for actuator fault compensations. Based on the on-line estimation of eventual faults, the adaptive fault-tolerant controller parameters are updating automatically to compensate the fault effects on systems. The designs are developed in the framework of linear matrix inequality (LMI) approach, which can guarantee the disturbance tolerance ability and adaptive H∞ performances of closed-loop systems in the cases of actuator saturation and actuator failures. An example is given to illustrate the efficiency of the design method.
Keywords :
H∞ control; actuators; adaptive control; closed loop systems; control system synthesis; delays; fault diagnosis; fault tolerance; linear matrix inequalities; linear systems; state feedback; L2-disturbances; LMI approach; actuator failures; actuator fault compensations; actuator saturation; adaptive H∞ performance index; adaptive fault-tolerant H∞ controller designing; closed loop system; disturbance attenuation performance; disturbance tolerance; eventual fault online estimation; indirect adaptive fault-tolerant controller design; linear matrix inequality; linear time-delay systems; saturation nonlinearity; state feedback; Actuators; Adaptive systems; Closed loop systems; Fault tolerance; Fault tolerant systems; Indexes; Performance analysis; Actuator Saturation; Adaptive Control; Disturbance Tolerance; Fault-tolerant Control; H∞ Control; Time-Delay;
Conference_Titel :
Control and Decision Conference (CCDC), 2013 25th Chinese
Conference_Location :
Guiyang
Print_ISBN :
978-1-4673-5533-9
DOI :
10.1109/CCDC.2013.6560966