Title :
Observer-based residual design for nonlinear systems with unknown inputs
Author_Institution :
Fac. of Sci., Eng. & Health, Central Queensland Univ., Gladstone, QLD, Australia
Abstract :
This paper presents unknown-input observer-based approach for robust fault detection and isolation of a class of nonlinear Lipschitz systems subject to unknown inputs or disturbances. Residual signals are generated by bank of observers to detect and isolate between actuator faults and sensor faults. The effect of unknown inputs or disturbances can be decoupled from the residual signals by using the generalized inverse method. Necessary and sufficient conditions for the existence and stability of low-order nonlinear unknown input functional observer are derived. A design procedure for the generation of residual signals to detect and isolate actuator and sensor faults is developed using the proposed unknown-input observer-based solution.
Keywords :
actuators; fault diagnosis; nonlinear control systems; observers; robust control; actuator fault detection; generalized inverse method; low-order nonlinear unknown input functional observer stability; nonlinear Lipschitz system; nonlinear system; observer-based residual design; residual signal generation; robust fault detection; robust fault isolation; sensor fault detection; unknown-input observer-based approach; Actuators; Equations; Fault detection; Linear matrix inequalities; Observers; Robustness; Vectors;
Conference_Titel :
Australian Control Conference (AUCC), 2011
Conference_Location :
Melbourne, VIC
Print_ISBN :
978-1-4244-9245-9