DocumentCode :
728253
Title :
Adaptive fault tolerant control for hydraulic actuators
Author :
Mahulkar, Vishal ; Adams, Douglas E. ; Derriso, Mark
Author_Institution :
Eaton Corp., Eden Prairie, MN, USA
fYear :
2015
fDate :
1-3 July 2015
Firstpage :
2242
Lastpage :
2247
Abstract :
Sudden or incipient faults can lead to a degradation in plant performance, impairment of important functions and eventual loss of safety. Thus, the diagnosis and accommodation of incipient faults in dynamical systems is important to meet performance and reliability requirements. This paper outlines a fault tolerant control algorithm for a hydraulic actuator with a faulty piston seal. An experimental setup capable of simulating different kinds of faults observed in hydraulic systems is constructed. A detailed nonlinear model of the experimental setup is developed and validated. A robust nonlinear control strategy is developed for position control of the actuator. A nonlinear stochastic parameter estimation algorithm is also developed and its effectiveness in estimating leakage faults is demonstrated. The nonlinear control strategy is then improved upon by adapting based on the online fault estimate. The experimental results demonstrate the effectiveness of the adaptive fault tolerant control strategy by maintaining a position tracking error below .2mm compared to simple robust control for which the error increases to .5mm as the fault size increases.
Keywords :
adaptive control; fault diagnosis; fault tolerant control; hydraulic actuators; leak detection; nonlinear control systems; parameter estimation; pistons; position control; robust control; stochastic processes; adaptive fault tolerant control; dynamical systems; fault size; faulty piston seal; function impairment; hydraulic actuators; incipient fault accommodation; incipient fault diagnosis; leakage fault estimation; nonlinear stochastic parameter estimation algorithm; online fault estimation; performance requirements; plant performance; position control; position tracking error; reliability requirements; robust nonlinear control strategy; safety loss; sudden faults; Actuators; Circuit faults; Estimation; Fault tolerant control; Friction; Mathematical model; Valves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2015
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4799-8685-9
Type :
conf
DOI :
10.1109/ACC.2015.7171066
Filename :
7171066
Link To Document :
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