Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer

The problem of actuators’ fault diagnosis is pursued for a class of nonlinear control systems that are affected by bounded measurement noise and external disturbances. A novel fault diagnosis algorithm has been proposed by combining the idea of adaptive control theory and the approach of fault detec...

Full description

Bibliographic Details
Main Authors: Runxia Guo, Kai Guo, Quan Gan, Junwei Zhang, Jiankang Dong, Lanping Bai
Format: Article
Language:English
Published: Hindawi Limited 2016-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2016/2618534
id doaj-0332e9c6dfb84ea3b029721f0c4e322a
record_format Article
spelling doaj-0332e9c6dfb84ea3b029721f0c4e322a2020-11-24T23:40:18ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472016-01-01201610.1155/2016/26185342618534Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection ObserverRunxia Guo0Kai Guo1Quan Gan2Junwei Zhang3Jiankang Dong4Lanping Bai5College of Electronics Information and Automation, Civil Aviation University of China, Tianjin 300300, ChinaCollege of Electronics Information and Automation, Civil Aviation University of China, Tianjin 300300, ChinaCollege of Electronics Information and Automation, Civil Aviation University of China, Tianjin 300300, ChinaCollege of Electronics Information and Automation, Civil Aviation University of China, Tianjin 300300, ChinaCollege of Electronics Information and Automation, Civil Aviation University of China, Tianjin 300300, ChinaProcess Engineering Department, Freescale Semiconductor (China) Limited, Tianjin 300300, ChinaThe problem of actuators’ fault diagnosis is pursued for a class of nonlinear control systems that are affected by bounded measurement noise and external disturbances. A novel fault diagnosis algorithm has been proposed by combining the idea of adaptive control theory and the approach of fault detection observer. The asymptotical stability of the fault detection observer is guaranteed by setting the adaptive adjusting law of the unknown fault vector. A theoretically rigorous proof of asymptotical stability has been given. Under the condition that random measurement noise generated by the sensors of control systems and external disturbances exist simultaneously, the designed fault diagnosis algorithm is able to successfully give specific estimated values of state variables and failures rather than just giving a simple fault warning. Moreover, the proposed algorithm is very simple and concise and is easy to be applied to practical engineering. Numerical experiments are carried out to evaluate the performance of the fault diagnosis algorithm. Experimental results show that the proposed diagnostic strategy has a satisfactory estimation effect.http://dx.doi.org/10.1155/2016/2618534
collection DOAJ
language English
format Article
sources DOAJ
author Runxia Guo
Kai Guo
Quan Gan
Junwei Zhang
Jiankang Dong
Lanping Bai
spellingShingle Runxia Guo
Kai Guo
Quan Gan
Junwei Zhang
Jiankang Dong
Lanping Bai
Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
Mathematical Problems in Engineering
author_facet Runxia Guo
Kai Guo
Quan Gan
Junwei Zhang
Jiankang Dong
Lanping Bai
author_sort Runxia Guo
title Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
title_short Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
title_full Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
title_fullStr Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
title_full_unstemmed Fault Diagnosis for Actuators in a Class of Nonlinear Systems Based on an Adaptive Fault Detection Observer
title_sort fault diagnosis for actuators in a class of nonlinear systems based on an adaptive fault detection observer
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2016-01-01
description The problem of actuators’ fault diagnosis is pursued for a class of nonlinear control systems that are affected by bounded measurement noise and external disturbances. A novel fault diagnosis algorithm has been proposed by combining the idea of adaptive control theory and the approach of fault detection observer. The asymptotical stability of the fault detection observer is guaranteed by setting the adaptive adjusting law of the unknown fault vector. A theoretically rigorous proof of asymptotical stability has been given. Under the condition that random measurement noise generated by the sensors of control systems and external disturbances exist simultaneously, the designed fault diagnosis algorithm is able to successfully give specific estimated values of state variables and failures rather than just giving a simple fault warning. Moreover, the proposed algorithm is very simple and concise and is easy to be applied to practical engineering. Numerical experiments are carried out to evaluate the performance of the fault diagnosis algorithm. Experimental results show that the proposed diagnostic strategy has a satisfactory estimation effect.
url http://dx.doi.org/10.1155/2016/2618534
work_keys_str_mv AT runxiaguo faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
AT kaiguo faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
AT quangan faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
AT junweizhang faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
AT jiankangdong faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
AT lanpingbai faultdiagnosisforactuatorsinaclassofnonlinearsystemsbasedonanadaptivefaultdetectionobserver
_version_ 1725510140109520896