Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study

This paper deals with a methodical design approach of fault-tolerant controller that gives assurance for the the stabilization and acceptable control performance of the nonlinear systems which can be described by Takagi−Sugeno (T−S) fuzzy models. Takagi−Sugeno fuzzy mod...

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Main Authors: Himanshukumar R. Patel, Vipul A. Shah
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/11/2221
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spelling doaj-1609cec2f0f54184933ef81832c5e4782020-11-24T21:14:45ZengMDPI AGEnergies1996-10732019-06-011211222110.3390/en12112221en12112221Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case StudyHimanshukumar R. Patel0Vipul A. Shah1Department of Instrumentation and Control, Faculty of Technology, Dharmsinh Desai University, Gujarat, 387001 Nadiad, IndiaDepartment of Instrumentation and Control, Faculty of Technology, Dharmsinh Desai University, Gujarat, 387001 Nadiad, IndiaThis paper deals with a methodical design approach of fault-tolerant controller that gives assurance for the the stabilization and acceptable control performance of the nonlinear systems which can be described by Takagi−Sugeno (T−S) fuzzy models. Takagi−Sugeno fuzzy model gives a unique edge that allows us to apply the traditional linear system theory for the investigation and blend of nonlinear systems by linear models in a different state space region. The overall fuzzy model of the nonlinear system is obtained by fuzzy combination of the all linear models. After that, based on this linear model, we employ parallel distributed compensation for designing linear controllers for each linear model. Also this paper reports of the T−S fuzzy system with less conservative stabilization condition which gives decent performance. However, the controller synthesis for nonlinear systems described by the T−S fuzzy model is a complicated task, which can be reduced to convex problems linking with linear matrix inequalities (LMIs). Further sufficient conservative stabilization conditions are represented by a set of LMIs for the Takagi−Sugeno fuzzy control systems, which can be solved by using MATLAB software. Two-rule T−S fuzzy model is used to describe the nonlinear system and this system demonstrated with proposed fault-tolerant control scheme. The proposed fault-tolerant controller implemented and validated on three interconnected conical tank system with two constraints in terms of faults, one issed to build the actuator and sond is system component (leak) respectively. The MATLAB Simulink platform with linear fuzzy models and an LMI Toolbox was used to solve the LMIs and determine the controller gains subject to the proposed design approach.https://www.mdpi.com/1996-1073/12/11/2221actuator faultfuzzy controllinear matrix inequalitiesT–S model-based fuzzy controlparallel distributed compensationstability conditionsystem component faultthree conical tankTakagi–Sugeno fuzzy model
collection DOAJ
language English
format Article
sources DOAJ
author Himanshukumar R. Patel
Vipul A. Shah
spellingShingle Himanshukumar R. Patel
Vipul A. Shah
Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
Energies
actuator fault
fuzzy control
linear matrix inequalities
T–S model-based fuzzy control
parallel distributed compensation
stability condition
system component fault
three conical tank
Takagi–Sugeno fuzzy model
author_facet Himanshukumar R. Patel
Vipul A. Shah
author_sort Himanshukumar R. Patel
title Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
title_short Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
title_full Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
title_fullStr Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
title_full_unstemmed Stable Fault Tolerant Controller Design for Takagi–Sugeno Fuzzy Model-Based Control Systems via Linear Matrix Inequalities: Three Conical Tank Case Study
title_sort stable fault tolerant controller design for takagi–sugeno fuzzy model-based control systems via linear matrix inequalities: three conical tank case study
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-06-01
description This paper deals with a methodical design approach of fault-tolerant controller that gives assurance for the the stabilization and acceptable control performance of the nonlinear systems which can be described by Takagi−Sugeno (T−S) fuzzy models. Takagi−Sugeno fuzzy model gives a unique edge that allows us to apply the traditional linear system theory for the investigation and blend of nonlinear systems by linear models in a different state space region. The overall fuzzy model of the nonlinear system is obtained by fuzzy combination of the all linear models. After that, based on this linear model, we employ parallel distributed compensation for designing linear controllers for each linear model. Also this paper reports of the T−S fuzzy system with less conservative stabilization condition which gives decent performance. However, the controller synthesis for nonlinear systems described by the T−S fuzzy model is a complicated task, which can be reduced to convex problems linking with linear matrix inequalities (LMIs). Further sufficient conservative stabilization conditions are represented by a set of LMIs for the Takagi−Sugeno fuzzy control systems, which can be solved by using MATLAB software. Two-rule T−S fuzzy model is used to describe the nonlinear system and this system demonstrated with proposed fault-tolerant control scheme. The proposed fault-tolerant controller implemented and validated on three interconnected conical tank system with two constraints in terms of faults, one issed to build the actuator and sond is system component (leak) respectively. The MATLAB Simulink platform with linear fuzzy models and an LMI Toolbox was used to solve the LMIs and determine the controller gains subject to the proposed design approach.
topic actuator fault
fuzzy control
linear matrix inequalities
T–S model-based fuzzy control
parallel distributed compensation
stability condition
system component fault
three conical tank
Takagi–Sugeno fuzzy model
url https://www.mdpi.com/1996-1073/12/11/2221
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AT vipulashah stablefaulttolerantcontrollerdesignfortakagisugenofuzzymodelbasedcontrolsystemsvialinearmatrixinequalitiesthreeconicaltankcasestudy
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