Robust H ∞ control for a class of uncertain mechanical systems

In this article, the problem of H ∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all the mass, damping and stiffness matrices. Two approaches, norm-bounded and linear fractional transformation (LFT) uncertainty formulations, a...

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Published inInternational journal of control Vol. 83; no. 7; pp. 1303 - 1324
Main Authors Yang, Xuebo, Gao, Huijun, Shi, Peng, Duan, Guangren
Format Journal Article
LanguageEnglish
Published Abingdon Taylor & Francis Group 01.07.2010
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Abstract In this article, the problem of H ∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all the mass, damping and stiffness matrices. Two approaches, norm-bounded and linear fractional transformation (LFT) uncertainty formulations, are considered. By using a new Lyapunov-Krasovskii functional approach, combined with the advanced techniques for achieving delay dependence, improved robust H ∞ state-feedback controller design methods are developed. The existence condition for admissible controllers is formulated in the form of linear matrix inequalities (LMIs), and the controller design is cast into a convex optimisation problem subject to LMI constraints. If the optimisation problem is solvable, a desired controller can be readily constructed. The result for the norm-bounded uncertainty case improves the existing ones in terms of design conservatism, and that for the LFT uncertainty case represents the first attempt in this direction. An illustrative example is provided to show the effectiveness and advantage of the proposed controller design methodologies.
AbstractList In this article, the problem of H∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all the mass, damping and stiffness matrices. Two approaches, norm-bounded and linear fractional transformation (LFT) uncertainty formulations, are considered. By using a new Lyapunov-Krasovskii functional approach, combined with the advanced techniques for achieving delay dependence, improved robust H∞ state-feedback controller design methods are developed. The existence condition for admissible controllers is formulated in the form of linear matrix inequalities (LMIs), and the controller design is cast into a convex optimisation problem subject to LMI constraints. If the optimisation problem is solvable, a desired controller can be readily constructed. The result for the norm-bounded uncertainty case improves the existing ones in terms of design conservatism, and that for the LFT uncertainty case represents the first attempt in this direction. An illustrative example is provided to show the effectiveness and advantage of the proposed controller design methodologies.
In this article, the problem of H ∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all the mass, damping and stiffness matrices. Two approaches, norm-bounded and linear fractional transformation (LFT) uncertainty formulations, are considered. By using a new Lyapunov-Krasovskii functional approach, combined with the advanced techniques for achieving delay dependence, improved robust H ∞ state-feedback controller design methods are developed. The existence condition for admissible controllers is formulated in the form of linear matrix inequalities (LMIs), and the controller design is cast into a convex optimisation problem subject to LMI constraints. If the optimisation problem is solvable, a desired controller can be readily constructed. The result for the norm-bounded uncertainty case improves the existing ones in terms of design conservatism, and that for the LFT uncertainty case represents the first attempt in this direction. An illustrative example is provided to show the effectiveness and advantage of the proposed controller design methodologies.
Author Shi, Peng
Yang, Xuebo
Gao, Huijun
Duan, Guangren
Author_xml – sequence: 1
  givenname: Xuebo
  surname: Yang
  fullname: Yang, Xuebo
  organization: Space Control and Inertial Technology Research Center, Harbin Institute of Technology
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  givenname: Huijun
  surname: Gao
  fullname: Gao, Huijun
  email: hjgao@hit.edu.cn
  organization: Space Control and Inertial Technology Research Center, Harbin Institute of Technology
– sequence: 3
  givenname: Peng
  surname: Shi
  fullname: Shi, Peng
  organization: Department of Computing and Mathematical Sciences , University of Glamorgan
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  givenname: Guangren
  surname: Duan
  fullname: Duan, Guangren
  organization: Control Theory and Guidance Technology Research Center, Harbin Institute of Technology
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Keywords State feedback
Linear form
Linear fractional transformation
H infinite control
Feedback regulation
Control synthesis
Delay system
Spring mass system
Robust control
Uncertain system
Mechanical system
Linear matrix inequality
Lyapunov function
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Snippet In this article, the problem of H ∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all...
In this article, the problem of H∞ control is investigated for a class of mechanical systems with input delay and parameter uncertainties which appear in all...
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SubjectTerms Applied sciences
Computer science; control theory; systems
control
Control system analysis
Control system synthesis
Control theory. Systems
Controllers
Exact sciences and technology
input delay
linear matrix inequalities
mechanical systems
parameter uncertainties
Studies
Title Robust H ∞ control for a class of uncertain mechanical systems
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