Reduced order ℋ∞ controller design for vibration control using genetic algorithms

Author:

Canahuire Ruth12,Serpa Alberto Luiz1

Affiliation:

1. Department of Computational Mechanics, School of Mechanical Engineering, University of Campinas – UNICAMP, Brazil

2. Department of Electrical Engineering, Universidad de Ingenieria y Tecnologia – UTEC, Peru

Abstract

The design of vibration controllers for flexible structures requires special attention due to the size of structural models, generally with a high number of degrees of freedom. The implementation of full order controllers for structures with high numbers of degrees of freedom often requires a high computational processing effort and advanced hardware. To avoid this, it is desirable to use reduced order controllers. The design of reduced order [Formula: see text] controllers characterizes a nonconvex optimization problem. In this context, this work presents a direct minimization method to design reduced order [Formula: see text] controllers in the controllable canonical form. An optimization problem is formulated to minimize the [Formula: see text] norm with an additional constraint to consider stability of the closed-loop system. The solution of the optimization problem is obtained using genetic algorithms, exploiting the advantage of this point of view in the solution of nonconvex problems. This formulation is verified in the active vibration control of a cantilever beam. A comparison of the proposed formulation with the formulation that uses linear matrix inequalities and the Augmented Lagrangian method is presented in this work and some numerical aspects of the problem are discussed.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Mechanics of Materials,Aerospace Engineering,Automotive Engineering,General Materials Science

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Active vibration control: Design towards performance limit;Mechanical Systems and Signal Processing;2022-05

2. Active Control with Constraints and Uncertainty;Active Vibration & Noise Control: Design Towards Performance Limit;2022

3. Active Control for Performance Limit;Active Vibration & Noise Control: Design Towards Performance Limit;2022

4. Introduction to Vibration and Noise Control Problems;Active Vibration & Noise Control: Design Towards Performance Limit;2022

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