Title :
Disturbance attenuation in linear systems via dynamical compensators: a parametric eigenstructure assignment approach
Author :
Duan, G.-R. ; Irwin, G.W. ; Liu, G.P.
fDate :
3/1/2000 12:00:00 AM
Abstract :
A simple approach is proposed for disturbance attenuation in multivariable linear systems via dynamical output compensators based on complete parametric eigenstructure assignment. The basic idea is to minimise the H2 norm of the disturbance-output transfer function using the design freedom provided by eigenstructure assignment. For robustness, the closed-loop system is restricted to be nondefective. Besides the design parameters, the closed-loop eigenvalues are also optimised within desired regions on the left-half complex plane to ensure both closed-loop stability and dynamical performance. With the proposed approach, additional closed-loop specifications can be easily achieved. As a demonstration, robust pole assignment, in the sense that the closed-loop eigenvalues are as insensitive as possible to open-loop system parameter perturbations, is treated. Application of the proposed approach to robust control of a magnetic bearing with a pair of opposing electromagnets and a rigid rotor is discussed
Keywords :
H∞ control; closed loop systems; compensation; control system synthesis; eigenstructure assignment; linear systems; minimisation; multivariable control systems; robust control; transfer functions; H2 norm minimisation; additional closed-loop specifications; closed-loop eigenvalue optimisation; closed-loop eigenvalues; closed-loop stability; complete parametric eigenstructure assignment; disturbance attenuation; disturbance-output transfer function; dynamical output compensators; dynamical performance; left-half complex plane; magnetic bearing; multivariable linear systems; open-loop system parameter perturbations; opposing electromagnets; rigid rotor; robust control; robust pole assignment;
Journal_Title :
Control Theory and Applications, IEE Proceedings -
DOI :
10.1049/ip-cta:20000135