Title
Robust Pid Controller Design By Linear Programming
Abstract
A linear programming approach is proposed to tune fixed-order linearly parameterized controllers for stable LTI plants. The method is based on the shaping of the open-loop transfer function in the Nyquist diagram. A lower bound on the crossover frequency and a new linear stability margin which guarantees lower bounds for the classical robustness margins are defined. Two optimization problems are proposed and solved by linear programming. In the first one the robustness margin is maximized for a given lower bound on the crossover frequency, whereas in the second one the integrated error is minimized with constraints on the new stability margin. The method can directly consider multi-model as well as frequency-domain uncertainties. An application to a high-precision double-axis positioning system illustrates the effectiveness of the proposed approach.
Year
DOI
Venue
2006
10.1109/ACC.2006.1657316
2006 AMERICAN CONTROL CONFERENCE, VOLS 1-12
Keywords
DocType
Volume
optimization problem,transfer function,robust control,frequency domain,nyquist diagrams,robustness,linear programming,lower bound,open loop systems,nyquist diagram,linear program,uncertainty,constraint optimization,linear stability,nyquist stability,optimization,proportional control,convex optimization,frequency,open loop transfer function,pid controller,transfer functions
Conference
1-12
ISSN
Citations 
PageRank 
0743-1619
0
0.34
References 
Authors
2
3
Name
Order
Citations
PageRank
A. Karimi128940.41
Kunze, M.211.04
Roland Longchamp313418.17