DocumentCode
1288506
Title
Fast Robust Nanopositioning—A Linear-Matrix-Inequalities-Based Optimal Control Approach
Author
Lee, Chibum ; Salapaka, Srinivasa M.
Author_Institution
Dept. of Mech. Sci. & Eng., Univ. of Illinois at Urbana-Champaign, Urbana, IL, USA
Volume
14
Issue
4
fYear
2009
Firstpage
414
Lastpage
422
Abstract
This paper proposes a 2-DOF robust optimal control design method for achieving multiple objectives of resolution, bandwidth, and robustness to modeling uncertainties in nanopositioning systems. The main theoretical contribution of this paper is the formulation of a multiobjective 2-DOF optimal control problem in terms of linear matrix inequalities, which are then solved using standard convex optimization tools. The main distinguishing feature of this approach is the flexibility this method provides in formulating and solving the optimization problems that results in achieving a larger set of performance specifications. It facilitates solving of a certain class of mixed-norm optimization and pole-placement problems that arise naturally in nanopositioning systems. This methodology is demonstrated through experiments on a nanopositioning system that archives performance specifications, which are impossible with 1-DOF designs. Experimental results also demonstrate over 200% improvement in bandwidth of the resulting nanopositioning system over the optimal 1-DOF control designed for the same resolution and robustness specifications.
Keywords
linear matrix inequalities; nanopositioning; optimal control; robust control; 2-DOF robust optimal control; convex optimization; linear matrix inequalities; mixed-norm optimization; pole-placement problem; robust nanopositioning system; 2-DOF control design; High bandwidth; high resolution; linear matrix inequalities (LMIs); robust nanopositioning;
fLanguage
English
Journal_Title
Mechatronics, IEEE/ASME Transactions on
Publisher
ieee
ISSN
1083-4435
Type
jour
DOI
10.1109/TMECH.2009.2023903
Filename
5196700
Link To Document