Abstract
Multi-objective (MO) optimization is a developing technique for increasing closed-loop performance and robustness. However, its applications to control engineering mostly concern first or second order approximation models. This article proposes a novel MO algorithm, suitable for the design and control of mechanical systems, which does not require any order reduction techniques. The controller parameters are determined directly from a special type of rapid analysis of simulated transient responses. The case study presented in this article consists of a magnetic levitation system. Certain difficulties such as the nonlinearity identification of the magnetic force and duo magnetic field sensor scheme were addressed. To point out the advantages of using the developed approach, the simulations as well as the experiments performed with the help of the created algorithm were compared to those made with common MO algorithms.
Funder
Ministry of Higher Education, Science and Technology of the Republic of Slovenia
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference54 articles.
1. Astrom, K.J., and Hagglund, T. (2006). Advanced PID Control, ISA-The Instrumentation, Systems, and Automation Society.
2. PID control system analysis, design, and technology;Ang;IEEE Trans. Control. Syst. Technol.,2005
3. Astolfi, A. (2008, January 9–11). Model reduction by moment matching for nonlinear systems. Proceedings of the 2008 47th IEEE Conference on Decision and Control, Cancún, Mexico.
4. Shrivastava, N., and Varshney, P. (2016, January 18–19). Comparative analysis of order reduction techniques. Proceedings of the 2016 Second International Innovative Applications of Computational Intelligence on Power, Energy and Controls with their Impact on Humanity (CIPECH), Ghaziabad, India.
5. Doetsch, G. (1974). Introduction to the Theory and Application of the Laplace Transformation, Springer.
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