DocumentCode :
1545314
Title :
A Novel Magnetic-Levitation System: Design, Implementation, and Nonlinear Control
Author :
Hasirci, U. ; Balikci, A. ; Zabar, Z. ; Birenbaum, L.
Author_Institution :
Electron. Eng. Dept., Gebze Inst. of Technol., Gebze, Turkey
Volume :
39
Issue :
1
fYear :
2011
Firstpage :
492
Lastpage :
497
Abstract :
This paper concerns the design, implementation, and nonlinear velocity-tracking control of a novel magnetic-levitation (maglev) system for magnetically levitated trains. The proposed system uses only one tubular linear induction motor to produce three forces required in a maglev system: propulsion, levitation, and guidance. Classical maglev systems, on the other hand, contain a separate force-generating system to build each of these three forces. Another benefit that the proposed system offers is that there is no need to control the guidance, and particularly, the levitation forces, one of the most challenging tasks in maglev systems. The system always centers the moving part during operation and eliminates the necessity for control of the levitation and guidance forces. However, the propulsion force strongly requires some control efforts because a linear induction motor has nonlinear system dynamics. This paper gives a condensed design guideline based on the mature theory of electromagnetic launchers, particularly the linear induction launcher type. It explains the implementation process, shows experimental test results, and finally, presents a nonlinear partial state-feedback controller for the proposed system.
Keywords :
angular velocity control; electromagnetic launchers; linear induction motors; magnetic levitation; nonlinear control systems; railways; state feedback; electromagnetic launcher theory; force-generating system; guidance forces; maglev system; magnetic-levitation system; magnetically-levitated trains; nonlinear partial state-feedback controller; nonlinear system dynamics; nonlinear velocity-tracking control; propulsion force; tubular linear induction motor; Control systems; Force control; Induction motors; Magnetic levitation; Magnetic separation; Nonlinear control systems; Nonlinear dynamical systems; Nonlinear systems; Propulsion; Velocity control; Electromagnetic launchers (EMLs); linear induction launchers (LILs); magnetic-levitation (maglev) trains; nonlinear control;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2010.2053389
Filename :
5518447
Link To Document :
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