DocumentCode :
669412
Title :
Design feasibility of superconducting-hybrid magnetic levitation system for high-speed maglev
Author :
Chang-Young Lee
Author_Institution :
New Transp. Syst. Res. Center, Korea Railroad Res. Inst., Uiwang, South Korea
fYear :
2013
fDate :
20-23 Oct. 2013
Firstpage :
470
Lastpage :
472
Abstract :
We have proposed a new EMS-maglev model with hybrid electromagnets. This paper deals with the design feasibility of electromagnetic suspension (EMS) system for high-speed maglev. As a first step of this work, a design method considering the magnetic interface between the rail and U -shaped iron core was proposed. To design these coils, turns and operating current of high-Tc superconducting (HTS) coil were calculated based on the FEM simulation. We calculated turns and operating current conditions of HTS coil considering the decay of critical current when perpendicular magnetic fields are applied to the HTS coil. In addition to the design of the HTS coil, a Linear Quadratic (LQ) control method was used to design the DC control coils that control the gap distance between the rail and U-shaped iron core. And the control model was introduced and solved to get controller gains. As well as, the control current and the perpendicular magnetic field density applied to the HTS coil due to the operation of DC control coil were analyzed.
Keywords :
control system synthesis; finite element analysis; high-temperature superconductors; linear quadratic control; magnetic levitation; magnetic variables control; rail traffic control; superconducting coils; superconducting magnets; DC control coils; EMS-maglev model; FEM simulation; HTS coil; LQ control method; U-shaped iron core; control current; controller gains; critical current decay; electromagnetic suspension system; gap distance control; high-Tc superconducting coil; high-speed maglev; high-speed train; hybrid electromagnets; linear quadratic control method; magnetic interface; perpendicular magnetic field density; perpendicular magnetic fields; rail; superconducting-hybrid magnetic levitation system; Analytical models; Finite element analysis; Magnetic analysis; Magnetic levitation; Superconducting coils; Superconducting magnets; Electromagnetic suspension (EMS); High-speed train; Levitation control; Maglev; Superconductor;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control, Automation and Systems (ICCAS), 2013 13th International Conference on
Conference_Location :
Gwangju
ISSN :
2093-7121
Print_ISBN :
978-89-93215-05-2
Type :
conf
DOI :
10.1109/ICCAS.2013.6703978
Filename :
6703978
Link To Document :
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