DocumentCode :
1386606
Title :
A Research on Design Method and Theoretical Analysis of Electromagnetic Suspension System Considering Magnetic Interface Between Coils
Author :
Jang, Jae Young ; Kim, Young Jae ; Chang, Ki Sung ; Chung, Yoon Do ; Lee, Chang Young ; Ko, Tae Kuk
Author_Institution :
Sch. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
Volume :
21
Issue :
3
fYear :
2011
fDate :
6/1/2011 12:00:00 AM
Firstpage :
1523
Lastpage :
1527
Abstract :
This paper deals with the design and operating characteristics analysis of electromagnetic suspension (EMS) system. The EMS system consists of a rail, a U-shaped iron core, a high temperature superconductor (HTS) coil, a couple of DC control coils. The HTS coil generates a high magnetic field in the U-shaped iron coil and the rail. As wall as, the U-shaped iron core can be attracted by the coupled high magnetic field. 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 used to design the DC control coils that control the gap distance between the rail and U-shaped iron core. That is, if the gap distance is varied due to the several external disturbances, the DC control coils generated a magnetic field and then keep the constant interval. Thus, the operation of DC control coils would affect the magnetic flux density at the air gap. In this study, we verified the effect of distributions of magnetic flux density using finite element method (FEM) and MATLAB Simulink simulations. Furthermore, we numerically calculated the appropriate control current of DC control coils and the perpendicular magnetic field density on the HTS coil under the external disturbance. Based on these results, the appropriately combined current conditions and control method of EMS system to realize the stable levitation force were achieved.
Keywords :
critical currents; electric current control; finite element analysis; high-temperature superconductors; linear quadratic control; magnetic fields; magnetic flux; magnetic levitation; magnetic variables control; superconducting coils; DC control coils; Matlab Simulink simulations; U-shaped iron core; air gap; critical current; electromagnetic suspension system; finite element method; high temperature superconductor coil; levitation force; linear quadratic control; maglev; magnetic field; magnetic flux density; magnetic interface; rail; Coils; High temperature superconductors; Magnetic cores; Magnetic levitation; Medical services; Superconducting magnets; Critical current; DC control coil; HTS coil; electromagnetic suspension; linear quadratic control;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2010.2091245
Filename :
5643151
Link To Document :
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