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Numerical Analysis of Moving Type and Static Type Electrodynamic Suspension Simulator with Superconducting Levitation Magnet

초전도 부상자석을 이용한 동적 및 정지형 반발식 자기부상 시험기의 수치해석

  • Published : 2009.03.31

Abstract

This paper presents the numerical simulation results on the moving type electrodynamic suspension (EDS) simulator and static type EDS simulator using high-Tc superconducting (HTS) levitation magnet. The levitation force of the EDS system is formed by the reaction between the moving magnet and the fixed ground conductor. The possible two ways to simulate the EDS system were simulated in this paper by using finite element method (FEM). The first way was the moving type simulator which consists of the fixed HTS magnet and the moving ground conductor. The second way was the static type simulator which consists of the fixed magnet, the fixed ground conductor and the ac current supply system. To verify the characteristics of high speed EDS system with the moving type simulator heavy, large and fast moving ground conductor is needed. The static type simulator can get the characteristics of the high speed EDS system by applying equivalent ac current to velocity, therefore it does not need large moving part. The static type EDS simulator, which can consist of an HTS magnet, the fixed ground conductor(s), an AC power supply and the measuring devices, also test the effect of the shape of the ground conductor easily. The plate type ground conductor made stronger levitation force than ring type ground conductor. Although the outer diameter 335 mm ring type ground conductor (Ring3) was larger than the outer diameter 235 mm ground conductor (Ring2), the levitation force by Ring2 was stronger than that by Ring3. From the calculation results on this paper, the consideration of the magnetic flux distribution according to the levitation height should be included in the process of the ground conductor design.

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References

  1. Kazuo Sawada, "Superconducting Maglev Developed by RTRI and JP Central," Japan Railway and Transport Review 25, pp. 58-61, 2000
  2. Motoharu Ono, Shunsaku Koga, and Hisao Ohtsuki, "Japan's Superconducting Maglev Train," IEEE Instrumental & Measurement Magazine, pp. 9-15, 2002 https://doi.org/10.1109/5289.988732
  3. Donald M. Rote and Eddie M. Leung, "Future Prospects for Maglev Technology Applications," Proceedings of MAGLEV'2004 Conference, Shanghai, China, pp. 65- 75, Oct. 26-28, 2004
  4. A. Cassat and M. Jufer, "MAGLEV Projects Technology Aspects and Choices," IEEE Trans. on Applied Superconductivity, Vol. 12, No. 1, pp. 915-925, 2002 https://doi.org/10.1109/TASC.2002.1018549
  5. Philip Holmer, "Faster Than a Speeding Bullet Train," IEEE Spectrum, pp. 30-34, 2002 https://doi.org/10.1109/MSPEC.2003.1222045
  6. Available from: http://news.khan.co.kr/kh_news/khan_art_view.html?artid=200704271821071&code=9700203
  7. A. Cassat and M. Jufer, "MAGLEV Projects Technology Aspects and Choices," IEEE Trans. on Applied Superconductivity, Vol. 12, No. 1, pp. 915-925, 2002 https://doi.org/10.1109/TASC.2002.1018549
  8. David K. Cheng, Field and Wave Electromagnetics, Addison-Wesley Publishing Company, Inc., 1992
  9. P. K. Sinha, Electromagnetic Suspension Dynamics & Control, Peter Peregrinus Ltd., 1987
  10. Duck Kweon Bae, Hungje Cho, and Jongmin Lee, "Characteristic Analysis of HTS Levitation Force with Various Conditions of Ground Conductors," IEEE Transactions on Applied Superconductivity, Vol. 18, No. 2, pp. 803-807, 2008 https://doi.org/10.1109/TASC.2008.920684