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Estimation of the critical current of race-track HTS magnet considering angular dependency

  • Received : 2015.08.20
  • Accepted : 2015.09.21
  • Published : 2015.09.30

Abstract

The high temperature superconducting (HTS) magnet has been developed for the high magnetic field applications such as NMR, MRI and other industrial machinery. In designing process of these HTS magnets, the accurate estimation on the critical current (Ic) is essential to predict and secure the electromagnetic performance. The critical current of 2G HTS tape has anisotropic Ic degradation characteristics with the application of magnetic field - angular dependency of critical current. It is known that the perpendicular magnetic field to the face of HTS tape makes dominant degradation on the critical current for conventional 2G HTS tape. However, recently developed 2G HTS tape has more complex characteristics due to the artificial pinning center. Therefore, the method for Ic estimation reflecting such characteristics of 2G HTS tape needs to be devised. The method considering the angular dependency is introduced in this paper. And the result of newly devised method is compared with that of previous method.

Keywords

References

  1. Chang Young Lee et al., "Conceptual Design of Superconducting Linear Synchronous Motor for 600-km/h Wheel-Type Railway," IEEE transactions on applied superconductivity : a publication of the IEEE Superconductivity Committee, vol. 24, no. 3, pp. 1-4, 2014.
  2. J. Kluhspies, "Prospects and limitations of high-speed Maglev systems: Aspects of an interdisciplinary approach," in Proc. 20th Conf. Magnet. Levitated Syst. Linear Drives, San Diego, no. 139, 2008.

Cited by

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  2. Measurement of Magnetic Field Properties of a 3.0 T/m Air-Core HTS Quadrupole Magnet and Optimal Shape Design to Increase the Critical Current Reduced by the Incident Magnetic Field vol.9, pp.3, 2020, https://doi.org/10.3390/electronics9030450