Levitation characteristics of HTS tape stacks
Author(s) -
Sergey Pokrovskiy,
Yu. S. Ermolaev,
I. A. Rudnev
Publication year - 2015
Publication title -
progress in superconductivity and cryogenics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.269
H-Index - 7
eISSN - 2092-0555
pISSN - 1229-3008
DOI - 10.9714/psac.2015.17.1.014
Subject(s) - levitation , materials science , stack (abstract data type) , magnetic levitation , superconductivity , magnet , magnetic field , composite material , finite element method , electrodynamic suspension , condensed matter physics , mechanical engineering , magnetization , structural engineering , magnetic energy , physics , quantum mechanics , computer science , engineering , programming language
Due to the considerable development of the technology of second generation high-temperature superconductors and a significant improvement in their mechanical and transport properties in the last few years it is possible to use HTS tapes in the magnetic suspension. The advantages of tapes on a metal substrate as compared with bulk YBCO material primarily in the strength, and the possibility of optimizing the convenience of manufacturing elements of magnetic suspensions. In the present report presents the results of the magnetic levitation force measurements between the stack of HTS tapes containing n = 2 ÷ 100 of tapes 12 x 12 mm 2 and NdFeB permanent magnet in the FC and ZFC regimes. It was found a nonlinear dependence of the levitation force from the height of the array of stack in both modes: linear growth at small thickness gives way to flattening and constant at large number of of tapes in the stack. Established that the levitation force of stacks comparable to that of bulk samples. The numerical calculations using finite element method, showed that without the screening of the applied field the levitation force of the bulk superconductor and the layered superconductor stack with a critical current of tapes increased by the filling factor is exactly the same, and taking into account the screening the force slightly different.
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