DocumentCode
1076401
Title
Novel 2G HTS Multifilamentary Conductor Design for AC Applications
Author
Thieme, C.L.H. ; Aized, D. ; Chevtchenko, O.A.
Author_Institution
American Supercond., Westborough
Volume
17
Issue
2
fYear
2007
fDate
6/1/2007 12:00:00 AM
Firstpage
3203
Lastpage
3206
Abstract
2G HTS wires need substantial development to allow ac applications with acceptable losses in ac magnetic fields perpendicular to the tape plane. Filament transposition is necessary to avoid large coupling currents and also to insure a uniform current flow through all the filaments, both of which are essential to minimize ac losses. Conductor twisting solves only the first part of the problem and is not really practical in a tape-shaped wire needing to be wound for instance into compact coils of various shapes. We set out to evaluate a new two-dimensional transposition approach for striated, multifilamentary 2G HTS wire. The new concept uses a so-called transposition zone, located along a linearly striated conductor. In this 7-10 cm long zone all filaments are transposed. The repeat distance of this transposition zone can be as short as 10 m or as long as 100 m, depending on the particular superconducting device and the anticipated ac magnetic fields. In this project a successful transposition approach with acceptable losses was developed. Both the striation method using lateral translations, and sound junction types using different materials, were demonstrated.
Keywords
discharges (electric); high-temperature superconductors; multifilamentary superconductors; superconducting tapes; ac losses; conductor twisting; coupling currents; filament transposition; high temperature superconductors; multifilamentary conductor; striation; superconductor wires; Coils; Conductors; High temperature superconductors; Magnetic fields; Magnetic losses; Magnetic materials; Shape; Superconducting devices; Wire; Wounds; ${rm YBa}_{2}{rm Cu}_{3}{rm O}_{7-{rm x}}$ ; AC loss; filament transposition; high temperature superconductors;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2007.897909
Filename
4278302
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