DocumentCode
37704
Title
Experimental and Theoretical Analysis of Transverse Resistances in a
LMI-EM Strand
Author
Breschi, Marco ; Massimini, Marcello ; Spina, T. ; Corato, Valentina
Author_Institution
Dept. of Electr. Eng., Univ. of Bologna, Bologna, Italy
Volume
23
Issue
3
fYear
2013
fDate
Jun-13
Firstpage
8401105
Lastpage
8401105
Abstract
In Nb3Sn strands, hundreds or thousands of fine superconducting filaments are embedded in a metallic matrix for thermal and electrical stabilization. The transverse electrical resistivity between filaments plays a fundamental role in determining the ac losses, the thermal stability, and the current transfer length of the wire. The direct measurements of the transverse electrical resistances give useful information both for stability computations and to analyze the mechanical performance of the wire. In this paper, the interfilament resistances measured with a four-probe technique on a Nb3Sn wire produced by Europa Metalli have been interpreted through a simulation code. A 2-D finite element method model of the wire cross-section and of a 3-D electrical circuit model of the wire sample have been applied to derive qualitative and quantitative information about the transverse electrical resistance matrix. A comparison with measurements performed on a Nb3Sn wire with a different configuration shows the relevance of the wire layout in determining the interfilament resistance between filament bundles.
Keywords
dielectric losses; electrical resistivity; finite element analysis; niobium compounds; superconducting materials; thermal stability; 2D finite element method; 3D electrical circuit model; Europa Metalli; LMI-EM strand; Nb3Sn; ac loss; current transfer length; electrical stabilization; fine superconducting filament; four probe technique; metallic matrix; thermal stability; thermal stabilization; transverse electrical resistivity; transverse resistance; Computational modeling; Electrical resistance measurement; Integrated circuit modeling; Niobium-tin; Resistance; Solid modeling; Wires; Current distribution; stability; superconducting wire; transverse resistivity;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2013.2243797
Filename
6425420
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