DocumentCode
1539649
Title
Scaling of the critical current in ITER type niobium-tin superconductors in relation to the applied field, temperature and uni-axial applied strain
Author
Godeke, A. ; Ten Haken, B. ; ten Kate, H.H.J.
Author_Institution
Fac. of Appl. Phys., Twente Univ., Enschede, Netherlands
Volume
9
Issue
2
fYear
1999
fDate
6/1/1999 12:00:00 AM
Firstpage
161
Lastpage
164
Abstract
The three dimensional surface of the critical current density versus field and temperature J/sub c/(B,T) of niobium-tin is a function of the strain state of the superconductor. A brief review of literature on this subject is presented. The J/sub c/(B) function is described by the relations for flux pinning. The temperature and strain dependencies are added to this relation, This results in a unifying scaling law for A15 materials, which is verified for different niobium-tin conductors with respect to all the relevant variables, i.e. field, temperature and uni-axial strain. Nb/sub 3/Sn conductors from 9 manufacturers are measured in the frame work of the third ITER benchmark tests on critical current. The investigated ranges are: applied field from 7 to 13 T, temperature from 4.2 to 8 K and applied strain from -0.4 to +0.8%. Special attention is paid to the region of compressive axial strain, which is the most relevant state of strain for superconductors under thermal compression in practical applications.
Keywords
critical current density (superconductivity); electric current measurement; flux pinning; niobium alloys; tin alloys; type II superconductors; 4.2 to 8 K; 7 to 13 T; A15 materials; ITER; Nb/sub 3/Sn; Nb/sub 3/Sn conductors; applied field; compressive axial strain; critical current density; critical current scaling; flux pinning; niobium-tin superconductors; strain dependency; strain state; temperature; thermal compression; three dimensional surface; uni-axial applied strain; unifying scaling law; Capacitive sensors; Conducting materials; Critical current; Critical current density; Flux pinning; Niobium; Niobium-tin; Superconducting materials; Temperature dependence; Tin;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.783261
Filename
783261
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