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
Link To Document :
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