DocumentCode
969050
Title
Stress effects on multifilamentary Nb3 Sn wire
Author
Bartlett, R.J. ; Taylor, R.D. ; Thompson, J.D.
Author_Institution
IEEE TMAG
Volume
15
Issue
1
fYear
1979
fDate
1/1/1979 12:00:00 AM
Firstpage
193
Lastpage
196
Abstract
Critical current Ic measurements were obtained on highly stabilized mf Nb3 Sn wires as a function of heat treatment, stress, temperature, and applied magnetic field. The ratio of the area of the copper to bronze core-niobium tube is about 8, and the filaments are concentrated in the inner 30% of the wire´s cross section. Values of Ic and Tc were determined for samples subjected to a wide range of heat treatments. Diffusion reaction times and temperatures in the ranges 16 to 128 h and 700 to 750°C provided a number of mf Nb3 Sn wires having similar Ic characteristics. To some extent the residual compressive loading on the Nb3 Sn wires varied with the particular heat treatment. This loading arises primarily from the differential contraction of the remaining bronze and the Nb3 Sn layer when cooled from the reaction temperature to the operating temperature. Like other investigators, we find that, by controlled bending or stretching of the wires, whereby some of the strain in the Nb3 Sn is relieved, the Ic at 14 K is increased by as much as 30% and the critical temperature is increased by up to 1 K. The pinning force in strained and relieved wires was determined from Ic measurements in applied fields up to 10 T. We analyzed changes in the position and height of the pinning force peak as a function of strain relief using Kramer´s theory of flux pinning. With the Kramer model, by varying the effective strength and number of pinning sites, we were able to describe qualitatively differences in the pinning force curves that were obtained in the as-reacted (strained) and bent (strain-relieved) states.
Keywords
Mechanical factors; Superconducting materials; Critical current; Force measurement; Heat treatment; Magnetic field measurement; Niobium; Strain measurement; Stress; Temperature; Tin; Wires;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.1979.1060092
Filename
1060092
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