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Heat Treatment Optimization on Nb Sn Strands Based on Electrical and Physical Properties

The electrical and physical properties of Nb_{3}Sn strands are strongly dependent on the heat treatment during which tin diffuses into niobium by solid-state diffusion. During diffusion, Nb_{3}Sn grains grow at the Nb/bronze interface. The shape and size of the grain depend on the temperature of the...

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Bibliographic Details
Published in:IEEE transactions on applied superconductivity 2022-09, Vol.32 (6), p.1-4
Main Authors: Dematte, F., Bruzzone, P., Sarasola, X., Pfeiffer, S., Castro, E. Rodriguez, De Marzi, G., Muzzi, L.
Format: Article
Language:English
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Summary:The electrical and physical properties of Nb_{3}Sn strands are strongly dependent on the heat treatment during which tin diffuses into niobium by solid-state diffusion. During diffusion, Nb_{3}Sn grains grow at the Nb/bronze interface. The shape and size of the grain depend on the temperature of the last step of the heat treatment, its duration and the size of the Nb filaments. The volume of reacted Nb_{3}Sn together with the grains' structure influence the non-copper critical current density J_{c} and the magnetization. Therefore, an optimization of the heat treatment with respect to J_{c} and hysteresis loss is important when working on the design of superconducting cables. This contribution presents the results of a heat treatment optimization performed on a 1\,mm diameter, internal Sn Nb_{3}Sn strands produced by Kiswire Advanced Technology (KAT) for two React&Wind conductor prototypes for the Toroidal Field Coil of the EUROfusion DEMO: a \mathbf {66}\,kA/\mathbf {12}\,T and a \mathbf {105}\,kA/\mathbf {12}\,T prototype. For the optimization, four heat treatment schemes were considered and their evaluation based on I_{c} measurements at 4.2\,K, in the range of 9\,T to 15\,T, on SEM micrographic studies on grain size and shape and on hysteresis loss measurements on a vibrating sample magnetometer (VSM). Based on these results, a heat treatment schedule is proposed for the prototype DEMO conductor and the scal
ISSN:1051-8223
1558-2515
DOI:10.1109/TASC.2022.3159312