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Ti Redistribution in Multifilamentary Nb/Cu-Sn Composites

机译:钛在多丝Nb / Cu-Sn复合材料中的重新分布

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摘要

Multifilamentary bronze-processed Nb_3Sn-based composites have been studied by the methods of TEM and SEM. Ti as a doping element required for an enhancement of superconducting characteristics, especially in high magnetic fields, was inserted either in a bronze matrix, or in Nb filaments of a composite. It has been found that Ti diffuses into the growing Nb_3Sn layer in both cases, and affects positively its structure and superconducting characteristics of a composite as a whole, especially in case of the doped matrix. When Ti is added to Nb filaments, it forms fine particles of intermetallic compounds with Sn in the nanocrystalline diffusion layer. When these particles are formed, grain boundaries of the diffusion Nb_3Sn layer purify from segregations, and grains in the vicinity of these particles coarsen, which negatively affects the current-carrying capacity of a composite. That's why an optimal amount of Ti in Nb should be chosen, when Ti mainly dissolves in the Nb_3Sn phase increasing its superconducting properties and not deteriorating its grain structure.
机译:利用TEM和SEM方法研究了多丝青铜处理的Nb_3Sn基复合材料。 Ti是增强超导特性(特别是在强磁场中)所需的掺杂元素,被插入青铜基体或复合材料的Nb细丝中。已经发现,在两种情况下,Ti均扩散到生长的Nb_3Sn层中,并且对整个复合材料的结构和超导特性产生积极影响,特别是在掺杂基质的情况下。将Ti添加到Nb细丝中时,它会在纳米晶扩散层中与Sn形成金属间化合物的细颗粒。当形成这些粒子时,扩散Nb_3Sn层的晶界从偏析中清除,并且这些粒子附近的晶粒变粗,这不利地影响了复合材料的载流能力。这就是为什么当Ti主要溶解在Nb_3Sn相中以增加其超导性能而不破坏其晶粒结构时,应选择Nb中最适量的Ti的原因。

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