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Microstructural factors important for the development of high critical current density Nb_3Sn strand

机译:对高临界电流密度Nb_3Sn链发展至关重要的微观结构因素

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Nb_3Sn is the primary candidate for the next generation of accelerator magnets as well as for NMR and other applications that require magnetic fields between 11 and 20 T. Since 1999 the layer critical current density available in long length accelerator quality strand has almost doubled. The microstructural and microchemical factors that are important for high critical current density Nb_3Sn are reviewed. The highest critical current density strands have a Nb_3Sn layer that minimizes chemical and microstructural inho-mogeneities and has a high fraction of the layer close to stoichiometric Sn content. Only the internal Sn process has yielded critical current densities beyond 3000 A/mm~2 at 12 T (4.2 K) and only with interfil-amentary Cu thicknesses that are too low to separate the filaments after the final reaction heat treatment. The result of the reaction heat treatment is to produce a continuous ring of Nb_3Sn from hundreds of Nb or Nb-alloy filaments and thus a major ongoing challenge of Nb_3Sn conductor design is to reduce the effective filament diameter to acceptable levels for intended applications. Recent successful attempts to reduce the cost of alloying the Nb_3Sn for high field application are also examined and the potential for future improvements discussed.
机译:Nb_3Sn是下一代加速器磁体以及NMR和其他需要11至20 T磁场的应用的主要候选材料。自1999年以来,长加速器质量链中可用的层临界电流密度几乎增加了一倍。审查了对高临界电流密度Nb_3Sn重要的微观结构和微观化学因素。最高的临界电流密度线束具有Nb_3Sn层,该层使化学和微观结构的不均一性最小化,并且该层的大部分接近化学计量的Sn含量。只有内部的锡工艺在12 T(4.2 K)时产生的临界电流密度超过3000 A / mm〜2,并且仅在最终反应热处理后,丝间铜的厚度太低而无法分离丝。反应热处理的结果是由数百根Nb或Nb合金丝产生连续的Nb_3Sn环,因此,Nb_3Sn导体设计面临的主要挑战是将有效丝直径减小到预期应用可接受的水平。还研究了最近成功降低Nb_3Sn合金化成本的成功尝试,并讨论了未来改进的潜力。

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