Investigating the effect of rolling deformation on the electro-mechanical limits of Nb3Sn wires produced by RRP® and PIT technologies

T Bagni, C Calzolaio, G Bovone, J Ferradas-Troitino, C Barth, A Ballarino and C Senatore
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Abstract

Future high-field magnets for particle accelerators hinge on the crucial development of advanced Nb3Sn wires engineered to withstand the large stresses generated during magnet assembly and operation. The superconducting properties of Nb3Sn enable the design of compact accelerator-quality magnets above 10 T, but at the same time the brittleness and strain sensitivity of the material impose careful consideration of the mechanical limits. In addition, accelerator magnets are wound using Rutherford cables and the cabling process generates deformations in the wire that can affect its electro-mechanical performance. This paper reports on the impact of the rolling deformation on the transverse stress tolerance of high-performance restacked-rod-process (RRP®) and powder-in-tube (PIT) Nb3Sn wires. Rolling deformation was used to mimic the effect of cabling on the wire shape. Deformed samples were compared to reference round wires in term of stress dependence and irreversible limit (σirr) of the critical current (Ic) under transverse compressive loads up to 240 MPa. Experiments were performed at 4.2 K, 19 T, on resin-impregnated single wires that imitate the operating conditions in a Rutherford cable of an accelerator magnet. The results show that rolling deformation has a detrimental effect on the initial Ic of PIT wires, but it does not influence the behavior of the wire under stresses above 70 MPa. On the other hand, the deformation of RRP® wires leads to an improved σirr without affecting the initial Ic. Additionally, a 2D-mechanical finite element method model of the RRP® wire was developed to investigate the impact of the wire geometry on the plastic deformation of the copper matrix, which induces residual stresses on Nb3Sn and is the main cause for the permanent reduction of Ic. Based on the model results, an alternative layout of the wire was proposed that improves its stress tolerance without affecting its electrical transport properties.
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研究轧制变形对通过 RRP® 和 PIT 技术生产的 Nb3Sn 金属丝的机电极限的影响
未来用于粒子加速器的高磁场磁体取决于先进 Nb3Sn 线材的关键开发,这些线材必须能够承受磁体组装和运行过程中产生的巨大应力。Nb3Sn 的超导特性使我们能够设计出 10 T 以上的紧凑型加速器级磁体,但与此同时,这种材料的脆性和应变敏感性也要求我们仔细考虑其机械限制。此外,加速器磁体是使用卢瑟福线缆绕制的,而绕线过程会使线缆产生变形,从而影响其电子机械性能。本文报告了轧制变形对高性能重组棒工艺 (RRP®) 和管中粉末 (PIT) Nb3Sn 线材横向应力耐受性的影响。轧制变形用于模拟布线对金属丝形状的影响。在高达 240 兆帕的横向压缩载荷下,将变形样品与参考圆线进行了应力依赖性和临界电流 (Ic) 不可逆极限 (σirr)方面的比较。实验在 4.2 K、19 T 条件下对树脂浸渍单线进行,模仿加速器磁体卢瑟福电缆的工作条件。结果表明,滚动变形对 PIT 线材的初始 Ic 有不利影响,但在 70 兆帕以上的应力下不会影响线材的行为。另一方面,RRP® 线材的变形可改善 σirr 而不影响初始 Ic。此外,还开发了 RRP® 金属丝的二维机械有限元法模型,以研究金属丝几何形状对铜基体塑性变形的影响,塑性变形会在 Nb3Sn 上产生残余应力,是导致 Ic 永久性降低的主要原因。根据模型结果,提出了另一种线材布局方案,在不影响其电气传输特性的情况下提高了线材的应力耐受性。
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