Nb3Sn三螺旋结构在液氮温度下的疲劳行为和损伤机制

IF 5.6 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Lang Jiang, Zhiwei Zhang, Zhen Yu, Jun Zhou, Huadong Yong, Xingyi Zhang
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引用次数: 0

摘要

Nb3Sn三螺旋结构是ITER磁体超导电缆中的基本结构,在极端环境中经历长时间的疲劳载荷,导致严重的损伤退化。本文通过在液氮温度下的应变循环疲劳实验,研究了Nb3Sn三螺旋结构的疲劳行为。结果表明,短螺距的Nb3Sn三螺旋结构具有比长螺距更高的抗疲劳损伤性能,如疲劳寿命更长、损伤退化较慢、能量耗散较小。同时,建立了损伤演化的理论模型,揭示了螺距对三螺旋结构疲劳性能的影响,并通过现有的实验数据进行了验证。此外,可以看出,具有较短螺距的三螺旋结构中的Nb3Sn超导线具有较大的螺旋结构伸长率和较小的循环变形,这可以被认为是三螺旋结构在应变循环过程中具有更好疲劳损伤性能的主要机制。这些发现为ITER磁体超导电缆中Nb3Sn三螺旋结构的疲劳性能和损伤机制提供了更好的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fatigue behaviors and damage mechanisms for Nb3Sn triple-helical structure at liquid nitrogen temperature

Nb3Sn triple-helical structure is the elementary structure in the superconducting cable of ITER magnets and undergoes prolonged fatigue loading in extreme environments leading to serious damage degradation. In this paper, the fatigue behaviors of the Nb3Sn triple-helical structure have been investigated by the strain cycling fatigue experiments at liquid nitrogen temperature. The results indicate that Nb3Sn triple-helical structures with short twist-pitches possess excellent fatigue damage resistance than that of long twist-pitches, such as longer fatigue life, slower damage degradation, and smaller energy dissipation. Meanwhile, a theoretical model of damage evolution has been established to reveal the effects of twist-pitches on fatigue properties for triple-helical structures, which is also validated by the present experimental data. Furthermore, one can see that the Nb3Sn superconducting wires in a triple-helical structure with the shorter twist-pitches have a larger elongation of helical structure and less cyclic deformation, which can be considered as the main mechanism of better fatigue damage properties for the triple-helical structures during the strain cycling processes. These findings provide a better understanding of the fatigue properties and damage mechanisms for Nb3Sn triple-helical structures in superconducting cables of ITER magnets.

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