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Critical current test results of 13 T-46 kA Nb_3Al cable-in-conduit conductor

机译:13 T-46 kA Nb_3Al电缆导管导体的关键电流测试结果

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In the framework of ITER-EDA, a 13 T-46 kA Nb_3Al conductor with stainless steel jacket has been developed in order to demonstrate applicability of an Nb_3Al conductor with react-and-wind technique to ITER-TF coils. Using a 3.5 m sample consisting of a pair of conductors with 0 percent and 0.4 percent bending strain, the critical current performances of the Nb_3Al conductors were studied to verify that the conductor achieves the expected performance and the bending strain of 0.4 percent does not originate degradation. The critical currents were measured at background magnetic fields of 7, 9, 10 and 11 T at temperatures from 6 to 9 K. The expected critical currents were evaluated taking into account the variation of the strain in the cross-section due to the bending strain as well as self-field and non-uniform current distribution as results of an imbalance in the joint resistance and inductances. The calculation results indicate that the current distribution is almost uniform and the experimental results showed good agreement with the expected critical currents. Accordingly, we can conclude that the fabrication process of this conductor is appropriate and the react-and-wind technique using the Nb_3Al conductor is applicable to ITER-TF coils. In addition, the critical current of the Nb_3Al conductor is expected to be 108 kA at 13 T and 4.5 K, resulting in a sufficient margin against the nominal current of 46 kA. Furthermore, it was found that the decrease in the critical current by thermal strain can be made small by applying the bending strain to the conductor so as to reduce the compressive strain at higher fields, i.e. inner side of the coil, in the conductor cross-section.
机译:在ITER-EDA的框架中,已开发出一种带有不锈钢护套的13 T-46 kA Nb_3Al导体,以证明Nb_3Al导体采用反吹技术应用于ITER-TF线圈。使用3.5 m的样品,该样品由一对弯曲应变分别为0%和0.4%的导体组成,研究了Nb_3Al导体的临界电流性能,以验证该导体达到了预期的性能,并且0.4%的弯曲应变不会引起性能下降。在7至9、9、10和11 T的本底磁场中,在6至9 K的温度下测量了临界电流。评估了预期的临界电流,考虑了由于弯曲应变而引起的横截面应变变化。以及自电场和非均匀电流分布,这是接头电阻和电感不平衡的结果。计算结果表明,电流分布几乎均匀,实验结果与预期的临界电流吻合良好。因此,我们可以得出结论,该导体的制造工艺是适当的,并且使用Nb_3Al导体的反吹技术适用于ITER-TF线圈。此外,在13 T和4.5 K时,Nb_3Al导体的临界电流预计为108 kA,从而相对于46 kA的标称电流有足够的余量。此外,已经发现,可以通过向导体施加弯曲应变来减小由于热应变引起的临界电流的减小,从而减小导体交叉处在较高磁场(即线圈的内侧)处的压缩应变。部分。

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