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Spatial Periodic Bending and Critical Current of Bronze and PIT ${rm Nb}_{3}{rm Sn}$ Strands in a Steel Tube

机译:钢管中青铜和PIT $ {rm Nb} _ {3} {rm Sn} $钢绞线的空间周期性弯曲和临界电流

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We measured the influence of spatial periodic bending on the critical current $(I_{rm c})$ of ${rm Nb}_{3}{rm Sn}$ strands that were tightly swaged in a steel tube, imposing a compressive strain, in attempt to simulate the conditions representative for an ITER (International Thermonuclear Experimental Reactor) cable in conduit conductor (CICC). The huge electromagnetic transverse force causes both transverse compressive strain in the strand crossover contacts and bending strain on top of the strain induced by the differential thermal contraction of the various conductor components. For a CICC with stainless steel or Incoloy conduit, the effect of the thermal cool-down strain on the reduction in performance due to periodic bending strain is unknown. We performed periodic bending tests in the TARSIS facility (Test ARrangement for Strain Influence on Strands) on three samples. The degradation of the $I_{rm c}$ due to bending appears to be much more severe for a strand swaged in a stainless steel tube than straightforward simulated by available models assuming simply axial strain dependency. It is confirmed by AC loss measurements that the extra degradation can not be attributed to a change in matrix transverse resistivity, possibly affecting the current transfer length, so we believe this is related to the three-dimensional strain state of the ${rm Nb}_{3}{rm Sn}$ layer.
机译:我们测量了空间周期性弯曲对在钢管中紧锻的$ {rm Nb} _ {3} {rm Sn} $股线的临界电流$(I_ {rm c})$的影响,施加了压缩应变,以模拟代表导管导体(CICC)中的ITER(国际热核实验堆)电缆的条件。巨大的电磁横向力既会引起绞线交叉接触中的横向压缩应变,又会导致由各种导体组件的不同热收缩引起的应变之上的弯曲应变。对于带有不锈钢或Incoloy导管的CICC,由于周期性的弯曲应变,热冷却应变对性能降低的影响尚不清楚。我们在TARSIS设施中对三个样本进行了定期弯曲测试(应变对钢绞线的影响的测试装置)。对于在不锈钢管中型锻的钢绞线,由于弯曲引起的$ I_ {rm c} $的退化要比仅假设轴向应变相关性的可用模型直接模拟的情况严重得多。交流损耗测量结果证实,额外的退化不能归因于基体横向电阻率的变化,可能会影响电流传输长度,因此我们认为这与$ {rm Nb}的三维应变状态有关。 _ {3} {rm Sn} $层。

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