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Thermo-Mechanics of the Hierarchical Structure of ITER Superconducting Cables

机译:ITER超导电缆分层结构的热力学

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Recent experimental tests on the Model Coils have shown that the behavior of ${rm Nb}_{3}{rm Sn}$ based cables is not as good as expected on the basis of the characteristics evaluated for the uncabled strands. This degradation of the cable performance seems to be due to various factors, among which the strain state of the filaments due to bending and contact phenomena inside the cable. After these results it was decided that high performance strands will be used for ITER magnets, even if they have never been tested on a full size cable. Therefore the capability of evaluating the coil performance from the strands characteristics becomes a crucial point in the Research and Development (Ru00026;D) activity. Recently some extrapolations were attempted, but the mechanical model used is rather simplified and needs some fitting parameters which are not known a priori. In this work we present a thermo-mechanical model suitably developed to evaluate the strain state of a ${rm Nb}_{3}{rm Sn}$ strand inside a superconducting (SC) cable. It is based on the idea of multiscale modeling, starting from a enriched formulation of the beam kinematics to take into account the fibrous nature of a multifilamentary strand. The method consists in performing a successive substitution of discrete models involving many beams with a single equivalent beam model, which behavior is identified from the preceding cabling stage. This recursive substitution allows to perform the analysis within a reasonable computational time. Once the stress and strain fields are obtained at the higher level, a suitable unsmearing technique gives the strain till the first level, on the scale of the SC filament. The method is applied to the real case of the ${rm 3}times{rm 3}$ and ${rm 3}times{rm 3}times{rm -5}$ CICC sub-size samples tested at FZK in Germany.
机译:最近在模型线圈上进行的实验测试表明,基于对未缆线股评估的特性,基于$ {rm Nb} _ {3} {rm Sn} $的电缆的性能不如预期。电缆性能的这种下降似乎是由于各种因素引起的,其中,由于电缆内部的弯曲和接触现象而引起的细丝的应变状态。得到这些结果后,决定将高性能绞线用于ITER磁体,即使从未在全尺寸电缆上进行过测试。因此,根据钢绞线特性评估线圈性能的能力成为研发活动(Ru00026; D)的关键点。最近尝试了一些外推法,但是所使用的机械模型相当简化,并且需要一些先验未知的拟合参数。在这项工作中,我们提出了一种热力学模型,该模型经过适当开发,可以评估超导(SC)电缆中的$ {rm Nb} _ {3} {rm Sn} $绞线的应变状态。它基于多尺度建模的思想,从束运动学的丰富公式出发,考虑到多丝股的纤维性质。该方法包括用单个等效波束模型连续执行涉及多个波束的离散模型的替换,该行为从先前的布线阶段确定。该递归替换允许在合理的计算时间内执行分析。一旦在较高的水平上获得了应力和应变场,就可以采用一种合适的无拖尾技术,使应变达到SC丝级的第一水平。该方法适用于在德国FZK测试的$ {rm 3}倍{rm 3} $和$ {rm 3}倍{rm 3}倍{rm -5} $的实际情况。

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