Strain Optimization for ReBCO High-Temperature Superconducting Stellarator Coils in SIMSOPT

Paul Huslage, Elisabeth J. Paul, Mohammed Haque. Pedro F. Gil, Nicolo Foppiani, Jason Smoniewsk, Eve. V. Stenson
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Abstract

This work provides an optimization mechanism to ensure the compatibility of ReBCO (Rare-earth Barium Copper Oxide) high-temperature superconducting (HTS) tapes with non-planar stellarator coils. ReBCO coils enable higher field strengths and operating temperatures for the magnet systems of future fusion reactors but are sensitive to strain due to their brittle, ceramic functional layer. We have implemented a metric to optimize strain on stellarator coils made from ReBCO superconductors into the stellarator optimization framework \texttt{SIMSOPT} and used it to design new stellarator coil configurations. To ensure structural integrity of coils wound with HTS tape, we introduce a penalty on binormal curvature and torsion along a coil. It can be used to optimize the orientation of the winding path for a given coil filament or to jointly optimize orientation and coil filament. We apply the strain optimization to three cases. For the EPOS (Electrons and Positrons in an Optimized Stellarator) design, we combine the strain penalty with an objective for quasisymmetry into a single-stage optimization; this enables us to find a configuration with excellent quasisymmetry at the smallest possible size compatible with the use of ReBCO tape. For CSX (Columbia Stellarator eXperiment), in addition to HTS strain, we add a penalty to prevent net tape rotation to ease the coil winding process. If the strain is calculated for a coil at reactor scale, we find a considerable variation of the binormal and torsional strain over the cross section of the large winding pack (0.5\,m x 0.5\,m). By exploiting the overall orientation of the winding pack as a degree of freedom, we can reduce binormal and torsional strains below limits for every ReBCO stack.
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SIMSOPT 中 ReBCO 高温超导恒星器线圈的应变优化
这项工作提供了一种优化机制,以确保稀土氧化钡铜高温超导(HTS)带与非平面恒星器线圈的兼容性。ReBCO 线圈可以为未来核聚变反应堆的磁体系统提供更高的场强和工作温度,但由于其陶瓷功能层较脆,因此对应变非常敏感。我们在恒星器优化框架(texttt{SIMSOPT})中采用了一种指标来优化用 ReBCO 超导材料制造的恒星器线圈的应变,并将其用于设计新的恒星器线圈配置。为了确保用 HTS 磁带缠绕的线圈的结构完整性,我们引入了对沿线圈的双法线曲率和扭转的限制。它可用于优化给定线圈丝的绕组路径方向,或联合优化方向和线圈丝。我们将应变优化应用于三种情况。对于 EPOS(优化恒星器中的电子和正电子)设计,我们将应变惩罚与准对称性目标结合到一个单阶段优化中;这使我们能够在与使用 ReBCO 磁带兼容的尽可能小的尺寸内找到具有出色准对称性的配置。对于 CSX(哥伦比亚恒星实验),除了 HTS 应变外,我们还增加了防止净锥度旋转的惩罚,以简化线圈绕制过程。如果按反应堆规模计算线圈的应变,我们会发现在大型绕组的横截面上(0.5 米 x0.5 米),双向应变和扭转应变的变化相当大。通过利用绕组的整体方向作为自由度,我们可以将每个 ReBCO 堆的双法应变和扭转应变降低到极限值以下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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