Paul Huslage, Elisabeth J. Paul, Mohammed Haque. Pedro F. Gil, Nicolo Foppiani, Jason Smoniewsk, Eve. V. Stenson
{"title":"Strain Optimization for ReBCO High-Temperature Superconducting Stellarator Coils in SIMSOPT","authors":"Paul Huslage, Elisabeth J. Paul, Mohammed Haque. Pedro F. Gil, Nicolo Foppiani, Jason Smoniewsk, Eve. V. Stenson","doi":"arxiv-2409.01925","DOIUrl":null,"url":null,"abstract":"This work provides an optimization mechanism to ensure the compatibility of\nReBCO (Rare-earth Barium Copper Oxide) high-temperature superconducting (HTS)\ntapes with non-planar stellarator coils. ReBCO coils enable higher field\nstrengths and operating temperatures for the magnet systems of future fusion\nreactors but are sensitive to strain due to their brittle, ceramic functional\nlayer. We have implemented a metric to optimize strain on stellarator coils\nmade from ReBCO superconductors into the stellarator optimization framework\n\\texttt{SIMSOPT} and used it to design new stellarator coil configurations. To\nensure structural integrity of coils wound with HTS tape, we introduce a\npenalty on binormal curvature and torsion along a coil. It can be used to\noptimize the orientation of the winding path for a given coil filament or to\njointly optimize orientation and coil filament. We apply the strain\noptimization to three cases. For the EPOS (Electrons and Positrons in an\nOptimized Stellarator) design, we combine the strain penalty with an objective\nfor quasisymmetry into a single-stage optimization; this enables us to find a\nconfiguration with excellent quasisymmetry at the smallest possible size\ncompatible with the use of ReBCO tape. For CSX (Columbia Stellarator\neXperiment), in addition to HTS strain, we add a penalty to prevent net tape\nrotation to ease the coil winding process. If the strain is calculated for a\ncoil at reactor scale, we find a considerable variation of the binormal and\ntorsional strain over the cross section of the large winding pack (0.5\\,m x\n0.5\\,m). By exploiting the overall orientation of the winding pack as a degree\nof freedom, we can reduce binormal and torsional strains below limits for every\nReBCO stack.","PeriodicalId":501274,"journal":{"name":"arXiv - PHYS - Plasma Physics","volume":"2 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Plasma Physics","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.01925","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
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.