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2D thermal analysis for heat transfer from casing to winding pack in JT-60SATF coils

机译:二维热分析,用于JT-60SATF线圈中从壳体到绕组的热传递

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摘要

In the framework of the Broader Approach Agreement, Europe is involved in the design activities for the Japanese TokamakJT-60SA, investigating, among several issues, the operation of the superconducting TF magnets and their subsystems, aimed at the reactor conceptual design definition. In particular, one of the main critical aspects to study is the heating of the conductor due to both direct component of energy deposited by neutrons and by secondary gamma generated during plasma operation, and heat generated by the radiation on casing and transferred to the winding pack. Indeed, the operating temperature and the relevant temperature margin (i.e. the operating safety margin) of the magnet will depend strongly on the heat loads and on the capability of the coolant to remove it. Furthermore, the heat power to the conductor will depend on several aspects, namely the thickness of insulating material, the mass flow rate of helium flowing in the conductors and its thermodynamic properties at operating conditions, and the layout of the superconductors constituting the winding. Moreover, a crucial aspect in the final design will be the presence and position of the casing cooling channels. In this paper a 2D sensitivity analysis of heat transfer from casing to winding pack with respect to cooling channels number and position is presented, based on the reference layout of the magnet. As a result, we evaluated the optimum number and positioning of cooling channels needed, as a trade-off between magnet operating limits and available cryogenic power and if, at limit, they could be even neglected in normal operation, keeping dwell-time within reasonable values.
机译:在《广泛途径协议》的框架内,欧洲参与了日本TokamakJT-60SA的设计活动,其中包括针对反应堆概念设计定义的超导TF磁体及其子系统的运行研究。特别地,要研究的主要关键方面之一是导体的加热,这是由于中子和等离子运行期间产生的次级伽马所沉积的能量的直接成分,以及由壳体上的辐射所产生并传递到绕组组的热量。实际上,磁体的工作温度和相关的温度裕度(即工作安全裕度)将在很大程度上取决于热负荷以及冷却剂将其去除的能力。此外,对导体的热功率将取决于几个方面,即绝缘材料的厚度,在导体中流动的氦的质量流速及其在工作条件下的热力学性质以及构成绕组的超导体的布局。此外,最终设计中的关键方面是机壳冷却通道的存在和位置。在本文中,基于磁体的参考布局,针对冷却通道的数量和位置,提出了从壳体到绕组组件的热传递的二维灵敏度分析。结果,我们评估了所需的冷却通道的最佳数量和位置,以此作为磁体运行极限与可用低温功率之间的权衡,如果在正常运行中甚至可以忽略极限,则将停留时间保持在合理范围内价值观。

著录项

  • 来源
    《Fusion Engineering and Design》 |2009年第11期|1531-1538|共8页
  • 作者单位

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-ENEA, C.R. Frascati, Via E. Fermi, 45, IT-00044 Frascati, RM, Italy;

    Association EURATOM-CEA, DRFC, F-13108 Saint Paul lez Durance, France;

    Association EURATOM-CEA, DRFC, F-13108 Saint Paul lez Durance, France;

    Association EURATOM-CEA, DRFC, F-13108 Saint Paul lez Durance, France;

    JT-60SA European Home Team, 85748 Carchingbei Munchen. Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    JT-60SA; magnets; nuclear heating; superconducting cables; cooling channels;

    机译:JT-60SA;磁铁核加热超导电缆;冷却通道;

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