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Design of JET ELM control coils for operation at 350℃

机译:JET ELM控制线圈在350℃下工作的设计

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摘要

A study has confirmed the feasibility of designing, fabricating and installing resonant magnetic field perturbation (RMP) coils in JET' with the objective of controlling edge localized modes (ELM). A system of two rows of in-vessel coils, above the machine midplane, has been chosen as it not only can investigate the physics of and achieve the empirical criteria for ELM suppression, but also permits variation of the spectra allowing for comparison with other experiments. These coils present several engineering challenges. Conditions in JET necessitate the installation of these coils via remote handling, which will impose weight, dimensional and logistical limitations. And while the encased coils are designed to be conventionally wound and bonded, they will not have the usual benefit of active cooling. Accordingly, coil temperatures are expected to reach 350℃ during bakeout as well as during plasma operations. These elevated temperatures are beyond the safe operating limits of conventional OFHC copper and the epoxies that bond and insulate the turns of typical coils. This has necessitated the use of an alternative copper alloy conductor C18150 (CuCrZr). More importantly, an alternative to epoxy had to be found. An R&D program was initiated to find the best available insulating and bonding material. The search included polyimides and ceramic polymers. The scope and status of this R&D program, as well as the critical engineering issues encountered to date are reviewed and discussed.
机译:一项研究已经证实了在JET'中设计,制造和安装共振磁场扰动(RMP)线圈的可行性,其目的是控制边缘局部模式(ELM)。选择了在机器中间平面上方的两排船内线圈系统,因为它不仅可以研究ELM的物理特性并达到经验标准,而且还允许光谱变化以与其他实验进行比较。这些线圈提出了一些工程挑战。 JET中的条件要求必须通过远程操作来安装这些线圈,这会带来重量,尺寸和后勤方面的限制。并且,尽管将被包封的线圈设计成按常规方式缠绕和粘结,但它们将不会具有主动冷却的通常优势。因此,在烘烤以及等离子操作期间,线圈温度有望达到350℃。这些升高的温度超出了常规OFHC铜和粘结并隔离典型线圈匝的环氧树脂的安全操作极限。因此,必须使用替代铜合金导体C18150(CuCrZr)。更重要的是,必须找到环氧树脂的替代品。发起了一项研发计划,以寻找最佳的绝缘和粘合材料。搜索包括聚酰亚胺和陶瓷聚合物。审查和讨论了此R&D计划的范围和状态,以及迄今为止遇到的关键工程问题。

著录项

  • 来源
    《Fusion Engineering and Design》 |2011年第11期|p.1980-1983|共4页
  • 作者单位

    Princeton Plasma Physics Laboratory, James Forrestal Campus, P.O. Box 451. Princeton, NJ 08543. USA;

    Euratom/CCFE Fusion Association, Culham Science Centre, Abingdon 0X14 3DB. UK;

    Princeton Plasma Physics Laboratory, James Forrestal Campus, P.O. Box 451. Princeton, NJ 08543. USA;

    Oak Ridge National Laboratory. Oak Ridge, TN 37831. USA;

    Princeton Plasma Physics Laboratory, James Forrestal Campus, P.O. Box 451. Princeton, NJ 08543. USA;

    EFDA-CSU Culham, Culham Science Centre, Abingdon 0X14 3DB, UK;

    Princeton Plasma Physics Laboratory, James Forrestal Campus, P.O. Box 451. Princeton, NJ 08543. USA;

    Oxford Technologies Ltd.. 7 Nuffleld Way. Abingdon 0X14 1RJ. UK;

    Oxford Technologies Ltd.. 7 Nuffleld Way. Abingdon 0X14 1RJ. UK;

    Euratom/CCFE Fusion Association, Culham Science Centre, Abingdon 0X14 3DB. UK;

  • 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

    JET; ELM coils; RMP coils; polyimide; ceramic polymer;

    机译:喷射;ELM线圈;RMP线圈;聚酰亚胺陶瓷聚合物;

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