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ERO modeling and analysis of tungsten erosion and migration from a toroidally symmetric source in the DIII-D divertor

机译:ERO建模和分析DIII-D分流器中钨从环形对称源的腐蚀和迁移

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摘要

A toroidally symmetric tungsten ring inserted in the lower outer divertor of DIII-D was exposed to 25 repeated, attached L-mode shots in reverse- configuration. Radial profiles of the W gross erosion flux inferred in situ from spectroscopic measurements of the WI line (400.9?nm) during these experiments are well reproduced by ERO-D3D simulations of carbon and tungsten impurity erosion, transport and redeposition in the outer divertor region. Tungsten gross erosion is mainly induced by physical sputtering of tungsten by carbon impurities. The outward radial transport of carbon impurities in the outer divertor is shown to be mainly governed by drifts in the sheath region. In addition, the erosion and redeposition of carbon on tungsten, induced by the implantation of carbon into tungsten modeled with the homogeneous mixed material model, increases the effective flux of carbon impurities onto the tungsten ring (carbon recycling on tungsten). The dynamics of carbon implantation in tungsten is shown to be consistent with the plasma shot duration in DIII-D. Moreover, it is shown that the localized deposition of tungsten measured experimentally in the outboard region away from the tungsten ring is caused by the long-range radial transport of tungsten impurities in the outer divertor region induced by the interplay between poloidal and radial drifts. Such experimental measurements might provide direct quantitative estimations of tungsten net erosion. The modeling and analysis of carbon and tungsten erosion and redeposition presented in this paper demonstrates that various physical mechanisms and their synergistic effects need to be taken into account to accurately describe erosion, transport and redeposition of impurities in tokamak divertors.
机译:插入DIII-D下部下偏滤器的环形对称钨环暴露于25个重复的,以反向构型附着的L模式发射中。在这些实验中从WI线(400.9?nm)的光谱测量中就地推断出的W总侵蚀通量的径向分布可以通过ERO-D3D模拟对外部偏滤器区域中碳和钨杂质的侵蚀,迁移和再沉积进行很好的再现。钨的总腐蚀主要是由于碳杂质对钨的物理溅射而引起的。碳杂质在外分流器中的向外径向传输主要受鞘区中的漂移支配。此外,通过将碳注入均质混合材料模型建模的钨中,碳在钨上的腐蚀和再沉积会增加碳杂质在钨环上的有效通量(钨上的碳循环利用)。钨中碳注入的动力学与DIII-D中的等离子注入持续时间一致。此外,已表明,在实验中测得的钨在远离钨环的外侧区域中的局部沉积是由钨杂质在多偏角区域中的长程径向传输所引起的,该迁移是由于多倍体和径向漂移之间的相互作用引起的。这样的实验测量结果可能提供对钨净侵蚀的直接定量估计。本文提出的碳和钨腐蚀和再沉积的建模和分析表明,需要考虑各种物理机制及其协同效应,才能准确地描述托卡马克分流器中杂质的腐蚀,迁移和再沉积。

著录项

  • 来源
    《Nuclear fusion》 |2020年第1期|016018.1-016018.16|共16页
  • 作者

  • 作者单位

    Gen Atom Co San Diego CA 92121 USA;

    Auburn Univ Auburn AL USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Univ Calif San Diego La Jolla CA 92093 USA;

    Sandia Natl Labs POB 5800 Albuquerque NM 87185 USA;

  • 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

    tungsten; erosion; transport; divertor;

    机译:钨侵蚀;运输;偏滤器;
  • 入库时间 2022-08-18 05:21:31

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