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Effects of plasma flow velocity on melt-layer splashing and erosion during plasma instabilities

机译:等离子体不稳定过程中等离子体流速对熔体层飞溅和腐蚀的影响

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摘要

It is recognized both experimentally and computationally that the main damage of divertor in fusion devices such as ITER could be due to melting of metallic plasma facing components such as tungsten developed during plasma instabilities. Macroscopic melt motion and splashing with ejection of molten droplets into plasma are major concern. The computational modelling of uncoupled/coupled plasma-melt flows is carried out using the developed VoF-MHD model. The goal of this research is to study the effect of viscous plasma flowing with a velocity of 0-5 km s~(-1) on the melt stability. Development of running waves with large wavelengths is observed on the melt surface in the absence of plasma impact. The magnetic field of 5 T that is parallel to the direction of melt motion completely damps these surface waves. When the magnetic field is perpendicular to the direction of melt motion, the small-amplitude standing waves are formed. The viscous plasma streaming with ~0.1-5 km s~(-1) over the melt surface develops waves that are not damped by the magnetic field which is either parallel or normal to the direction of melt motion. It is observed that the surface waves are generated much faster at higher plasma speeds and their wavelength decreases accordingly. The high-speed viscous plasma flowing with ~5km s~(-1) produces small melt ripples that break up into droplets carried away by the plasma wind. This is a major concern for magnetic fusion as a reliable source of energy production.
机译:从实验和计算上都认识到,聚变设备(如ITER)中偏滤器的主要损坏可能是由于面对金属的等离子体等部件(如在等离子体不稳定期间产生的钨)的熔化所致。宏观的熔体运动和飞溅的熔滴喷射到等离子体中是主要关注的问题。使用开发的VoF-MHD模型对未耦合/耦合的等离子熔体流动进行了计算建模。这项研究的目的是研究粘性等离子体以0-5 km s〜(-1)的速度流动对熔体稳定性的影响。在没有等离子体冲击的情况下,在熔体表面观察到大波长运行波的发展。平行于熔体运动方向的5 T磁场完全衰减了这些表面波。当磁场垂直于熔体运动的方向时,会形成小幅度的驻波。在熔体表面以〜0.1-5 km s〜(-1)流动的粘性等离子体流产生的波不受平行或垂直于熔体运动方向的磁场衰减。可以看出,在较高的等离子体速度下,表面波的产生要快得多,并且其波长也会相应减小。 〜5km s〜(-1)的高速粘性等离子体流产生小的熔体波纹,这些波纹会分解成等离子风带走的液滴。对于作为能量产生的可靠来源的磁聚变来说,这是一个主要问题。

著录项

  • 来源
    《Nuclear fusion》 |2014年第3期|033008.1-033008.8|共8页
  • 作者

    G. Miloshevsky; A. Hassanein;

  • 作者单位

    Center for Materials under Extreme Environment, School of Nuclear Engineering, Purdue University, West Lafayette, IN 47907, USA;

    Center for Materials under Extreme Environment, School of Nuclear Engineering, Purdue University, West Lafayette, IN 47907, 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

    plasma facing components; plasma flow; melt layer; splashing; droplets;

    机译:等离子组件血浆流熔体层溅飞沫;
  • 入库时间 2022-08-18 00:42:52

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