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ELM-induced transient tungsten melting in the JET divertor

机译:ELM引起的JET偏滤器中的瞬时钨熔化

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摘要

The original goals of the JET ITER-like wall included the study of the impact of an all W divertor on plasma operation (Coenen et al 2013 Nucl. Fusion 53 073043) and fuel retention (Brezinsek et al 2013 Nucl. Fusion 53 083023). ITER has recently decided to install a full-tungsten (W) divertor from the start of operations. One of the key inputs required in support of this decision was the study of the possibility of W melting and melt splashing during transients. Damage of this type can lead to modifications of surface topology which could lead to higher disruption frequency or compromise subsequent plasma operation. Although every effort will be made to avoid leading edges, ITER plasma stored energies are sufficient that transients can drive shallow melting on the top surfaces of components. JET is able to produce ELMs large enough to allow access to transient melting in a regime of relevance to ITER. Transient W melt experiments were performed in JET using a dedicated divertor module and a sequence of I_p = 3.0MA/B_T = 2.9 T H-mode pulses with an input power of P_(IN) = 23 MW, a stored energy of ~6 MJ and regular type Ⅰ ELMs at △W_(ELM) = 0.3 MJ and f_(ELM) ~ 30 Hz. By moving the outer strike point onto a dedicated leading edge in the W divertor the base temperature was raised within ~1 s to a level allowing transient, ELM-driven melting during the subsequent 0.5 s. Such ELMs (δW ~ 300 kJ per ELM) are comparable to mitigated ELMs expected in ITER (Pitts et al 2011 J. Nucl. Mater. 415 (Suppl.) S957-64). Although significant material losses in terms of ejections into the plasma were not observed, there is indirect evidence that some small droplets (~80 μm) were released. Almost 1 mm (~6 mm~3) of W was moved by ~ 150 ELMs within 7 subsequent discharges. The impact on the main plasma parameters was minor and no disruptions occurred. The W-melt gradually moved along the leading edge towards the high-field side, driven by j × B forces. The evaporation rate determined from spectroscopy is 100 times less than expected from steady state melting and is thus consistent only with transient melting during the individual ELMs. Analysis of IR data and spectroscopy together with modelling using the MEMOS code Bazylev et al 2009 J. Nucl. Mater. 390-391 810-13 point to transient melting as the main process. 3D MEMOS simulations on the consequences of multiple ELMs on damage of tungsten castellated armour have been performed. These experiments provide the first experimental evidence for the absence of significant melt splashing at transient events resembling mitigated ELMs on ITER and establish a key experimental benchmark for the MEMOS code.
机译:类JET ITER墙的最初目标包括研究全W偏滤器对等离子体运行的影响(Coenen等人,2013 Nucl。Fusion 53 073043)和燃料滞留(Brezinsek等人,2013 Nucl。Fusion 53 083023)。 ITER最近决定从运营开始就安装全钨(W)分流器。支持该决定的关键输入之一是研究瞬态过程中W熔化和熔体飞溅的可能性。这种类型的损坏会导致表面拓扑结构的改变,从而可能导致更高的破坏频率或损害后续的等离子体操作。尽管将尽一切努力避免出现前沿,但ITER等离子体存储的能量足以使瞬变驱动组件顶部表面的浅层熔化。 JET能够生产足够大的ELM,以允许在与ITER相关的方案中进行瞬时熔化。在JET中使用专用的分频器模块和I_p = 3.0MA / B_T = 2.9 T H模式脉冲序列在输入功率P_(IN)= 23 MW,存储能量约为6 MJ的条件下进行了瞬态W熔体实验常规Ⅰ型ELM在△W_(ELM)= 0.3 MJ和f_(ELM)〜30 Hz。通过将外部触击点移动到W偏滤器的专用前沿上,基本温度在约1 s内升高到允许在随后的0.5 s内由瞬态ELM驱动的熔化的水平。这样的ELM(每ELMδW〜300 kJ)与ITER中预期的减缓ELM相当(Pitts等人2011 J. Nucl。Mater。415(增刊)S957-64)。尽管未观察到喷射到等离子体中的大量材料损失,但间接证据表明释放了一些小液滴(〜80μm)。在随后的7次放电中,大约1毫米(〜6毫米〜3)的W移动了〜150个ELM。对主要血浆参数的影响很小,并且没有发生干扰。 W熔体在j×B力的作用下沿前缘逐渐移向高场侧。由光谱法确定的蒸发速率比稳态熔化的预期蒸发速率低100倍,因此仅与各个ELM中的瞬时熔化相符。使用MEMOS代码Bazylev et al 2009 J. Nucl。进行IR数据和光谱分析以及建模。母校390-391 810-13指出瞬态熔化是主要过程。已经执行了关于多个ELM对钨质齿形装甲的损坏后果的3D MEMOS仿真。这些实验提供了第一个实验证据,表明在瞬态事件下没有明显的熔体飞溅,类似于ITER上减轻的ELM,并为MEMOS代码建立了关键的实验基准。

著录项

  • 来源
    《Nuclear fusion》 |2015年第2期|023010.1-023010.22|共22页
  • 作者单位

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Karlsruhe Institute of Technology, PO Box 3640, D-76021 Karlsruhe, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Institute of Plasma Physics AS CR, Za Slovankou 3, 18221 Praha 8, Czech Republic;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Astrophysics Research Centre, School of Mathematics and Physics, Queen's University, Belfast, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Max-Planck-Institut fuer Plasmaphysik, 85748 Garching, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Division of Fusion Plasma Physics, KTH, SE-10044 Stockholm, Sweden;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Institute of Plasma Physics AS CR, Za Slovankou 3, 18221 Praha 8, Czech Republic;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Laboratory for Plasma Physics, Ecole Royale Militaire - Koninklijke Militaire School, Avenue de la Renaissance 30, 1000 Brussels, Belgium;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Institute of Plasma Physics AS CR, Za Slovankou 3, 18221 Praha 8, Czech Republic;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Max-Planck-Institut fuer Plasmaphysik, 85748 Garching, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Max-Planck-Institut fuer Plasmaphysik, Teilinsitut Greifswald, D-17491 Greifswald, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,ITER Organization, Route de Vinon-sur-Verdon, CS 90 04, 613067 St Paul Lez Durance Cedex, France;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,Max-Planck-Institut fuer Plasmaphysik, 85748 Garching, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 0X14 3DB, UK;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,IEK-4, Forschungszentrum Juelich GmbH, Partner in the Trilateral Euregio Cluster, Juelich, Germany;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France;

    JET-EFDA, Culham Science Centre, Abingdon, Oxon, OX14 3DB, UK,CCFE, Culham Science Centre, Abingdon, Oxon, 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

    fusion; melting; plasma wall interaction; power exhaust;

    机译:融合融化;血浆壁相互作用;动力排气;
  • 入库时间 2022-08-18 00:42:33

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