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Stabilization of energetic-ion driven toroidal Alfven eigenmode by energetic electrons in tokamak plasmas

机译:通过精力电子在托卡马克等离子体中稳定能量离子驱动环形alfven eIgenmode

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摘要

Energetic electron effects on an energetic-ion driven toroidal Alfven eigenmode (TAE) are investigated via hybrid simulations of an MHD fluid interacting with energetic particles. Both energetic electrons and energetic ions described by drift-kinetic equations are included in the present work. It is found that the TAE can be effectively stabilized by off-axis peaked energetic electrons which are located near the mode center, while the centrally peaked energetic electrons fail to stabilize the mode. It is confirmed that the spatially localized pressure profile of energetic electrons causes the stabilization of TAE. The stabilized TAE has a more localized mode structure accompanied by a significant reduction in the energetic ion driving rate. The small change of mode frequency and dissipation rate indicate the stabilization mechanism is different from the so-called pressure gradient stabilization that drives the TAE into continuum. The results suggest that the strong plasma non-uniformity induced by the energetic electron beta profile may be responsible for the change of mode structure. It is also found that this stabilizing effect is more effective for a high-n TAE. Moreover, it is numerically verified that the positive (negative) pressure gradient at the TAE center will increase (decrease) the mode frequency. The wave-particle interactions are also analysed for a case with energetic electrons peaked at the inner side of the TAE center. It is found that the power transfer to a resonant barely trapped energetic electron, which taps energy from the wave, can be comparable to the power transfer from a resonant energetic ion. This suggests that if a sufficient number of resonant barely trapped electrons are present, they might stabilize energetic-ion driven TAE through the wave-particle interaction.
机译:通过与能量颗粒相互作用的MHD流体的混合模拟,研究了对能量离子驱动环形alfven eIgenmode(TAE)的能量电子效应。通过漂移动力学方程描述的能量电子和能量离子包括在本工作中。发现TAE可以通过位于模式中心附近的轴峰值峰值能量电子有效地稳定,而中心峰值的能量电子未能稳定模式。确认,活性电子的空间局部压力曲线导致TAE的稳定性。稳定的TAE具有更高的局部模式结构,伴随着能量离子驾驶率的显着降低。模式频率和耗散速率的小变化表明稳定机制与所谓的压力梯度稳定性不同,使得TAE变成连续体。结果表明,由能量电子β谱诱导的强等离子体不均匀性可能负责模式结构的变化。还发现,这种稳定效果对高NAE更有效。此外,在数量上验证了TAE中心的正(负)压力梯度将增加(减小)模式频率。还分析了波粒子相互作用,用于高能量电子在跆拳道的内侧峰值的情况。发现电力转移到谐振的刚性捕获的能量电子,其从波中抽出能量,可以与来自谐振能量离子的功率传递相当。这表明,如果存在足够数量的谐振刚性捕获的电子,则它们可以通过波粒子相互作用稳定高能离子驱动的TAE。

著录项

  • 来源
    《Nuclear fusion》 |2020年第10期|106004.1-106004.14|共14页
  • 作者单位

    Key Laboratory of Materials Modification by Laser Ion and Electron Beams (Ministry of Education) School of Physics Dalian University of Technology Dalian 116024 China National Institute for Fusion Science National Institutes of Natural Sciences Toki 509-5292 Japan;

    National Institute for Fusion Science National Institutes of Natural Sciences Toki 509-5292 Japan;

    National Institute for Fusion Science National Institutes of Natural Sciences Toki 509-5292 Japan;

    Key Laboratory of Materials Modification by Laser Ion and Electron Beams (Ministry of Education) School of Physics Dalian University of Technology Dalian 116024 China;

    National Institute for Fusion Science National Institutes of Natural Sciences Toki 509-5292 Japan;

  • 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

    energetic electron; energetic ion; toroidal Alfven eigenmode; Alfven eigenmode control; wave-particle interaction;

    机译:精力充沛的电子;精力充沛的离子;环形Alfven eigenmode;Alfven eigenmode控制;波粒子相互作用;

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