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Influence of rotating resonant magnetic perturbation on the plasma radial electric field on TEXTOR

机译:旋转共振磁扰动对TEXTOR等离子体径向电场的影响

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摘要

The plasma radial electric field (E_r) has been changed by applying an n = 1 counter-rotating resonant magnetic perturbation (RMP) field with a frequency of 5 kHz in ohmic plasmas on TEXTOR. The change in the E_r (ΔE_r) is negative, different from the observations in previous experiments where ΔE_r was always positive when a static or low frequency (~1 kHz) rotating RMP field was applied in the plasma on TEXTOR. The E_r profile in the present experiment shows two distinct evolution stages. In the first stage, ΔE_r from the q = 2 to q = 3 surfaces have a similar decrease as the amplitude of the 5 kHz counter-rotating field increases. In the second stage, the decrease rate of AE_r is faster for the positions closer to the q = 2 surface. As a result, the E_r around the q = 2 surface has a significant change in this second stage while no change of E_r is observed near the q = 3 surface even after the excitation of an m = 2/1 tearing mode. A reduced MHD code, 4FC, has been used to model the experiment. Two simulations have been performed. The first one is by applying a single 2/1 perturbation while both, 2/1 and 3/1 perturbations, have been applied in the second simulation. The result from the second simulation is qualitatively consistent with the experimental observations while the first simulation including only a single 2/1 perturbation cannot explain the evolution of the E_r profile in the second stage as observed in the experiment.
机译:等离子体径向电场(E_r)已通过在TEXTOR上的欧姆等离子体中施加n = 1反向旋转共振磁扰(RMP)场(频率为5 kHz)进行了更改。 E_r(ΔE_r)的变化为负,这与先前实验中观察到的不同,在静态或低频(〜1 kHz)旋转RMP场施加于TEXTOR的等离子体中,ΔE_r始终为正。本实验中的E_r曲线显示了两个不同的演化阶段。在第一阶段,随着5 kHz反向旋转磁场的幅度增加,从q = 2到q = 3的表面的ΔE_r具有类似的减小。在第二阶段中,AE_r的降低速率在靠近q = 2曲面的位置更快。结果,在q = 2表面附近的E_r在第二阶段发生了显着变化,而即使在激发m / n = 2/1撕裂模式之后,在q = 3表面附近也未观察到E_r变化。简化的MHD代码4FC已用于对实验进行建模。已经执行了两个模拟。第一个是通过应用单个2/1扰动,而第二个仿真中同时应用了2/1和3/1扰动。第二个模拟的结果在质量上与实验观察结果一致,而第一个模拟仅包含单个2/1扰动不能解释实验中观察到的第二阶段E_r轮廓的演变。

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  • 来源
    《Nuclear fusion》 |2012年第7期|p.074013.1-074013.9|共9页
  • 作者单位

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany,Institute of Plasma Physics, Chinese Academy of Sciences, PO Box 1126, Hefei, Anhui 230031, People's Republic of China;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany,Department of Applied Physics, Ghent University, 9000 Ghent, Belgium;

    Association EURATOM/CEA, CEA Cadarache, F-13108, St Paul-lez-Durance, France;

    Association EURATOM/CEA, CEA Cadarache, F-13108, St Paul-lez-Durance, France;

    Institute for Fusion Studies, The University of Texas, Austin, TX 78712, USA;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany,Institute of Plasma Physics, Chinese Academy of Sciences, PO Box 1126, Hefei, Anhui 230031, People's Republic of China;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany;

    Institute of Energy and Climate Research-Plasma Physics, Forchungszentrum Juelich GmbH, Association EURATOM-FZJ, Juelich, Germany;

  • 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);
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  • 正文语种 eng
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