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Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment

机译:国家球形圆环实验中边缘定位模式循环中基座稳定性和湍流特性的研究进展

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摘要

Progress in characterizing the edge stability and properties of the microinstabilities responsible for enhanced transport in the pedestal region is reported. The stability of the pedestal is characterized in high performance discharges on National Spherical Torus Experiment. These high performance plasmas are found to be ideal kink-peeling and ideal infinite-n ballooning unstable prior to the onset of edge-localized modes (ELM). The spatial structure of turbulence present during an ELM cycle in the pedestal region indicates poloidal spatial scales k_θρ_i~(ped) ~ 0.2 propagating in the ion diamagnetic drift direction at the pedestal top, and radial spatial scales k_rρ_i~(ped) ~ 0.7. These propagating spatial scales are found to be poloidally elongated and consistent with ion-scale microturbulence. Both global and local gyrokinetic simulations have been performed to identify the microturbulence structure. The local gyrokinetic analysis indicates the presence of a linearly unstable hybrid kinetic ballooning mode and trapped electron mode with spatial scale and propagation direction consistent with experimental observations. In the global gyrokinetic analysis, the nonlinearly saturated potential fluctuations show radial and poloidal correlation lengths in agreement with experimental density fluctuation correlation length measurements.
机译:据报道,在表征边缘稳定性和微不稳定性的特性方面取得了进展,这些不稳定性是导致基架区域中运输增强的原因。基座的稳定性在国家球形圆环实验中具有高性能放电的特征。发现这些高性能等离子体在边缘定位模式(ELM)出现之前是理想的扭结剥离和理想的无限n气球膨胀。在基座区域的ELM循环期间存在的湍流的空间结构表明,沿离子抗磁漂移方向在基座顶部传播的倍性空间尺度k_θρ_i〜(ped)〜0.2,而径向空间尺度k_rρ_i〜(ped)〜0.7。这些传播的空间尺度被发现是倍体延长的,并且与离子尺度的微湍流相一致。已经进行了全局和局部陀螺动力学模拟以识别微湍流结构。局部回旋动力学分析表明存在线性不稳定的混合动力气球膨胀模式和捕获的电子模式,其空间尺度和传播方向与实验观察一致。在整体陀螺动力学分析中,非线性饱和电势波动显示出径向和极化相关长度,与实验密度波动相关长度的测量结果一致。

著录项

  • 来源
    《Nuclear fusion》 |2013年第9期|093026.1-093026.10|共10页
  • 作者单位

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Oak Ridge National Laboratory, Oak Ridge, TN, USA;

    Max-Planck-Institut fur Plasmaphysik, Garching, Germany;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    General Atomics, San Diego, CA, USA;

    General Atomics, San Diego, CA, USA;

    Department of Engineering Physics, University of" Wisconsin, Madison, WI, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton University, NJ, USA;

    Applied Physics Department, Columbia University, New York, NY, 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);
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  • 正文语种 eng
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