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首页> 外文期刊>Nuclear fusion >Radial transport in the far scrape-off layer of ASDEX Upgrade during L-mode and ELMy H-mode
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Radial transport in the far scrape-off layer of ASDEX Upgrade during L-mode and ELMy H-mode

机译:在L模式和ELMy H模式期间,ASDEX升级的远刮层中的径向传输

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摘要

The radial turbulent particle flux and the Reynolds stress in the scrape-off layer (SOL) of ASDEX Upgrade were investigated for two limited L-mode (low confinement) and one ELMy H-mode (high confinement) discharge. A fast reciprocating probe was used with a probe head containing five Langmuir probes. One of the probe pins was protruding radially above the other pins. The radial electric field component was derived from the difference of the floating potentials of the protruding pin and another pin nearby. The poloidal electric field component was derived from the difference of the floating potentials of two probes on the same poloidal meridian. In both cases, equal electron temperatures on all probe pins had to be assumed. Of the other pins one was biased to ion saturation (-70 V), whereas one was swept to record the current-voltage characteristic. A detailed statistical analysis of the plasma conditions in L- and H-modes and, more specifically, also during and in between type-I edge-localized mode (ELM) events is presented. We found evidence for similarities in the statistics of transport in L-mode, during ELM events and in between ELMs, suggesting that in all three cases the transport is undertaken by blobs and filamentary structures, respectively. During the intervals in between ELMs the blob structures appear to be relatively smaller as compared with the L-mode.
机译:针对两个有限的L模式(低限制)和一个ELMy H模式(高限制)放电,研究了ASDEX Upgrade的刮除层(SOL)中的径向湍流粒子通量和雷诺应力。快速往复式探头与包含五个Langmuir探头的探头一起使用。一根探针在其他探针上方径向突出。径向电场分量由突出的销钉和附近另一个销钉的浮动电位之差得出。极向电场分量来自于同一极向子午线上的两个探针的浮置电位差。在这两种情况下,必须假定所有探针上的电子温度相同。在其他引脚中,一个被偏置到离子饱和度(-70 V),而另一个被扫描以记录电流-电压特性。呈现了在L型和H型模式下,更具体地说,在I型边缘定位模式(ELM)事件期间和之间的血浆状况的详细统计分析。我们发现证据表明L模式下,ELM事件期间以及ELM之间的运输统计相似,这表明在所有这三种情况下,运输都是分别由斑点和丝状结构进行的。在ELM之间的间隔期间,与L模式相比,斑点结构似乎相对较小。

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  • 来源
    《Nuclear fusion》 |2013年第4期|043021.1-043021.14|共14页
  • 作者单位

    Institute for Ion Physics and Applied Physics, Association EURATOM/OEAW, University of Innsbruck, Technikerstr. 25, A-6020 Innsbruck, Austria;

    Association EURATOM-DTU, Technical University of Denmark, Department of Physics, DTU Riso Campus, Roskilde, Denmark;

    Institute for Ion Physics and Applied Physics, Association EURATOM/OEAW, University of Innsbruck, Technikerstr. 25, A-6020 Innsbruck, Austria;

    Association EURATOM-DTU, Technical University of Denmark, Department of Physics, DTU Riso Campus, Roskilde, Denmark;

    Max-Planck-Institute for Plasma Physics, EURATOM Association, D-85748 Garching, Germany;

    Institute for Ion Physics and Applied Physics, Association EURATOM/OEAW, University of Innsbruck, Technikerstr. 25, A-6020 Innsbruck, Austria;

    Max-Planck-Institute for Plasma Physics, EURATOM Association, D-85748 Garching, Germany;

    Association EURATOM-DTU, Technical University of Denmark, Department of Physics, DTU Riso Campus, Roskilde, Denmark;

    Institute for Ion Physics and Applied Physics, Association EURATOM/OEAW, University of Innsbruck, Technikerstr. 25, A-6020 Innsbruck, Austria;

    Institute for Ion Physics and Applied Physics, Association EURATOM/OEAW, University of Innsbruck, Technikerstr. 25, A-6020 Innsbruck, Austria;

    Max-Planck-Institute for Plasma Physics, EURATOM Association, D-85748 Garching, 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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