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Generation and transport of runaway electrons during sawteeth crash in the ADITYA tokamak

机译:ADITYA托卡马克锯齿碰撞过程中失控电子的产生和传输

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摘要

Sawteeth oscillations are commonly observed in temporal profiles of temperatures in almost all tokamaks including ADITYA tokamak. In typical discharges of ADITYA, bursts of hard x-ray (HXR) due to interaction of runaway electrons (RE) with limiter, during sawteeth crash are regularly observed in initial period of plasma current flat-top. These HXR bursts are highly correlated with the sawteeth-crash in time, which suggests that sawtooth crash generates these runaway electrons, which then yield the HXR bursts due to their interaction with the limiter. The electric field induced in the toroidal direction due to change in poloidal magnetic field during the sawtooth crash is found to be higher than the critical electric field required for runaway generation. This induced toroidal electric field during each sawtooth crash generates the REs, which then travel to the limiter to give a HXR burst. Furthermore, it is observed that in the later period of the plasma current flat-top of the discharge, no HXR bursts accompany the sawtooth crash. This indicates different transport mechanisms of runaway electrons in the initial and later parts of plasma current flat-top. Further investigation revealed that the overlapping inflated magnetic islands seem to be responsible for loss of sawtooth-crash generated REs and subsequent HXR bursts in the initial phase. Whereas no overlapping of magnetic islands and presence of good magnetic surfaces in-between the islands restricts the transportation of REs leading to absence of correlated HXR bursts in the later phase of plasma current flat-top.
机译:在包括ADITYA托卡马克在内的几乎所有托卡马克中,温度的时间分布中通常都观察到锯齿状振动。在典型的ADITYA放电中,在等离子电流平顶初期定期观察到在锯齿碰撞期间由于失控电子(RE)与限幅器相互作用而引起的硬X射线(HXR)爆发。这些HXR脉冲与锯齿波碰撞在时间上高度相关,这表明锯齿波碰撞会产生这些失控的电子,然后由于它们与限幅器的相互作用而产生HXR脉冲。发现在锯齿形碰撞期间由于极磁场的变化而在环形方向上感应的电场高于产生失控所需的临界电场。在每次锯齿形碰撞期间,这种感应的环形电场都会产生RE,然后将RE运至限幅器以产生HXR脉冲。此外,观察到在放电的等离子电流的平顶的后期,没有HXR突发伴随锯齿碰撞。这表明在等离子体电流平顶的开始和之后部分中,失控电子的不同传输机制。进一步的研究表明,重叠的膨胀磁岛似乎是造成锯齿碰撞产生的稀土元素损失以及在初始阶段随后发生HXR爆裂的原因。然而,没有磁岛的重叠以及在这些岛之间存在良好的磁性表面会限制RE的运输,从而导致在等离子电流平顶的后期不存在相关的HXR猝发。

著录项

  • 来源
    《Nuclear fusion》 |2018年第7期|076004.1-076004.9|共9页
  • 作者单位

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India,HBNI, Anushakti Nagar, Mumbai 400094, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India,HBNI, Anushakti Nagar, Mumbai 400094, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India,HBNI, Anushakti Nagar, Mumbai 400094, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India,HBNI, Anushakti Nagar, Mumbai 400094, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

    Saha Institute of Nuclear Physics, 1/AF Bidhannagar, Kolkata 700064. India;

    Institute for Plasma Research, Bhat, Gandhinagar 382428, India;

  • 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

    ADITYA tokamak; plasma; sawtooth; runaway; MHD; runaway transport;

    机译:ADITYA托卡马克等离子体;锯齿逃跑;MHD;失控的运输;
  • 入库时间 2022-08-18 00:41:16

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