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Current profile flattening and hot core shift due to non-linear development of resistive kink mode

机译:电阻扭结模式的非线性发展导致电流分布变平和热芯偏移

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摘要

A new and interesting phenomenon that the toroidal current profile, which at first exhibits peaking due to ohmic heating, flattens around the magnetic axis is obtained through a full compressible resistive MHD simulation for a 3-D toroidal geometry. It is concluded that the current flattening is caused by non-linear excitation of the unstable m=1=1 resistive kink mode, specifically by the quasi-linear effect of the coupling of the plasma velocity and the magnetic field of the n=+or-1 mode. The time-scale of the current profile flattening is of the order of the MHD time-scale. When the current profile is largely flattened, the plasma dynamic pressure due to the strongly excited kink mode pushes the hot core plasma in the radial kink flow direction and the hot core starts deviating from the magnetic surface owing to the dynamic pressure and the plasma compressibility. Because of the reduction of the magnetic shear due to the current flattening in the q<1 region, magnetic field reconnection is driven by the strong kink flow and leads to the destruction of the magnetic field structure within the q=1 rational surface. Subsequently, the magnetic field configuration recovers to an axisymmetric profile. This can explain the fast crash phase of sawteeth in tokamaks. The effect of the thermal conduction on the evolution of such a process is also discussed.
机译:通过对3-D环形几何图形进行完全可压缩的电阻MHD仿真,可以得到一个新的有趣现象,即由于欧姆加热而首先呈现峰值的环形电流曲线围绕磁轴变平。可以得出结论,电流变平是由不稳定的m = 1 / n = 1电阻扭结模式的非线性激励引起的,尤其是由等离子速度与n =的磁场耦合产生的准线性效应引起的。 +或-1模式。当前轮廓平坦化的时间标度约为MHD时间标度。当电流分布基本平坦时,由于强激发的扭结模式而产生的等离子体动压沿径向扭结流动方向推动热芯等离子体,并且由于动态压力和等离子体可压缩性,热芯开始偏离磁性表面。由于q <1区域中电流变平导致的磁切变的减少,磁场的重新连接由强扭结流驱动,并导致q = 1有理面内的磁场结构破坏。随后,磁场构造恢复为轴对称轮廓。这可以解释托卡马克中锯齿的快速崩溃阶段。还讨论了热传导对这种过程演变的影响。

著录项

  • 来源
    《Nuclear fusion》 |1995年第3期|p. 251-259|共9页
  • 作者单位

    Theory and Computer Simulation Center, National Institute for Fusion Science, Nagoya, Japan;

    Theory and Computer Simulation Center, National Institute for Fusion Science, Nagoya, Japan;

    Canon Systems Globalization, Inc., Santa Clara, California, United States of America;

  • 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 原子核物理学、高能物理学;
  • 关键词

  • 入库时间 2022-08-18 01:10:37

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