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Multi-Dimensional Structure of the Electric Field in Tokamak H-Mode

机译:托卡马克H模式下电场的多维结构

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摘要

In tokamak H-mode, a large poloidal flow exists in an edge transport barrier, and the electrostatic potential and density profiles can be steep both in the radial and poloidal direction. Two-dimensional structures of the potential, density and flow velocity near the edge of a tokamak plasma are investigated. The model includes the nonlinearity in bulk-ion viscosity and turbulence-driven shear viscosity. For the case with a strong radial electric field (H-mode), a two-dimensional structure in a transport barrier is obtained, giving a poloidal shock with a solitary radial electric field profile. The poloidal electric field induces convective transport in the radial direction, and poloidal asymmetry makes the flux-surface-averaged particle flux direct inward with a pinch velocity on the order of 1 [m/s|. A large poloidal flow with radial shear enhances the inward pinch velocity. The abrupt increase of this inward ion and electron flux at the onset of L-to-H-mode transition explains the rapid establishment of the density pedestal at the transition.
机译:在托卡马克H模式下,边缘传输势垒中存在大量的胶体流动,并且静电势和密度分布在径向和胶体方向都可能很陡。研究了托卡马克等离子体边缘附近的电位,密度和流速的二维结构。该模型包括体积离子粘度和湍流驱动的剪切粘度的非线性。对于具有强径向电场(H模式)的情况,可以在传输势垒中获得二维结构,从而产生具有孤立径向电场轮廓的极向冲击。极向电场在径向方向上引起对流传输,极向不对称使束流表面平均的粒子束流以1 [m / s |]的收缩速度直接向内移动。带有径向剪切力的较大的胶体流动会增加向内的收缩速度。在L到H模式转换开始时,这种向内离子和电子通量的突然增加说明了在转换处密度基座的快速建立。

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