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Helical modulation of the electrostatic plasma potential due to edge magnetic islands induced by resonant magnetic perturbation fields at TEXTOR

机译:TEXTOR共振磁扰动场引起的边缘磁性岛引起的静电等离子体电势的螺旋调制

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摘要

The electrostatic response of the edge plasma to a magnetic island induced by resonant magnetic perturbations to the plasma edge of the circular limiter tokamak TEXTOR is analyzed. Measurements of plasma potential are interpreted by simulations with the Hamiltonian guiding center code Orbit. We find a strong correlation between the magnetic field topology and the poloidal modulation of the measured plasma potential. The ion and electron drifts yield a predominantly electron driven radial diffusion when approaching the island X-point while ion diffusivities are generally an order of magnitude smaller. This causes a strong radial electric field structure pointing outward from the island O-point. The good agreement found between measured and modeled plasma potential connected to the enhanced radial particle diffusivities supports that a magnetic island in the edge of a tokamak plasma can act as convective cell. We show in detail that the particular, non-ambipolar drifts of electrons and ions in a 3D magnetic topology account for these effects. An analytical model for the plasma potential is implemented in the code Orbit, and analyses of ion and electron radial diffusion show that both ion- and electron-dominated transport regimes can exist, which are known as ion and electron root solutions in stellarators. This finding and comparison with reversed field pinch studies and stellarator literature suggest that the role of magnetic islands as convective cells and hence as major radial particle transport drivers could be a generic mechanism in 3D plasma boundary layers.
机译:分析了边缘等离子体对由圆形限制器托卡马克TEXTOR的等离子体边缘产生的共振磁扰动引起的磁岛的静电响应。等离子体电势的测量通过汉密尔顿制导中心码Orbit的模拟来解释。我们发现磁场拓扑与所测等离子体电势的极向调制之间存在很强的相关性。当接近岛的X点时,离子和电子的漂移主要产生电子驱动的径向扩散,而离子的扩散率通常小一个数量级。这导致从岛的O点向外指向的强大的径向电场结构。在与增强的径向粒子扩散性相关的测量和建模等离子体电势之间发现的良好一致性支持了托卡马克等离子体边缘的磁岛可以作为对流电池。我们详细显示了3D磁性拓扑中电子和离子的特定,非双极性漂移,说明了这些影响。在Orbit代码中实现了等离子体电势的分析模型,对离子和电子的径向扩散进行的分析表明,离子和电子为主的传输形式都可以同时存在,这在恒星器中被称为离子和电子根溶液。这一发现并与反向场收缩研究和恒星学文献进行比较,表明磁岛作为对流细胞并因此作为主要的径向粒子传输驱动器的作用可能是3D等离子体边界层中的通用机制。

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