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Impact of a resonant magnetic perturbation field on impurity radiation, divertor footprint, and core plasma transport in attached and detached plasmas in the Large Helical Device

机译:共振磁扰动场对大型螺旋装置中附着和分离的等离子体中的杂质辐射,偏滤器足迹和核心等离子体传输的影响

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The effects of resonant magnetic perturbation (RMP) field on impurity radiation, divertor footprint distribution, and core plasma transport are investigated in the detachment discharges of the Large Helical Device (LHD). The RMP with m = 1/1 mode creates an edge magnetic island in the stochastic layer, which enhances the impurity emission from low charge states, C2+ and C3+, and then triggers a detachment transition. Emission from the higher charge states, C4+ and C5+, implies enhanced penetration of impurities during the detachment phase with RMP. The toroidal divertor particle flux distribution exhibits n = 1 mode structure in both the attached and detached phases, but with a large toroidal phase shift between the two phases. The distribution in the attached phase is well correlated with the magnetic footprint of field line connection length calculated by the vacuum approximation. During the detached phase, however, the phase shift is not well explained by the vacuum approximation, where a significant plasma response to the external RMP is observed. The energy confinement time becomes systematically shorter with RMP application due to the shrinkage of plasma volume caused by the edge magnetic island. On the other hand, the pressure profile during detachment with RMP is found to be more peaked than without RMP. The analysis using the core transport code TASK3D, considering the heating profiles of neutral beam injection, shows no significant transport degradation during detachment with RMP application, even with the enhanced radiation, reduced divertor flux, and possible impurity penetration.
机译:在大型螺旋装置(LHD)的分离放电中研究了共振磁扰(RMP)场对杂质辐射,偏滤器足迹分布和核心等离子体传输的影响。 m / n = 1/1模式的RMP在随机层中创建边缘磁岛,从而增强了来自低电荷态C2 +和C3 +的杂质发射,然后触发了分离跃迁。高电荷态C4 +和C5 +的发射表明在RMP分离阶段杂质的渗透增强。环形偏滤器粒子通量分布在附着相和分离相中均显示n = 1模态结构,但在两个相之间具有较大的环形相移。附着相中的分布与通过真空近似法计算出的磁力线连接长度的磁足迹高度相关。然而,在分离相期间,不能通过真空近似很好地解释相移,在真空近似中,观察到了对外部RMP的明显等离子体响应。由于边缘磁性岛引起的等离子体体积的缩小,使用RMP时,能量限制时间会系统地缩短。另一方面,发现与不使用RMP相比,在使用RMP拆卸过程中的压力分布更为明显。考虑到中性束注入的加热曲线,使用核心传输代码TASK3D进行的分析显示,即使使用增强的辐射,减少的偏滤器通量和可能的杂质渗透,使用RMP进行分离时也不会出现明显的传输退化。

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