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Dependence of the L-H transition on X-point geometry and divertor recycling on NSTX

机译:L-H过渡对X点几何的依赖以及NSTX上的偏滤器回收

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摘要

The edge electron (T_e) and ion temperature (T_i) at the time of the L-H transition increase when the X-point radius (R_x) is reduced to a high-triangularity shape while maintaining constant edge density. Consequently the L-H power threshold (P_(LH)) is larger for the high-triangularity shape. This supports the prediction that a single-particle loss hole, whose properties are strongly linked to R_x and T_i, influences the edge radial electric field (E_r) and E-r × B flow-shearing rate available for turbulence suppression. Simulations using XGC0, a full-f drift-kinetic neoclassical code, indicate that maintaining a constant E_r × B flow-shearing rate does require a larger heat flux and edge T_i as R_x decreases. NSTX also observes a decrease in P_(LH) when the divertor recycling is decreased using lithium coatings. However, the edge T_e and T_i at the L-H transition appear independent of the divertor recycling for a constant shape. XGCO calculations demonstrate that more heat flux is needed to maintain the edge T_i and the E_r × B flow-shearing rate as the contribution of divertor recycling to the overall neutral fuelling rate increases.
机译:当X点半径(R_x)减小到高三角形形状同时保持恒定的边沿密度时,L-H跃迁时的边沿电子(T_e)和离子温度(T_i)增加。因此,对于高三角形形状,L-H功率阈值(P_(LH))更大。这支持了以下预测:其性质与R_x和T_i密切相关的单个粒子损失孔会影响边缘径向电场(E_r)和E-r×B可用于抑制湍流的流体剪切速率。使用XGC0(全f漂移动力学的新古典代码)进行的仿真表明,保持恒定的E_r×B流体剪切率确实需要较大的热通量,并且随着R_x的减小,边缘T_i也会增加。当使用锂涂层减少分流器循环时,NSTX还观察到P_(LH)的降低。然而,对于恒定的形状,在L-H过渡处的边缘T_e和T_i看起来独立于偏滤器再循环。 XGCO计算结果表明,随着分流器再循环对总体中性加油率的贡献增加,需要更多的热通量来保持边缘T_i和E_r×B切流率。

著录项

  • 来源
    《Nuclear fusion》 |2013年第11期|113032.1-113032.8|共8页
  • 作者单位

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Korea Advanced Institute of Science and Technology, Daejeon, Korea;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Oak Ridge National Laboratory, Oak Ridge, TN, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

    Princeton Plasma Physics Laboratory, Princeton, NJ, USA;

  • 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
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