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Relationship between particle and heat transport in JT-60U plasmas with internal transport barrier

机译:具有内部传输壁垒的JT-60U等离子体中粒子与热传输的关系

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摘要

The relationship between particle and heat transport in an internal transport barrier (ITB) has been systematically investigated in reversed shear (RS) and high β_p mode plasmas of JT-60U. The electron effective diffusivity is well correlated with the ion thermal diffusivity in the ITB region. The ratio of particle flux to electron heat flux, calculated on the basis of the linear stability analysis, shows a similar tendency to an experiment in the RS plasma with a strong ITB. However, the calculated ratio of ion anomalous heat flux to electron heat flux is smaller than the experiment in the ITB region. Helium and carbon are not accumulated inside the ITB even with ion heat transport close to a neoclassical level, but argon is accumulated. The helium diffusivity (D_(He)) and the ion thermal diffusivity (Xi) are 5-15 times higher than the neoclassical level in the high β_p mode plasma. In the RS plasma, D_(He) is reduced from 6-7 times to a 1.4-2 times higher level than the neoclassical level when Xi is reduced from 7-18 times to a 1.2-2.6 times higher level than the neoclassical level. The carbon and argon diffusivities estimated assuming the neoclassical inward convection velocity are 4-5 times larger than the neoclassical value, even when Xi is close to the neoclassical level. Argon exhaust from the inside of the ITB is demonstrated by applying electron cyclotron heating (ECH) in the high β_p mode plasma, where both electron and argon density profiles become flatter. The flattening of the argon density profile is consistent with the reduction of the neoclassical inward convection velocity due to the reduction of the bulk plasma density gradient. In the RS plasma, the density gradient is not decreased by ECH and argon is not exhausted. These results suggest the importance of density gradient control in suppressing impurity accumulation.
机译:在JT-60U的反向剪切(RS)和高β_p模式等离子体中,已经系统地研究了粒子与内部传输屏障(ITB)中的热传输之间的关系。电子有效扩散率与ITB区域中的离子热扩散率密切相关。根据线性稳定性分析计算出的粒子通量与电子热通量之比,显示出与具有强ITB的RS等离子体中的实验相似的趋势。但是,所计算的离子异常热通量与电子热通量之比小于ITB区域中的实验。即使离子传热接近新古典水平,氦气和碳也不会积聚在ITB中,但是会积聚氩气。在高β_p模式等离子体中,氦扩散率(D_(He))和离子热扩散率(Xi)比新古典水平高5-15倍。在RS血浆中,当Xi从新古典水平的7-18倍降低到新古典水平的1.2-2.6倍时,D_(He)从新古典水平降低到6-7倍至1.4-2倍。假设新古典向内对流速度估算的碳和氩扩散率是新古典值的4-5倍,即使Xi接近新古典水平。通过在高β_p模式等离子体中应用电子回旋加速器(ECH)来证明ITB内部的氩气排放,在该等离子体中,电子和氩气密度分布都变得更平坦。由于整体等离子体密度梯度的减小,氩气密度分布曲线的平坦化与新古典内向对流速度的减小是一致的。在RS等离子体中,ECH不会降低密度梯度,并且不会耗尽氩气。这些结果表明密度梯度控制在抑制杂质累积中的重要性。

著录项

  • 来源
    《Nuclear fusion》 |2003年第10期|p. 1235-1245|共11页
  • 作者单位

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Advanced Science and Technology Center for Cooperative Research, Kyushu University, Kasuga 816-8580, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Japan Atomic Energy Research Institute, Naka Fusion Research Establishment, Naka-machi, Naka-gun, Ibaraki-ken 311-0193, Japan;

    Princeton Plasma Physics Laboratory, Princeton, NJ 08543-0451, 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
  • 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 00:50:19

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