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Thermal transport barrier in heliotron-type devices (Large Helical Device and Compact Helical System)

机译:日光加速器型设备(大型螺旋设备和紧凑型螺旋系统)中的热传递屏障

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摘要

In the discharges of the Large Helical Device [O. Motojima et al., Proceedings of the 16th Conference on Fusion Energy, Montreal, 1996 (International Atomic Energy Agency, Vienna, 1997), Vol. 3, p. 437], a significant enhancement of the energy confinement has been achieved with an edge thermal transport barrier, which exhibits a sharp gradient at the edge. Key features associated with the barrier are quite different from those seen in tokamaks (i) almost no change in particle (including impurity) transport, (ii) a gradual formation of the barrier, (iii) a very high ratio of the edge temperature to the average temperature, (iv) no edge relaxation phenomenon. In the electron cyclotron heating (ECH) heated discharges in the Compact Helical System [K. Matsuoka et al., in Proceedings of the 12th International Conference on Plasma Physics and Controlled Nuclear Fusion Research, Nice, France, 1988 (International Atomic Energy Agency, Vienna, 1989), Vol. 2, p. 411], the internal electron transport barrier has been observed, which enhances the central electron temperature significantly. High shear of the radial electric field appears to suppress the turbulence in the core region and enhance the electron confinement there.
机译:在大型螺旋装置的排放中[O.本岛等人,《第16届聚变能会议论文集》,蒙特利尔,1996年(国际原子能机构,维也纳,1997年),第1卷。 3,第[437],利用边缘传热势垒实现了能量约束的显着提高,该边缘传热势垒在边缘处呈现出陡峭的梯度。与隔离层相关的关键特征与托卡马克中观察到的特征完全不同(i)颗粒(包括杂质)传输几乎没有变化,(ii)隔离层逐渐形成,(iii)边缘温度与平均温度;(iv)无边缘松弛现象。在电子回旋加速器加热(ECH)中,紧凑螺旋系统[K.松冈等人,《第十二届国际等离子体物理与可控核聚变研究国际会议论文集》,法国尼斯,1988年(国际原子能机构,维也纳,1989年),第1卷。 2,第[411],已经观察到内部电子传输势垒,它显着提高了中心电子温度。径向电场的高剪切力似乎抑制了核心区域的湍流并增强了该区域的电子约束。

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