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首页> 外文期刊>Physics of plasmas >Study on lower hybrid current drive efficiency at high density towards long-pulse regimes in Experimental Advanced Superconducting Tokamak
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Study on lower hybrid current drive efficiency at high density towards long-pulse regimes in Experimental Advanced Superconducting Tokamak

机译:实验先进超导托卡马克在高密度下对长脉冲态的低混合电流驱动效率的研究

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摘要

Significant progress on both L- and H-mode long-pulse discharges has been made recently in Experimental Advanced Superconducting Tokamak (EAST) with lower hybrid current drive (LHCD) [J. Li et al., Nature Phys. 9, 817 (2013) And B. N. Wan et al., Nucl. Fusion 53, 104006 (2013).]. In this paper, LHCD experiments at high density in L-mode plasmas have been investigated in order to explore possible methods of improving current drive (CD) efficiency, thus to extend the operational space in long-pulse and high performance plasma regime. It is observed that the normalized bremsstrahlung emission falls much more steeply than 1_(e_av) (line-averaged density) above n_(e_av)=2.2 × 10~(19)m~(-3) indicating anomalous loss of CD efficiency. A large broadening of the operating line frequency (f=2.45GHz), measured by a radio frequency (RF) probe located outside the EAST vacuum vessel, is generally observed during high density cases, which is found to be one of the physical mechanisms resulting in the unfavorable CD efficiency. Collisional absorption of lower hybrid wave in the scrape off layer (SOL) may be another cause, but this assertion needs more experimental evidence and numerical analysis. It is found that plasmas with strong lithiation can improve CD efficiency largely, which should be benefited from the changes of edge parameters. In addition, several possible methods are proposed to recover good efficiency in future experiments for EAST.
机译:最近,在具有较低混合电流驱动(LHCD)的实验高级超导托卡马克(EAST)中,L模式和H模式长脉冲放电均取得了重大进展[J. Li等,自然物理学。 9,817(2013)和B.N. Wan et al。,Nucl。融合53,104006(2013)。]。在本文中,为了研究提高电流驱动(CD)效率的可能方法,从而扩展了在长脉冲和高性能等离子体环境中的工作空间,对L型等离子体在L型等离子体中进行的高密度LHCD实验进行了研究。观察到归一化的ms致辐射发射比n_(e_av)= 2.2×10〜(19)m〜(-3)以上的1 / n_(e_av)(线平均密度)下降得多得多,这表明CD效率异常损失。在高密度情况下,通常会观察到工作线频率(f = 2.45GHz)的大幅度扩展,这是由位于EAST真空容器外部的射频(RF)探头测得的,这被认为是导致这种情况的物理机制之一不利的CD效率。刮擦层(SOL)中低杂波的碰撞吸收可能是另一个原因,但是这种说法需要更多的实验证据和数值分析。发现具有强锂化的等离子体可以极大地提高CD效率,这应该得益于边缘参数的改变。另外,提出了几种可能的方法以在未来的EAST实验中恢复良好的效率。

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