MHD stability trends and improved performance of LHD inward-shifted configurations: The role of the neutral beam current drive and thermal plasma density

IF 2 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS Physics of Plasmas Pub Date : 2024-08-05 DOI:10.1063/5.0206400
J. Varela, K. Nagaoka, Y. Takemura, K. Y. Watanabe, K. Ida, M. Yoshinuma, K. Nagasaki, A. Cappa, S. Sharapov, D. A. Spong, L. Garcia, Y. Ghai, J. Ortiz
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Abstract

The aim of the present study is to analyze the effect of the neutral beam current drive (NBCD), thermal plasma density, and NBI operational regime on the stability of pressure gradient-driven modes (PGDM) and Alfvén eigenmodes (AE) in LHD inward-shifted configurations. The stabilization of n/m=1/2 PGDM (n toroidal mode and m poloidal mode) is observed in the discharge 167 800 during the co-NBCD phase. The iota profile evolution measured by motional stark effect diagnostic may indicate the iota profile up-shift caused by the co-NBCD can induce a non-resonant transition of the rational surface 1/2 before the mode stabilization. The evolution of the iota profile and continuum gaps in the discharge 167 805 during the ctr-NBCD phase leads to the stabilization of the AE, caused by the narrowing of the continuum gap as the iota profile down-shift. Opposite stability trends are identified for PGDM and AE stability with respect to the thermal plasma density. A larger thermal plasma density (larger thermal β) further enhances PGDM although the continuum gaps are narrower leading to configurations with stable AEs. The linear stability of AEs is analyzed using the gyro-fluid FAR3d code to reproduce the AE stability trends observed in the experiments with respect to the NBCD and thermal plasma density. The analysis of hypothetical scenarios dedicated to study different NBI operational regimes with respect to EP energy, and β and radial density profiles indicate off-axis NBI operation shows a higher EP β threshold to destabilize AEs compared to on-axis configuration. This is explained by the presence of a TAE gap in the inner plasma region, easily destabilized by an on-axis NBI injection. The control of the NBCD and thermal plasma in the discharge 167 800 shows a transitory stabilization of PGDM and AEs, as well as an improved discharge performance identified by an increment of the neutron fluxes.
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MHD 稳定趋势和 LHD 内移配置的改进性能:中性束流驱动和热等离子体密度的作用
本研究旨在分析中性束流驱动(NBCD)、热等离子体密度和 NBI 运行机制对 LHD 内向偏移配置中压力梯度驱动模式(PGDM)和阿尔费恩特征模型(AE)稳定性的影响。在共 NBCD 阶段的放电 167 800 中观察到 n/m=1/2 PGDM(n 环形模式和 m 极环形模式)的稳定。通过运动斯塔克效应诊断法测量到的 iota 轮廓演变可能表明,共 NBCD 引起的 iota 轮廓上移会在模式稳定之前诱发有理面 1/2 的非共振转变。在 ctr-NBCD 阶段,放电 167 805 中的 iota 剖面和连续体间隙的演变导致 AE 趋于稳定,原因是 iota 剖面下移时连续体间隙变窄。与热等离子体密度有关的 PGDM 和 AE 稳定性趋势截然相反。热等离子体密度越大(热 β 越大),PGDM 越强,但连续相间隙越窄,从而产生稳定的 AE。利用陀螺流体 FAR3d 代码对 AE 的线性稳定性进行了分析,以再现实验中观察到的 AE 稳定性趋势与 NBCD 和热等离子体密度的关系。对专门用于研究不同 NBI 运行状态的 EP 能量、β 和径向密度剖面的假设情景进行的分析表明,与轴向配置相比,离轴 NBI 运行显示出更高的 EP β 阈值,从而使 AE 失稳。这是因为内部等离子体区域存在 TAE 间隙,很容易被同轴 NBI 注入所破坏。对放电 167 800 中的 NBCD 和热等离子体的控制显示出 PGDM 和 AE 的短暂稳定,以及通过增加中子通量确定的放电性能的改善。
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来源期刊
Physics of Plasmas
Physics of Plasmas 物理-物理:流体与等离子体
CiteScore
4.10
自引率
22.70%
发文量
653
审稿时长
2.5 months
期刊介绍: Physics of Plasmas (PoP), published by AIP Publishing in cooperation with the APS Division of Plasma Physics, is committed to the publication of original research in all areas of experimental and theoretical plasma physics. PoP publishes comprehensive and in-depth review manuscripts covering important areas of study and Special Topics highlighting new and cutting-edge developments in plasma physics. Every year a special issue publishes the invited and review papers from the most recent meeting of the APS Division of Plasma Physics. PoP covers a broad range of important research in this dynamic field, including: -Basic plasma phenomena, waves, instabilities -Nonlinear phenomena, turbulence, transport -Magnetically confined plasmas, heating, confinement -Inertially confined plasmas, high-energy density plasma science, warm dense matter -Ionospheric, solar-system, and astrophysical plasmas -Lasers, particle beams, accelerators, radiation generation -Radiation emission, absorption, and transport -Low-temperature plasmas, plasma applications, plasma sources, sheaths -Dusty plasmas
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