研究快速离子对 FIRE 模式等离子体核心湍流的影响

Donguk Kim, Sangjin Park, G. Choi, Y. W. Cho, Jisung Kang, Hyunsun Han, Jeff Candy, E. Belli, Y. Na, T. Hahm, C. Sung
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摘要

在这项工作中,作为先前研究[D. Kim 等,Nucl. Fusion 63 124001 (2023)]的延续,进一步研究了快离子对 FIRE 模式放电中的湍流和传输的影响[H. Han 等,Nature 609 269-275 (2022)],该研究表明快离子的主要湍流抑制机制是 FIRE 模式放电中的稀释效应。目前的研究包括:(i) 模拟热能通量时观察到的快离子相关模式的影响;(ii) 与其他物种的稀释效应相比,快离子的稀释效应;(iii) 快离子对电子尺度湍流的影响。首先,非线性陀螺动量模拟结果表明,即使没有快离子相关模式,湍流也会受到明显抑制,这表明该模式对热传输的影响在该放电中并不显著。其次,对稀释效应的进一步分析表明了以下三个结果:湍流并没有完全被杂质导致的主离子密度分数降低效应所抑制;能量通量的降低会受到某种杂质模式的限制,这种模式会因为调整主离子密度梯度而导致高杂质密度梯度不稳定;电子可以通过主离子密度梯度的变化来促进湍流的抑制,不过这种效应与其他物种相比并不显著。第三,我们观察到两种快速离子效应会影响电子尺度湍流模式的线性增长率。β*(≡(-8π/B2)dp/dr)的增加会降低增长率,而稀释效应则会提高增长率。本研究进行的综合分析可以加深我们对快离子物理的理解,这也是未来燃烧等离子体运行所需要的。
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Investigation of fast ion effects on core turbulence in FIRE mode plasmas
Further investigation of fast ion effects on turbulence and transport in the FIRE mode discharge [H. Han et al, Nature 609 269–275 (2022)] was performed in this work as a continuation of a previous study [D. Kim et al Nucl. Fusion 63 124001 (2023)] that showed that the dominant turbulence suppression mechanism by fast ions is the dilution effect in the FIRE mode discharge. The current study includes (i) the impact of the fast ion relevant mode observed in the simulation of thermal energy flux, (ii) dilution effects by fast ions compared to dilution effects by other species, and (iii) fast ion effects on electron-scale turbulence. First, nonlinear gyrokinetic simulation results show that turbulence is significantly suppressed even without the fast ion relevant mode, indicating that the impact of this mode on thermal transport is not significant in this discharge. Second, further analysis on the dilution effects shows the three following results: Turbulence is not completely suppressed by the reduced main ion density fraction effect due to impurities; the reduction in energy flux can be limited by a certain impurity mode that is destabilized by a high impurity density gradient from adjusting the main ion density gradient; electrons can contribute to turbulence suppression through the main ion density gradient change, although this effect is less significant compared to other species. Third, we observe that two fast ion effects can influence the linear growth rate of the electron-scale turbulence mode. The growth rate decreases by an increase in β*(≡(-8π/B2)dp/dr) and increases by dilution effects, suggesting that fast ion effects on electron-scale turbulence can differ depending on the operation scenario, such as the fast ion fraction. The comprehensive analysis performed in this study can enhance our understanding of fast ion physics, required for burning plasma operation in the future.
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