利用 GENE-Tango 仿真分析超高温粒子对 ASDEX 升级版等离子体性能的影响

A. Di Siena, Roberto Bilato, A. Bañón Navarro, Michael George Bergmann, L. Leppin, T. Görler, E. Poli, Markus Weiland, G. Tardini, F. Jenko
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引用次数: 0

摘要

本文介绍了 ASDEX 升级版 H 模式放电在传输时间尺度上的全局陀螺动能模拟,结果显示轴上离子温度曲线出现了明显的峰值。利用新开发的 GENE-Tango 工具(该工具结合了全局陀螺动力学代码 GENE 和输运求解器 Tango),我们研究了高能粒子和电磁效应对实验放电中观察到的改进等离子体性能的影响。我们的结果表明,只有在建模中同时保留高能粒子和电磁效应时,GENE-Tango 模拟和实验测量结果才能达到惊人的一致。相反,当忽略这些影响时,我们观察到轴向离子温度被明显低估,这与使用 TGLF-ASTRA 计算的剖面一致。模拟中观察到的离子温度曲线峰值可归因于高频电磁模式对湍流的有效抑制,可能是动能气球模式(KBM)/Alfv\'en eigenmodes(AEs)。这些模式在增强带状流活动和剪切率水平方面起着关键作用,从而导致温度梯度的局部增加。然而,将这些模式保持在边缘稳定或弱不稳定状态以防止高能粒子湍流破坏稳定是至关重要的。否则,结果将是所有热剖面的扁平化。有趣的是,我们发现全局 GENE-Tango 模拟需要对这些高频模式的线性动力学进行正确建模。此外,全局模拟比通量管模拟更能容忍这些高频模式的边缘不稳定性,同时还能保持功率平衡一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of supra-thermal particles on plasma performance at ASDEX Upgrade with GENE-Tango simulations
This paper presents global gyrokinetic simulations on the transport time scale of an ASDEX Upgrade H-mode discharge showing a pronounced peaking of the on-axis ion temperature profiles. Leveraging the newly developed GENE-Tango tool, which combines the global gyrokinetic code GENE with the transport solver Tango, we investigate the impact of energetic particles and electromagnetic effects on the improved plasma performance observed in the experimental discharge. Our results reveal that a striking agreement between the GENE-Tango simulations and the experimental measurements can be achieved only when energetic particles and electromagnetic effects are simultaneously retained in the modeling. In contrast, when these are neglected we observed a significant underestimation of the on-axis ion temperature, aligning with profiles computed using TGLF-ASTRA. The peaking in the ion temperature profile observed in the simulations can be attributed to the effective suppression of turbulence by high-frequency electromagnetic modes, likely Kinetic Ballooning Modes (KBM) / Alfv\'en eigenmodes (AEs). These modes play a critical role in enhancing zonal flow activity and shearing rate levels which thus lead to a localized increase in the temperature gradient. However, it is crucial to maintain these modes at a state of marginal stability or weak instability to prevent energetic particle turbulence destabilization. Otherwise, the result would be a flattening of all the thermal profiles. Interestingly, we found that global GENE-Tango simulations are required to model correctly the linear dynamics of these high-frequency modes. Additionally, global simulations demonstrate greater tolerance than flux-tube simulations for marginal instability of these high frequency modes while maintaining power balance agreement.
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