Effect of energetic ions on edge-localized modes in tokamak plasmas

IF 17.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Nature Physics Pub Date : 2025-01-06 DOI:10.1038/s41567-024-02715-6
J. Dominguez-Palacios, S. Futatani, M. Garcia-Munoz, A. Jansen van Vuuren, E. Viezzer, J. Gonzalez-Martin, M. Toscano-Jimenez, P. Oyola, Y. Todo, Y. Suzuki, L. Sanchis, J. Rueda-Rueda, J. Galdon-Quiroga, J. Hidalgo-Salaverri, H. Chen, J. F. Rivero-Rodriguez, L. Velarde, the ASDEX Upgrade Team, the EuroFUSION MST1 Team
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Abstract

The most efficient and promising operational regime for the International Thermonuclear Experimental Reactor tokamak is the high-confinement mode. In this regime, however, periodic relaxations of the plasma edge can occur. These edge-localized modes pose a threat to the integrity of the fusion device. Here we reveal the strong impact of energetic ions on the spatio-temporal structure of edge-localized modes in tokamaks using nonlinear hybrid kinetic–magnetohydrodynamic simulations. A resonant interaction between the fast ions at the plasma edge and the electromagnetic perturbations from the edge-localized mode leads to an energy and momentum exchange. Energetic ions modify, for example, the amplitude, frequency spectrum and crash timing of edge-localized modes. The simulations reproduce some observations that feature abrupt and large edge-localized mode crashes. The results indicate that, in the International Thermonuclear Experimental Reactor, a strong interaction between the fusion-born alpha particles and ions from neutral beam injection, a main heating and fast particle source, is expected with predicted edge-localized mode perturbations. This work advances the understanding of the physics underlying edge-localized mode crashes in the presence of energetic particles and highlights the importance of including energetic ion kinetic effects in the optimization of edge-localized mode control techniques and regimes that are free of such modes. Edge-localized plasma modes in a tokamak can damage its innermost wall. Simulations now show that fast ions can modify the spatio-temporal structure of these modes. These effects need to be considered in the optimization of control techniques.

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高能离子对托卡马克等离子体边缘局域模式的影响
国际热核实验堆托卡马克最有效和最有前途的运行模式是高约束模式。然而,在这种状态下,等离子体边缘的周期性弛豫会发生。这些边缘局域模式对核聚变装置的完整性构成威胁。本文利用非线性混合动力学-磁流体动力学模拟揭示了高能离子对托卡马克中边缘局域模式时空结构的强烈影响。等离子体边缘的快速离子与边缘局域模式的电磁扰动之间的共振相互作用导致能量和动量交换。例如,高能离子可以改变边缘局域模式的振幅、频谱和碰撞时间。模拟再现了一些观测结果,这些观测结果具有突然和大的边缘局部模式碰撞的特征。结果表明,在国际热核实验反应堆中,来自中性束注入(主要的加热和快速粒子源)的聚变产生的α粒子与离子之间存在强相互作用,并伴有预测的边缘局域模式扰动。这项工作促进了对高能粒子存在下边缘局域模式碰撞的物理基础的理解,并强调了在优化边缘局域模式控制技术和无此类模式的制度时包括高能离子动力学效应的重要性。
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来源期刊
Nature Physics
Nature Physics 物理-物理:综合
CiteScore
30.40
自引率
2.00%
发文量
349
审稿时长
4-8 weeks
期刊介绍: Nature Physics is dedicated to publishing top-tier original research in physics with a fair and rigorous review process. It provides high visibility and access to a broad readership, maintaining high standards in copy editing and production, ensuring rapid publication, and maintaining independence from academic societies and other vested interests. The journal presents two main research paper formats: Letters and Articles. Alongside primary research, Nature Physics serves as a central source for valuable information within the physics community through Review Articles, News & Views, Research Highlights covering crucial developments across the physics literature, Commentaries, Book Reviews, and Correspondence.
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