Wang Hao, Lauber Philipp, Todo Yasushi, Suzuki Yasuhiro, Li Hanzheng, Idouakass Malik, Wang Jialei, Adulsiriswad Panith
National Institute for Fusion Science, National Institutes of Natural Sciences, Toki, 509-5292, Japan.
Max-Planck-Institut für Plasmaphysik, 85748, Garching, Germany.
Sci Rep. 2025 Jan 7;15(1):1130. doi: 10.1038/s41598-024-82577-3.
The Alfvén instability nonlinearly excited the energetic-particle-driven geodesic acoustic mode on the ASDEX-Upgrade tokamak, as demonstrated experimentally. The mechanism of the energetic-particle-driven geodesic acoustic mode excitation and the mode nonlinear evolution is not yet fully understood. In the present work, a first-principles simulation using the MEGA code investigated the mode properties in both the linear growth and nonlinear saturated phases. Here we show that the simulation successfully reproduced the excitation and coexistence of these two modes, and agreed with the experimental results well. Conclusive evidence showed that the resonance overlap is the excitation mechanism of the energetic-particle-driven geodesic acoustic mode. In the linear growth phase, energetic particles that satisfied different resonance conditions excited the Alfvén instability, which then caused energetic particle redistribution in phase space. These redistributed energetic particles caused resonance overlap, exciting the energetic-particle-driven geodesic acoustic mode in the nonlinear phase.
阿尔文不稳定性在ASDEX升级托卡马克装置上非线性地激发了高能粒子驱动的测地声模,这已通过实验得到证明。高能粒子驱动的测地声模激发机制及其模式非线性演化尚未完全被理解。在本工作中,使用MEGA程序进行的第一性原理模拟研究了线性增长和非线性饱和阶段的模式特性。在此我们表明,该模拟成功再现了这两种模式的激发和共存,并且与实验结果吻合良好。确凿证据表明,共振重叠是高能粒子驱动的测地声模的激发机制。在线性增长阶段,满足不同共振条件的高能粒子激发了阿尔文不稳定性,进而导致高能粒子在相空间中的重新分布。这些重新分布的高能粒子引起共振重叠,在非线性阶段激发了高能粒子驱动的测地声模。