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Particle transport due to energetic-particle-driven geodesic acoustic modes

机译:由于高能粒子驱动的测地线声模而产生的粒子传输

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The transport of particles in the presence of energetic geodesic acoustic modes (EGAMs) is analysed by means of full-f global gyro-kinetic simulations, using the multi-species version of the Gysela code and a test particle tracking post-treatment, which solves the equations of motion of passive gyro-centres embedded in the self-consistent EGAM potential obtained from the Gysela simulations. It is found that EGAMs induce the transport of particles, which eventually results in counter-passing particle losses modulated at the EGAM frequency. A detailed analysis of the trajectories of the test gyro-centres is performed and evidence of the interaction between the EGAM island and the region of magnetically trapped particles (trapping cone) is provided. In particular, we report for the first time on the complex interaction between the stochastic separatrix of the EGAM island and the X-point of the trapping cone, creating a channel for the transport of particles from the v_‖ < 0 to the v_‖ > 0 regions. Therefore, for the cases analysed in this work, the co-injection of energetic particles might lead to a significant reduction of EGAM-induced losses. This result opens up new perspectives for further studies of the selection of energetic particle injection in order to minimize the losses due to EGAMs.
机译:使用Gysela代码的多物种版本和测试粒子跟踪后处理,通过全f全局陀螺动力学模拟,分析了存在高能测地声模(EGAM)时的粒子传输。从Gysela模拟获得的嵌入到自洽EGAM势中的被动陀螺中心的运动方程。发现EGAM诱导了颗粒的运输,最终导致以EGAM频率调制的反向通过的颗粒损失。对测试陀螺中心的轨迹进行了详细的分析,并提供了EGAM岛和磁捕获粒子区域(捕获锥)之间相互作用的证据。特别是,我们首次报告了EGAM岛的随机分离层与诱集锥的X点之间的复杂相互作用,从而为从v_” <0到v_''>的粒子传输创建了通道0个地区。因此,对于这项工作中分析的情况,高能粒子的共同注入可能导致EGAM引起的损失显着减少。该结果为进一步研究高能粒子注入的选择开辟了新的前景,从而最大程度地减少了由于EGAM引起的损失。

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