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Transport Barrier Triggered by Resonant Three-Wave Processes Between Trapped-Particle-Modes and Zonal Flow

机译:通过捕获粒子模式和区内流动之间的谐振三波过程触发的运输障碍

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We address the mechanisms underlying low-frequency zonal flow generation in a turbulent system through the parametric decay of collisionless trapped particle modes and its feedback on the stabilization of the system. This model is in connection with the observation of barrier transport in reduced gyrokinetic simulations (A. Ghizzo et al., Euro. Phys. Lett. 119(1), 15003 (2017)). Here the analysis is extended with a detailed description of the resonant mechanism. A key role is also played by an initial polarisation source that allows the emergence of strong initial shear flow. The parametric decay leads to the growth of a zonal flow which differs from the standard zero frequency zonal flow usually triggered by the Reynolds stress in fluid drift-wave turbulence. The resulting zonal flow can oscillate at low frequency close to the ion precession frequency, making it sensitive to strong amplification by resonant kinetic processes. The system becomes then intermittent. These new findings, obtained from numerical experiments based on reduced semi-Lagrangian gyrokinetic simulations, shed light on the underlying physics coming from resonant wave-particle interactions for the formation of transport barriers. Numerical simulations are based on a Hamiltonian reduction technique, including magnetic curvature and interchange turbulence, where both fastest scales (cyclotron and bounce motions) are gyro-averaged.
机译:我们通过碰撞捕获粒子模式的参数衰减以及对系统稳定的反馈来解决湍流系统中低频区域流动产生的机制。该模型与降低的旋转模拟中的屏障运输有关(A. Ghizzo等,欧元。Qual。Lett。119(1),15003(2017))。这里通过对谐振机制的详细描述进行了分析。初始偏振源也播放了一个关键作用,其允许出现强初始剪切流。参数衰减导致区域流动的生长,其与通常由流体漂移波湍流中的雷诺应力触发的标准零频率区流量不同。所得到的区内流动可以以靠近离子预输出频率的低频振荡,使得通过共振动力学过程对强大放大敏感。系统变为间歇性。这些新发现,从基于减少的半拉格朗日旋转模拟的数值实验获得,脱光在底层物理学中,来自共振波粒子相互作用,形成运输障碍。数值模拟基于汉密尔顿的还原技术,包括磁曲率和交换湍流,其中最快的刻度(回旋加速器和反弹运动)是陀螺仪。

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