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Gyroaverage effects on chaotic transport by drift waves in zonal flows

机译:陀螺平均对纬向流中漂移波对混沌传输的影响

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Finite Larmor radius (FLR) effects on E × B test particle chaotic transport in the presence of zonal flows is studied. The FLR effects are introduced by the gyro-average of a simplified E × B guiding center model consisting of the linear superposition of a non-monotonic zonal flow and drift waves. Non-monotonic zonal flows play a critical role on transport because they exhibit robust barriers to chaotic transport in the region(s) where the shear vanishes. In addition, the non-monotonicity gives rise to nontrivial changes in the topology of the orbits of the E × B Hamiltonian due to separatrix reconnection. The present study focuses on the role of FLR effects on these two signatures of non-monotonic zonal flows: shearless transport barriers and separatrix reconnection. It is shown that, as the Larmor radius increases, the effective zonal flow profile bifurcates and multiple shearless regions are created. As a result, the topology of the gyro-averaged Hamiltonian exhibits very complex separatrix reconnection bifurcations. It is also shown that FLR effects tend to reduce chaotic transport. In particular, the restoration of destroyed transport barriers is observed as the Larmor radius increases. A detailed numerical study is presented on the onset of global chaotic transport as function of the amplitude of the drift waves and the Larmor radius. For a given amplitude, the threshold for the destruction of the shearless transport barrier, as function of the Larmor radius, exhibits a fractal-like structure. The FLR effects on a thermal distribution of test particles are also studied. In particular, the fraction of confined particles with a Maxwellian distribution of gyroradii is computed, and an effective transport suppression is found for high enough temperatures.
机译:研究了在区域气流存在下有限拉莫尔半径(FLR)对E×B测试粒子混沌传输的影响。 FLR效应是通过简化的E×B引导中心模型的陀螺平均值引入的,该模型由非单调纬向流和漂移波的线性叠加组成。非单调的纬向流在运输中起着至关重要的作用,因为它们在剪切力消失的区域对混沌运输表现出强大的屏障。此外,由于单层重连,非单调性导致E×B哈密顿量轨道拓扑的平凡变化。本研究的重点是FLR效应在非单调性地带流的这两个特征上的作用:无剪切运输障碍和分隔线重新连接。结果表明,随着拉莫尔半径的增加,有效的纬向流动曲线分叉并形成了多个无剪切区域。结果,陀螺平均哈密顿量的拓扑显示出非常复杂的分离线重新连接分支。还表明,FLR效应倾向于减少混沌传输。特别是,随着拉莫尔半径的增加,观察到破坏的运输屏障的恢复。详细的数值研究表明,随着混沌波的振幅和拉莫尔半径的变化,全球混沌传输开始。对于给定的振幅,作为拉莫尔半径的函数,无剪切运输屏障破坏的阈值呈现出类似分形的结构。还研究了FLR对测试颗粒热分布的影响。特别是,计算了具有麦克斯韦分布的陀螺半径的受限颗粒的分数,并且发现了对于足够高的温度的有效传输抑制。

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