论文标题

DIMITS移动,类似雪崩的爆发以及两体磁通平衡的长谷谷瓦卡塔尼模型中的孤立传播结构用于等离子体边缘湍流

Dimits shift, avalanche-like bursts, and Solitary propagating structures in the two-field Flux-Balanced Hasegawa-Wakatani model for plasma edge turbulence

论文作者

Qi, Di, Majda, Andrew J., Cerfon, Antoine J.

论文摘要

我们表明,最近引入的两体磁通量均衡的长谷瓦卡塔尼(BHW)模型捕获了在更完整和准确的旋转模拟中观察到的漂移波动动的运输的主要特征孤立的繁殖结构。由于BHW模型中的近似值,这些观察结果是用于粒子通量的,而不是在离子温度梯度(ITG)驱动的流体或旋转代码中更常见的热通量。这些特征中的许多特征在其他长谷川 - 瓦卡塔尼模型中都看不到,这证实了与磁场线平行的电子动力学的关键作用。为了解决有关边界条件在漂移波段流动动力学上的作用的问题,我们将模型应用于通道域几何形状和更典型的双周期几何形状。我们仅在边界附近观察到通道几何形状的粒子通量中强的孤子样溶液,在双速度剪切和密度梯度中产生强度的周期性模拟。更改仿真域的纵横比也具有重大影响。在沿径向方向拉长的域中,发生了更复杂的多尺度动力学,多个区域喷气机相互相互作用,并且大型雪崩。

We show that the recently introduced two-field flux-balanced Hasegawa-Wakatani (BHW) model captures the key features of drift-wave turbulent transport mediated by zonal flows observed in more complete and accurate gyrokinetic simulations, such as the existence of a nonlinear upshift of the threshold for drift wave turbulence driven transport, often called the Dimits shift, as well as non-local transport with avalanche bursts and solitary propagating structures. Because of the approximations made in the BHW model, these observations are made for the particle flux instead of the heat flux more commonly studied in ion temperature gradient (ITG) driven turbulence in fluid or gyrokinetic codes. Many of these features are not seen in other Hasegawa-Wakatani models, which confirms the critical role of the electron dynamics parallel to the magnetic field lines. To address questions regarding the role of boundary conditions on the drift-wave zonal flow dynamics, we apply our model to both a channel domain geometry and the more typical doubly periodic geometry. We only observe strong soliton-like solutions in the particle flux for the channel geometry, in the vicinity of the boundaries, where strong velocity shear and density gradients are generated which are absent in the doubly periodic simulations. Changing the aspect ratio of the simulation domain also has a significant effect. In domains which are elongated in the radial direction, more complex multiscale dynamics takes place, with multiple zonal jets interacting with each other, and large scale avalanches.

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