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Role of parallel compression in potential vorticity mixing and zonal flow generation: a gyrokinetic simulation study

机译:平行压缩在潜在涡旋混合和纬向流产生中的作用:动力学模拟研究

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From global delta f gyrokinetic simulations of toroidal ion temperature gradient-driven turbulence, we show that the ion parallel compression has a strong influence on the generation and radial profile formation of zonal flows. The kinetic potential vorticity (PV) flux and its fluid expression are used to elucidate the zonal flow generation mechanism. In the absence of sheared equilibrium flow, the dominant contributions to the net PV flux are shown to come from the parallel compression and the grad-B drift, and to largely cancel out each other. With a finite parallel rotation shear, however, the parallel compression-driven flux becomes dominant over the grad-B drift-driven one, leading to a change in the radial zonal flow profile. The imbalance between the parallel compression and the grad-B drifts results in a considerable amplification of the zonal flow and a reduction of turbulence fluctuation levels as compared to the non-rotating plasma. These findings demonstrate an essential role of the parallel compression in the zonal flow generation and confinement improvement for rotating tokamak plasmas.
机译:从环面离子温度梯度驱动的湍流的整体三角动力学分析中,我们表明,离子平行压缩对纬向流的产生和径向剖面的形成有很大的影响。动力学势涡(PV)通量及其流体表达被用来阐明纬向流产生的机理。在没有剪切平衡流的情况下,对净PV通量的主要贡献显示为来自平行压缩和grad-B漂移,并且在很大程度上相互抵消。但是,在有限的平行旋转剪切力的作用下,平行压缩驱动的通量将超过grad-B漂移驱动的通量,从而导致径向纬向流动剖面发生变化。与非旋转等离子体相比,平行压缩和grad-B漂移之间的不平衡导致纬向流动的显着放大和湍流波动水平的降低。这些发现证明了平行压缩在旋转流动托卡马克等离子体的地带流产生和封闭改进中的重要作用。

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