论文标题
本本征自相互作用如何影响带有环形系统大小的Tokamak核心湍流的纬向流和收敛性
How eigenmode self-interaction affects zonal flows and convergence of tokamak core turbulence with toroidal system size
论文作者
论文摘要
自我交流是沿平行于与磁场的方向延伸的微扰动本征素模的过程,非线性与自身相互作用。这种效果在考虑到动力学传递电子动力学的陀螺仪模拟中尤其重要。已知自相互作用会产生固定的$ e \ times b $ zonal流动剪切层在径向位置附近的低订单模式有理表面[Weikl等。 al。,物理。等离子体25,072305(2018)]。但是,我们发现它在产生波动的区域流中也起着重要作用,这对于整个径向范围内调节运输至关重要。与Zonal流动驱动器的通常图片不同,微扰动征具有相干性的征素驱动器,从这些特征模型中的Zonal流量的自我交互驱动器彼此不相关。结果表明,随着模拟中有更多的环形模式,波动层流的相关剪切速率会降低。在通量管模拟的整个环形结构域中,环形模式的密度增加对应于系统尺寸的增加,从而导致有限的系统尺寸效应与众所周知的剖面剪切效果不同。
Self-interaction is the process by which a microturbulence eigenmode that is extended along the direction parallel to the magnetic field interacts with itself non-linearly. This effect is particularly significant in gyrokinetic simulations accounting for kinetic passing electron dynamics. Self-interaction is known to generate stationary $E\times B$ zonal flow shear layers at radial locations near low order mode rational surfaces [Weikl et. al., Phys. Plasmas 25, 072305 (2018)]. We find however that it also plays a significant role in generating fluctuating zonal flows, which is critical to regulating transport throughout the radial extent. Unlike the usual picture of zonal flow drive where microturbulence eigenmodes coherently amplify the flow, the self-interaction drive of zonal flows from these eigenmodes are uncorrelated with each other. It is shown that the associated shearing rate of the fluctuating zonal flows therefore reduces as more toroidal modes are resolved in the simulation. In flux-tube simulations accounting for the full toroidal domain, such an increase in the density of toroidal modes corresponds to an increase in the system size, leading to a finite system size effect that is distinct from the well-known profile shearing effect.