论文标题

低prandtl数字的水平剪切不稳定性

Horizontal shear instabilities at low Prandtl number

论文作者

Garaud, P.

论文摘要

在大多数恒星演化模型中,通常会忽略恒星辐射区域中的湍流混合。但是,越来越多的理论和观察性证据表明这种混合存在,并且可能影响恒星生活的各个方面。在这项工作中,我们首次尝试使用直接数值模拟来量化恒星中水平剪切不稳定性的混合。剪切作用是由身体力驱动的,并且迅速变得不稳定。饱和时,我们发现存在几种不同的动力学状态,这取决于分层和热扩散的相对重要性(原则上也可以很重要,但在大多数恒星应用中通常可以忽略不计)。在确定的每个方案中,我们提出了一定数量的理论动机缩放定律,以呈湍流涡流尺度,典型的湍流扩散系数以及温度波动的典型幅度(包括其他数量)。根据我们的发现,我们预测,大多数恒星应属于两类之一:高péclet数量分层湍流,而较低的péclet数量分层湍流。后者在Cope等人的相关论文中详细介绍。 (2020),而前者在这里讨论。将我们的结果应用于最著名的恒星剪切层,即太阳速度线,我们发现它应该位于高péclet数量分层的湍流方案中,并预测温度,动量和组成的大量垂直混合。从原样的角度来看,新的湍流模型预测与太阳能赛的Spiegel&Zahn(1992)模型不相容。但是,我们还表明旋转和磁场可能会影响湍流,并且需要在以后的研究中考虑。

Turbulent mixing in the radiative regions of stars is usually either ignored or crudely accounted for in most stellar evolution models. However, there is growing theoretical and observational evidence that such mixing is present and can affect various aspects of a star's life. In this work, we present a first attempt at quantifying mixing by horizontal shear instabilities in stars using Direct Numerical Simulations. The shear is driven by a body force, and rapidly becomes unstable. At saturation, we find that several distinct dynamical regimes exist, depending on the relative importance of stratification and thermal diffusion (viscosity can in principle also matter, but is usually negligible in most stellar applications). In each of the regimes identified, we put forward a certain number of theoretically motivated scaling laws for the turbulent vertical eddy scale, the typical turbulent diffusion coefficient, and the typical amplitude of temperature fluctuations (among other quantities). Based on our findings, we predict that the majority of stars should fall into one of two categories: high Péclet number stratified turbulence, and low Péclet number stratified turbulence. The latter is presented in detail in a related paper by Cope et al. (2020), while the former is discussed here. Applying our results to the best-known stellar shear layer, namely the solar tachocline, we find that it should lie in the high Péclet number stratified turbulence regime, and predict a substantial amount of vertical mixing for temperature, momentum and composition. Taken as is, the new turbulence model predictions are incompatible with the Spiegel & Zahn (1992) model of the solar tachocline. However, we also show that rotation and magnetic fields are likely to affect the turbulence, and need to be taken into account in future studies.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源