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Solar differential rotation: hints to reproduce a near-surface shear layer in global simulations

机译:太阳差分旋转:提示在全球模拟中重现近表面剪切层

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Convective turbulent motions in the solar interior, as well as the mean flows resulting from them, determine the evolution of the solar magnetic field. With the aim to get a better understanding of these flows we study anelastic rotating convection in a spherical shell whose stratification resembles that of the solar interior. This study is done through numerical simulations performed with the EULAG code. Due to the numerical formulation, these simulations are known as implicit large eddy simulations (ILES), since they intrinsically capture the contribution of, non-resolved, small scales at the same time maximizing the effective Reynolds number. We reproduce some previous results and find a transition between buoyancy and rotation dominated regimes which results in anti-solar or solar like rotation patterns. Even thought the rotation profiles are dominated by Taylor-Proudman columnar rotation, we are able to reproduce the tachocline and a low latitude near-surface shear layer. We find that simulations results depend on the grid resolution as a consequence of a different sub-grid scale contribution.
机译:太阳内部的对流湍流运动,以及由它们产生的平均流动,确定太阳磁场的演变。旨在更好地了解这些流动,我们研究了在球形壳中的Anelastic旋转对流,其分层类似于太阳内部。本研究通过使用eulag代码执行的数值模拟来完成。由于数值配方,这些模拟被称为隐式大涡模拟(ILE),因为它们本质上捕获了不分辨,小尺度的贡献,同时最大化了有效的雷诺数。我们重现了一些先前的结果,并在浮力和旋转主导地位之间找到过渡,这导致防太阳能或太阳能旋转图案。甚至认为旋转轮廓是由Taylor-Liplyman柱状旋转主导的,我们能够再现Tachocline和低纬度近表面剪切层。我们发现,由于不同的子网格规模贡献,模拟结果取决于网格分辨率。

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