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GYROSCOPIC PUMPING OF LARGE-SCALE FLOWS IN STELLAR INTERIORS AND APPLICATION TO LITHIUM-DIP STARS

机译:恒星内部大流量的陀螺泵送及其在锂浸星中的应用

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The maintenance of large-scale differential rotation in stellar convective regions by rotationally influenced convective stresses also drives large-scale meridional flows by angular-momentum conservation. This process is an example of "gyroscopic pumping" and has recently been studied in detail in the solar context. An important question concerns the extent to which these gyroscopically pumped meridional flows penetrate into nearby stably stratified (radiative) regions, since they could potentially be an important source of non-local mixing. Here, we present an extensive study of the gyroscopic pumping mechanism, using a combination of analytical calculations and numerical simulations both in Cartesian geometry and in spherical geometry. The various methods, when compared with one another, provide physical insight into the process itself, as well as increasingly sophisticated means of estimating the gyroscopic pumping rate. As an example of application, we investigate the effects of this large-scale mixing process on the surface abundances of the light elements Li and Be for stars in the mass range 1.3-1.5 M ☉ (the so-called Li-dip stars). We find that gyroscopic pumping is a very efficient mechanism for circulating material between the surface and the deep interior, so much in fact that it overestimates Li and Be depletion by orders of magnitude for stars on the hot side of the dip. However, when the diffusion of chemical species back into the surface convection zone is taken into account, a good fit with observed surface abundances of Li and Be as a function of stellar mass in the Hyades cluster can be found for reasonable choices of model parameters.
机译:受旋转影响的对流应力维持恒星对流区域的大规模差动旋转,也通过角动量守恒来驱动大规模的子午流。此过程是“陀螺泵送”的一个示例,最近在太阳环境下进行了详细研究。一个重要的问题涉及这些陀螺泵送的子午流渗透到附近的稳定分层(辐射)区域的程度,因为它们可能是非本地混合的重要来源。在这里,我们结合笛卡尔几何和球形几何中的解析计算和数值模拟,对陀螺泵浦机理进行了广泛的研究。相互比较时,各种方法提供了对过程本身的物理洞察力,以及越来越复杂的估算陀螺泵送速度的方法。作为应用示例,我们研究了这种大规模混合过程对质量范围为1.3-1.5 M stars的恒星(所谓的Li倾角恒星)的Li和Be轻元素的表面丰度的影响。我们发现,陀螺仪抽水是使物质在表面和深部内部之间循环的一种非常有效的机制,事实上,它对浸入热侧的恒星高估了Li和Be的损耗,数量级高。但是,当考虑到化学物质向表面对流区的扩散时,可以合理地选择模型参数,从而发现与Hyades团簇中恒星质量相关的Li和Be的表面丰度与拟合度很好。

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