论文标题

现实的3D流体动力学模拟发现大量恒星中的湍流夹带

Realistic 3D hydrodynamics simulations find significant turbulent entrainment in massive stars

论文作者

Rizzuti, F., Hirschi, R., Georgy, C., Arnett, W. D., Meakin, C., Murphy, A. StJ.

论文摘要

我们对来自一维(1D)恒星模型的恒星结构和进化的理解受到与恒星内饰发生的多维过程有关的不确定性的限制。但是,现在可以借助详细的三维(3D)流体动力学模型来测试和改进1D模型,该模型可以在短时标准的情况下重现复杂的多维过程,这要归功于计算资源的最新进展。在这些过程中,湍流的夹带导致跨对流边界混合是最了解和最有影响力的之一。在这里,我们介绍了巨大恒星中霓虹灯壳的一系列流体动力学模拟,并在地球物理学的湍流夹带定律的框架内解释它们。我们的模拟与以前在繁殖出色环境的现实主义程度上的研究程度不同。重要的是,在模拟中发现的强烈夹带突出了当前在1D恒星模型中对流边界混合的主要缺陷。因此,这项研究要求对对流边界以1D建模,尤其是这些模型中的夹带实施进行重大修订。这将对超新星理论,核合成,中子恒星和黑洞物理学具有重要意义。

Our understanding of stellar structure and evolution coming from one-dimensional (1D) stellar models is limited by uncertainties related to multi-dimensional processes taking place in stellar interiors. 1D models, however, can now be tested and improved with the help of detailed three-dimensional (3D) hydrodynamics models, which can reproduce complex multi-dimensional processes over short timescales, thanks to the recent advances in computing resources. Among these processes, turbulent entrainment leading to mixing across convective boundaries is one of the least understood and most impactful. Here we present the results from a set of hydrodynamics simulations of the neon-burning shell in a massive star, and interpret them in the framework of the turbulent entrainment law from geophysics. Our simulations differ from previous studies in their unprecedented degree of realism in reproducing the stellar environment. Importantly, the strong entrainment found in the simulations highlights the major flaws of the current implementation of convective boundary mixing in 1D stellar models. This study therefore calls for major revisions of how convective boundaries are modelled in 1D, and in particular the implementation of entrainment in these models. This will have important implications for supernova theory, nucleosynthesis, neutron stars and black holes physics.

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