论文标题

使用流体动力学模拟估算Helioseiscic表面术语的非结构分量

Estimating the nonstructural component of the helioseismic surface term using hydrodynamic simulations

论文作者

Schou, J., Birch, A. C.

论文摘要

随着可用的星空数据的数量继续增长,无法准确模拟观察到的振荡频率正在成为解释这些频率的关键问题。该问题的主要组成部分是近表面层的建模。我们的目的是开发一种方法来估计近表面层对振荡频率的影响。在提出的方法中,我们在3D流体动力模拟中数值估计征征。我们将它们与从应用于结构变量水平平均值的经典方程计算得出的本征函数匹配。我们使用此过程来计算振荡与近表面对流相互作用的动态部分产生的频率扰动。作为最后一步,我们将数字扩展到太阳。为了对我们的方法进行定性测试,我们进行了一系列模拟,使用我们的程序计算了扰动,并将其与先前报道的相对于太阳能模型进行了比较。我们发现,我们可以在很大程度上重现观察到的频率残差,而无需诉诸于理性的理论模型。我们发现,而Houdek等人的计算。 (2017年,MNRA,464,L124)产生相似的频率扰动,此处计算的密度压力相差不匹配该工作的密度差异。

As the amount of asteroseismic data available continues to grow, the inability to accurately model observed oscillation frequencies is becoming a critical problem for interpreting these frequencies. A major component of this problem is the modeling of the near-surface layers. Our aim is to develop a method to estimate the effect of the near-surface layers on oscillation frequencies. In the proposed method we numerically estimate eigenfunctions in 3D hydrodynamic simulations. We match those to the eigenfunctions calculated from the classic equations applied to the horizontal averages of the structure variables. We use this procedure to calculate the frequency perturbation resulting from the dynamical part of the interaction of the oscillations with near-surface convection. As the last step we scale the numbers to the Sun. To provide a qualitative test of our method we performed a series of simulations, calculated the perturbations using our procedure, and compared them to previously reported residuals relative to solar models. We find that we can largely reproduce the observed frequency residuals without resorting to poorly justified theoretical models. We find that, while the calculations of Houdek et al. (2017, MNRAS, 464, L124) produce similar frequency perturbations, the density-pressure phase differences computed here do not match those of that work.

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