预初始条件对各向异性独立宇宙模拟的影响:再电离时代潮汐响应的增强

S. Masaki, T. Nishimichi, M. Takada
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引用次数: 2

摘要

为了生成宇宙学$N$ -body模拟的初始条件,需要准备模拟粒子的均匀分布,即所谓的预初始条件(pre-initial condition, ic)。构建预集成电路的标准方法是将粒子放置在三维空间坐标中均匀间隔的点阵网格上。然而,即使在每个粒子根据宇宙学扰动进行初始位移之后,粒子分布仍然表现出人为的各向异性。这种伪影在以后的模拟中会引起系统的影响,直到进化的粒子分布足以消除初始的各向异性。本文研究了pre-IC对各向异性独立宇宙模拟的影响,其中利用局部背景(模拟体积)的各向异性膨胀考虑了大尺度潮汐场对结构形成的影响。为了量化影响,我们比较了采用标准网格预集成电路和玻璃预集成电路的模拟,后者被认为可以抑制初始各向异性。我们表明,网格预ic模拟中的人工特征在$z\sim 9$之前都可以看到,而玻璃预ic模拟在我们研究的尺度范围内似乎是稳定和准确的。从这些结果中我们发现,在红移范围$5\lesssim z\lesssim 15$内,与准非线性状态下的微扰理论的一级预测相比,大尺度潮汐场与物质聚集的耦合得到了增强,这表明在如此高的红移时,例如在再电离时期,潮汐场对结构形成的重要性。
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Impacts of pre-initial conditions on anisotropic separate universe simulations: a boosted tidal response in the epoch of reionization
To generate initial conditions for cosmological $N$-body simulations, one needs to prepare a uniform distribution of simulation particles, so-called the pre-initial condition (pre-IC). The standard method to construct the pre-IC is to place the particles on the lattice grids evenly spaced in the three-dimensional spatial coordinates. However, even after the initial displacement of each particle according to cosmological perturbations, the particle distribution remains to display an artificial anisotropy. Such an artifact causes systematic effects in simulations at later time until the evolved particle distribution sufficiently erases the initial anisotropy. In this paper, we study the impacts of the pre-IC on the anisotropic separate universe simulation, where the effect of large-scale tidal field on structure formation is taken into account using the anisotropic expansion in a local background (simulation volume). To quantify the impacts, we compare the simulations employing the standard grid pre-IC and the glass one, where the latter is supposed to suppress the initial anisotropy. We show that the artificial features in the grid pre-IC simulations are seen until $z\sim 9$, while the glass pre-IC simulations appear to be stable and accurate over the range of scales we study. From these results we find that a coupling of the large-scale tidal field with matter clustering is enhanced compared to the leading-order prediction of perturbation theory in the quasi non-linear regime in the redshift range $5\lesssim z\lesssim 15$, indicating the importance of tidal field on structure formation at such high redshifts, e.g. during the epoch of reionization.
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