论文标题

具有一般性射线追踪的宇宙学距离:框架和与宇宙学预测的比较

Cosmological distances with general-relativistic ray tracing: framework and comparison to cosmographic predictions

论文作者

Macpherson, Hayley J.

论文摘要

在这项工作中,我们介绍了一种新的射线追踪工具,该工具在完全非线性的一般相对性的背景下计算宇宙学距离。我们使用此工具来研究亮度距离的一般掌握距离表示的能力,如在红移中的三阶截断,以准确捕获“真”光度距离的各向异性。我们使用宇宙学大规模结构形成的数值相对性模拟,这些模拟没有宇宙学中常见的简化假设。我们发现,当采样量表严格高于100 mpc/h时,红移至z \约0.034的一般三阶宇宙学的准确性在1%以内,这与较早的预测一致。我们发现,小规模结构的包含通常会破坏三阶宇宙学准确再现完整的光度距离的能力,从而获得宽的红移间隔。对于模拟采样小尺度结构,我们发现在z \约0.02处的射线跟踪光度距离的单极距离中的+/- 5%方差。此外,我们在此研究的所有25位观察者都在z \约0.03处的亮度距离的亮度距离中有9--20%的差异,这将降低至2--5%,至z \约0.1。这些计算基于模拟和射线追踪,这些模拟和射线追踪采用了完全非线性的一般相对性,并强调了在低红色各向同性宇宙学分析中公平的天空采样的潜在重要性。

In this work we present the first results from a new ray-tracing tool to calculate cosmological distances in the context of fully nonlinear general relativity. We use this tool to study the ability of the general cosmographic representation of luminosity distance, as truncated at third order in redshift, to accurately capture anisotropies in the "true" luminosity distance. We use numerical relativity simulations of cosmological large-scale structure formation which are free from common simplifying assumptions in cosmology. We find the general, third-order cosmography is accurate to within 1% for redshifts to z\approx 0.034 when sampling scales strictly above 100 Mpc/h, which is in agreement with an earlier prediction. We find the inclusion of small-scale structure generally spoils the ability of the third-order cosmography to accurately reproduce the full luminosity distance for wide redshift intervals, as might be expected. For a simulation sampling small-scale structures, we find a +/- 5% variance in the monopole of the ray-traced luminosity distance at z \approx 0.02. Further, all 25 observers we study here see a 9--20% variance in the luminosity distance across their sky at z \approx 0.03, which reduces to 2--5% by z \approx 0.1. These calculations are based on simulations and ray tracing which adopt fully nonlinear general relativity, and highlight the potential importance of fair sky-sampling in low-redshift isotropic cosmological analysis.

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