论文标题

宇宙学特征在两点统计中的影响超出线性统计

Impact of cosmological signatures in two-point statistics beyond the linear regime

论文作者

Gomez-Navarro, Dante V., Mead, Alexander, Aviles, Alejandro, de la Macorra, Axel

论文摘要

$λ$ CDM宇宙学模型的一些超出$λ$,具有遭受相过渡的黑区域能量密度。在这种过渡期间进入地平线的波动可以接收增强功能,这些增强功能最终显示为功率谱相对于没有相变的模型的独特颠簸。在这项工作中,我们使用N体模拟,扰动理论和HMCode(一种基于卤代模型的方法)研究了物质功率谱和相关函数中此类特征的非线性演变。我们专注于对响应进行建模,该响应计算为包含凸起的模型与没有肿块的模型之间的统计比,而不是统计本身。我们没有使用特定的理论模型,而是将高斯颠簸的参数家族注入否则标准的$λ$ CDM光谱中。我们发现,即使原始凹凸位于线性尺度上,非线性也倾向于在较小的尺度下产生第二个凹痕。由于更有效的光环形成,在光晕模型中可以理解此效果。在红移空间中,这些非线性特征被部分删除,因为沿着小尺度上的颗粒的非连贯运动产生的偏远方向受阻。在配置空间中,凸起调节相关函数反映为响应中的振荡,这在线性欧拉理论中很明显。但是,由于大规模相干流的趋势占据颗粒更耗尽的区域,因此它们变得受阻。在拉格朗日扰动理论中解释了这种机制,并被我们的模拟捕获。

Some beyond $Λ$CDM cosmological models have dark-sector energy densities that suffer phase transitions. Fluctuations entering the horizon during such a transition can receive enhancements that ultimately show up as a distinctive bump in the power spectrum relative to a model with no phase transition. In this work, we study the non-linear evolution of such signatures in the matter power spectrum and correlation function using N-body simulations, perturbation theory and HMcode - a halo-model based method. We focus on modelling the response, computed as the ratio of statistics between a model containing a bump and one without it, rather than in the statistics themselves. Instead of working with a specific theoretical model, we inject a parametric family of Gaussian bumps into otherwise standard $Λ$CDM spectra. We find that even when the primordial bump is located at linear scales, non-linearities tend to produce a second bump at smaller scales. This effect is understood within the halo model due to a more efficient halo formation. In redshift space these nonlinear signatures are partially erased because of the damping along the line-of-sight direction produced by non-coherent motions of particles at small scales. In configuration space, the bump modulates the correlation function reflecting as oscillations in the response, as it is clear in linear Eulerian theory; however, they become damped because large scale coherent flows have some tendency to occupy regions more depleted of particles. This mechanism is explained within Lagrangian Perturbation Theory and well captured by our simulations.

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