Separate universe approach to evaluate nonlinear matter power spectrum for non-flat $\Lambda$CDM model
Abstract
The spatial curvature () of the Universe is one of the most fundamental quantities that could give a link to the early universe physics. In this paper we develop an approximate method to compute the nonlinear matter power spectrum, , for "non-flat" CDM models using the separate universe (SU) ansatz which states that the effect of the curvature on structure formation is equivalent to that of long-wavelength density fluctuation () in a local volume in the "flat" CDM model, via the specific mapping between the background cosmological parameters and redshifts in the non-flat and flat models. By utilizing the fact that the normalized response of to (equivalently ), which describes how the non-zero alters as a function of , is well approximated by the response to the Hubble parameter within the flat model, our method allows one to generalize the prediction of for flat cosmologies via fitting formulae or emulators to that for non-flat cosmologies. We use -body simulations for the non-flat CDM models with to show that our method can predict for non-flat models up to in the redshift range , to the fractional accuracy within % that roughly corresponds to requirements for weak lensing cosmology with upcoming surveys. We find that the emulators, those built for flat cosmologies such as EuclidEmulator, can predict the non-flat with least degradation.
Keywords
Cite
@article{arxiv.2205.10339,
title = {Separate universe approach to evaluate nonlinear matter power spectrum for non-flat $\Lambda$CDM model},
author = {Ryo Terasawa and Ryuichi Takahashi and Takahiro Nishimichi and Masahiro Takada},
journal= {arXiv preprint arXiv:2205.10339},
year = {2022}
}
Comments
18 pages, 11 figures