English

Low-redshift tests of Newtonian cosmologies with a time-varying gravitational constant

Cosmology and Nongalactic Astrophysics 2020-09-01 v2

Abstract

In this work, we investigate Newtonian cosmologies with a time-varying gravitational constant, G(t)G(t). We examine whether such models can reproduce the low-redshift cosmological observations without a cosmological constant, or any other sort of explicit dark energy fluid. Starting with a modified Newton's second law, where GG is taken as a function of time, we derive the first Friedmann--Lema{\^i}tre equation, where a second parameter, GG^*, appears as the gravitational constant. This parameter is related to the original GG from the second law, which remains in the acceleration equation. We use this approach to reproduce various cosmological scenarios that are studied in the literature, and we test these models with low-redshift probes: type-Ia supernovae (SNIa), baryon acoustic oscillations, and cosmic chronometers, taking also into account a possible change in the supernovae intrinsic luminosity with redshift. As a result, we obtain several models with similar χ2\chi^2 values as the standard Λ\LambdaCDM cosmology. When we allow for a redshift-dependence of the SNIa intrinsic luminosity, a model with a GG exponentially decreasing to zero while remaining positive (model 4) can explain the observations without acceleration. When we assume no redshift-dependence of SNIa, the observations favour a negative GG at large scales, while GG^* remains positive for most of these models. We conclude that these models offer interesting interpretations to the low-redshift cosmological observations, without needing a dark energy term.

Keywords

Cite

@article{arxiv.1906.11219,
  title  = {Low-redshift tests of Newtonian cosmologies with a time-varying gravitational constant},
  author = {Ekim Taylan Hanımeli and Isaac Tutusaus and Brahim Lamine and Alain Blanchard},
  journal= {arXiv preprint arXiv:1906.11219},
  year   = {2020}
}

Comments

Matching the version published at MNRAS, https://doi.org/10.1093/mnras/staa2310