English

The spherical collapse model in time varying vacuum cosmologies

Cosmology and Nongalactic Astrophysics 2014-11-21 v2 General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We investigate the virialization of cosmic structures in the framework of flat FLRW cosmological models, in which the vacuum energy density evolves with time. In particular, our analysis focuses on the study of spherical matter perturbations, as they decouple from the background expansion, "turn around" and finally collapse. We generalize the spherical collapse model in the case when the vacuum energy is a running function of the Hubble rate, Λ=Λ(H)\Lambda=\Lambda(H). A particularly well motivated model of this type is the so-called quantum field vacuum, in which Λ(H)\Lambda(H) is a quadratic function, Λ(H)=n0+n2H2\Lambda(H)=n_0+n_2\,H^2, with n00n_0\neq 0. This model was previously studied by our team using the latest high quality cosmological data to constrain its free parameters, as well as the predicted cluster formation rate. It turns out that the corresponding Hubble expansion history resembles that of the traditional Λ\LambdaCDM cosmology. We use this Λ(t)\Lambda(t)CDM framework to illustrate the fact that the properties of the spherical collapse model (virial density, collapse factor, etc.) depend on the choice of the considered vacuum energy (homogeneous or clustered). In particular, if the distribution of the vacuum energy is clustered, then, under specific conditions, we can produce more concentrated structures with respect to the homogeneous vacuum energy case.

Keywords

Cite

@article{arxiv.1005.5592,
  title  = {The spherical collapse model in time varying vacuum cosmologies},
  author = {S. Basilakos and M. Plionis and J. Sola},
  journal= {arXiv preprint arXiv:1005.5592},
  year   = {2014}
}

Comments

14 pages, 4 figures, minor changes, accepted for publication in Phys. Rev. D

R2 v1 2026-06-21T15:29:50.704Z