On the maximum volume of collapsing structures
Abstract
In many cosmological models, including the CDM concordance model, there exist a theoretical upper bounds on the size of collapsing structures. The most common formulations in the literature refer to a turnaround radius in spherical symmetry or a turnaround surface, defined as the zero-expansion boundary separating the outer Hubble flow from the inner flow of a collapsing fluid. In order to access a generic scenario, we propose an improvement of this cosmological test in terms of the maximum volume of the cosmological structures, which is equivalent to a zero-averaged expansion -- instead of the zero-local expansion. By combining the Lagrangian perturbations method and the scalar averaging of Einstein's equations, we obtain a maximum volume for a collapse model without any restricting symmetries. We compare this result with some exact, inhomogeneous solutions and discuss further potential developments.
Cite
@article{arxiv.2112.05245,
title = {On the maximum volume of collapsing structures},
author = {Jan J. Ostrowski and Ismael Delgado Gaspar},
journal= {arXiv preprint arXiv:2112.05245},
year = {2022}
}
Comments
13 pages, 2 figures, v.2, minor corrections, main results unchanged