Multiscale cosmology and structure-emerging Dark Energy: A plausibility analysis
Abstract
Cosmological backreaction suggests a link between structure formation and the expansion history of the Universe. In order to quantitatively examine this connection, we dynamically investigate a volume partition of the Universe into over-- and underdense regions. This allows us to trace structure formation using the volume fraction of the overdense regions as its characterizing parameter. Employing results from cosmological perturbation theory and extrapolating the leading mode into the nonlinear regime, we construct a three--parameter model for the effective cosmic expansion history, involving , the matter density , and the Hubble rate of today's Universe. Taking standard values for and as well as a reasonable value for , that we derive from --body simulations, we determine the corresponding amounts of backreaction and spatial curvature. We find that the obtained values that are sufficient to generate today's structure also lead to a CDM--like behavior of the scale factor, parametrized by the same parameters and , but without a cosmological constant. However, the temporal behavior of does not faithfully reproduce the structure formation history. Surprisingly, however, the model matches with structure formation with the assumption of a low matter content, , a result that hints to a different interpretation of part of the backreaction effect as kinematical Dark Matter. (truncated)
Cite
@article{arxiv.1002.3912,
title = {Multiscale cosmology and structure-emerging Dark Energy: A plausibility analysis},
author = {Alexander Wiegand and Thomas Buchert},
journal= {arXiv preprint arXiv:1002.3912},
year = {2010}
}
Comments
25 pages, 10 figures, includes calculation of luminosity distances, matches published version in Phys. Rev. D