The growth of fluctuations in Chaplygin gas cosmologies: A nonlinear Jeans scale for unified dark matter
Abdelrahman Abdullah, Amr El-Zant, Ali Ellithi

TL;DR
This paper investigates the nonlinear growth of structures in standard Chaplygin gas cosmologies, proposing a nonlinear Jeans scale that allows for collapse at small scales and assessing its viability against observational data.
Contribution
It introduces a nonlinear analysis showing collapse possible in standard Chaplygin gas models, and predicts a nonlinear Jeans scale relevant to small-scale structure issues.
Findings
Collapse of perturbations of order 1 kpc is possible in standard Chaplygin gas.
A nonlinear Jeans scale constrains growth to scales larger than ~1 kpc.
Clustered Chaplygin gas cosmologies are consistent with observations at 1-sigma if the clustered fraction exceeds 90%.
Abstract
Unified dark matter cosmologies economically combine missing matter and energy in a single fluid. Of these models, the standard Chaplygin gas is theoretically motivated, but faces problems in explaining large scale structure if linear perturbations are directly imposed on the homogeneous fluid. However, early formation of a clustered component of small halos is sufficient (and necessary) for hierarchical clustering to proceed in a CDM-like component as in the standard scenario, with the remaining homogeneous component acting as dark energy. We examine this possibility. A linear analysis shows that a critical Press-Schecter threshold for collapse can generally only be reached for generalized Chaplygin gas models that mimic CDM, or ones where superluminal sound speeds occur. But the standard Chaplygin gas case turns out to be marginal, with overdensities reaching order one in the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Dark Matter and Cosmic Phenomena · Galaxies: Formation, Evolution, Phenomena
