Eulerian Perturbation Theory in Non-Flat Universes: Second-Order Approximation
Abstract
The problem of solving perturbatively the equations describing the evolution of self-gravitating collisionless matter in an expanding universe considerably simplifies when directly formulated in terms of the gravitational and velocity potentials: the problem can be solved {\it exactly}, rather than approximately, even for cosmological models with arbitrary density parameter . The Eulerian approach we present here allows to calculate the higher-order moments of the initially Gaussian density and velocity fields: in particular, we compute the gravitationally induced skewness of the density and velocity-divergence fields for any value of , confirming the extremely weak -dependence of the skewness previously obtained via Lagrangian perturbation theory. Our results show that the separability assumption of higher-order Eulerian perturbative solutions is restricted to the Einstein-de Sitter case only.
Cite
@article{arxiv.astro-ph/9411066,
title = {Eulerian Perturbation Theory in Non-Flat Universes: Second-Order Approximation},
author = {Paolo Catelan and Francesco Lucchin and Sabino Matarrese and Lauro Moscardini},
journal= {arXiv preprint arXiv:astro-ph/9411066},
year = {2015}
}
Comments
17 pages, Latex (mn.sty), 1 figure, revised version (1 figure is dropped; eq.46 is corrected and some consequent results are re-discussed), to be published in Monthly Notices of the Royal Astronomical Society