Cosmological perturbation theory using generalized Einstein de Sitter cosmologies
Michael Joyce, Azrul Pohan

TL;DR
This paper extends cosmological perturbation theory to generalized Einstein de Sitter models with non-clustering fluids, deriving analytical kernels and simplifying the calculation of power spectrum corrections in standard cosmologies.
Contribution
It introduces a generalized perturbation theory framework for gEdS cosmologies, providing analytic kernels and a simplified method to compute power spectrum corrections in standard models.
Findings
Analytic kernels for gEdS models derived for Eulerian and Lagrangian perturbation theories.
Power spectrum corrections in standard cosmologies can be approximated using gEdS results with effective growth rates.
The approximation using gEdS kernels achieves about 25% accuracy for the power spectrum.
Abstract
The separable analytical solution in standard perturbation theory for an Einstein de Sitter (EdS) universe can be generalized to the wider class of such cosmologies (``generalized EdS'', or gEdS) in which a fraction of the pressure-less fluid does not cluster. We derive the corresponding kernels in both Eulerian perturbation theory (EPT) and Lagrangian perturbation theory, generalizing the canonical EdS expressions to a one-parameter family where the parameter can be taken to be the exponent of the growing mode linear amplification . For the power spectrum (PS) at one loop in EPT, the contribution additional to standard EdS is given, for each of the `13' and `22' terms, as a function of two infra-red safe integrals. In the second part of the paper we show that the calculation of cosmology-dependent corrections in perturbation theory in standard (e.g.…
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