Parametrising non-linear dark energy perturbations
Farbod Hassani, Benjamin L'Huillier, Arman Shafieloo, Martin Kunz,, Julian Adamek

TL;DR
This paper introduces a parameterization of non-linear dark energy effects using simulations and linear codes, enabling better modeling of $k$-essence models in cosmological analyses.
Contribution
It proposes a $ anh$-based parameterization of the effective parameter $$ for non-linear dark energy effects, validated against $N$-body simulations.
Findings
For high sound speed, linear predictions are accurate.
For low sound speed, non-linearities are significant.
The $ anh$-based parameterization captures non-linear effects effectively.
Abstract
In this paper, we quantify the non-linear effects from -essence dark energy through an effective parameter that encodes the additional contribution of a dark energy fluid or a modification of gravity to the Poisson equation. This is a first step toward quantifying non-linear effects of dark energy/modified gravity models in a more general approach. We compare our -body simulation results from -evolution with predictions from the linear Boltzmann code , and we show that for the -essence model one can safely neglect the difference between the two potentials, , and short wave corrections appearing as higher order terms in the Poisson equation, which allows us to use single parameter for characterizing this model. We also show that for a large -essence speed of sound the results are sufficiently accurate, while for a…
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