Strongly Coupled Dark Energy Cosmologies: preserving LCDM success and easing low scale problems II - Cosmological simulations
Andrea V. Macci\`o (MPIA), Roberto Mainini (Bicocca), Camilla Penzo, (MPIA), Silvio A. Bonometto (Trieste)

TL;DR
This paper presents N-body simulations of strongly coupled Dark Energy models (SCDEW), showing they can match large-scale structure and small-scale galactic observations, potentially offering an alternative to LCDM.
Contribution
First N-body simulations of SCDEW models demonstrating their ability to reproduce large-scale and small-scale cosmic structures.
Findings
SCDEW haloes have similar number density and distribution as LCDM on large scales.
Galactic halos in SCDEW have 60% fewer substructures than LCDM.
SCDEW satellites exhibit cored density profiles consistent with observations.
Abstract
In this second paper we present the first Nbody cosmological simulations of strongly coupled Dark Energy models (SCDEW), a class of models that alleviates theoretical issues related to the nature of dark energy. SCDEW models assume a strong coupling between Dark Energy (DE) and an ancillary Cold Dark Matter (CDM) component together with the presence of an uncoupled Warm Dark Matter component. The strong coupling between CDM and DE allows us to preserve small scale fluctuations even if the warm particle is quite light ( eV). Our large scale simulations show that, for , SCDEW haloes exhibit a number density and distribution similar to a standard Lambda Cold Dark Matter (LCDM) model, even though they have lower concentration parameters. High resolution simulation of a galactic halo () shows less substructures…
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