Hydrodynamical simulations of coupled and uncoupled quintessence models II: Galaxy clusters
arXiv:1401.5326 · doi:10.1093/mnras/stu151
Abstract
We study the properties of clusters (and large groups) of galaxies within the context of interacting and non-interacting quintessence cosmological models, using a series of adiabatic SPH simulations. Initially, we examine the average properties of groups and clusters, quantifying their differences in LCDM, uncoupled Dark Energy (\ude) and coupled Dark Energy (\cde) cosmologies. In particular, we focus upon radial profiles of the gas density, temperature and pressure, and we also investigate how the standard hydrodynamic equilibrium hypothesis holds in quintessence cosmologies. While we are able to confirm previous results about the distribution of baryons, we also find that the main discrepancy (with differences up to ) can be seen in cluster pressure profiles. We then switch attention to individual structures, mapping each halo in quintessence cosmology to its \LCDM\ counterpart. We are able to identify a series of small correlations between the coupling in the dark sector and halo spin, triaxiality and virialization ratio. When looking at spin and virialization of dark matter haloes, we find a weak () but systematic deviation in fifth force scenarios from \LCDM.
12 pages. Accepted for publication in MNRAS
References in corpus (8)
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- Semi-analytic galaxy formation in coupled dark energy cosmologies
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- Matter in the beam: Weak lensing, substructures and the temperature of dark matter
- Cosmological Signatures of Dark Sector Physics: The Evolution of Haloes and Spin Alignment
- Degeneracy between warm and coupled cold dark matter: A clarifying note