An Evolving Entropy Floor in the Intracluster Gas?
Wenjuan Fang, Zoltan Haiman (Columbia University)

TL;DR
This study models the evolution of entropy in intracluster gas, showing that an increasing entropy floor with redshift can explain observed X-ray properties and cluster counts, aligning with quasar activity history.
Contribution
It introduces a model with an evolving entropy floor that fits X-ray scaling relations and cluster counts, linking entropy evolution to quasar activity.
Findings
Evolving entropy floor K_0(z)=341(1+z)^{-0.83}h^{-1/3} keV cm^2 fits observed data.
Entropy increase from z=0.8 to 0.05 is about 60%, consistent with quasar heating.
Best-fit sigma_8=0.80±0.02 from cluster counts.
Abstract
Non-gravitational processes, such as feedback from galaxies and their active nuclei, are believed to have injected excess entropy into the intracluster gas, and therefore to have modified the density profiles in galaxy clusters during their formation. Here we study a simple model for this so-called preheating scenario, and ask (i) whether it can simultaneously explain both global X-ray scaling relations and number counts of galaxy clusters, and (ii) whether the amount of entropy required evolves with redshift. We adopt a baseline entropy profile that fits recent hydrodynamic simulations, modify the hydrostatic equilibrium condition for the gas by including approx. 20% non-thermal pressure support, and add an entropy floor K_0 that is allowed to vary with redshift. We find that the observed luminosity-temperature (L-T) relations of low-redshift (z=0.05) HIFLUGCS clusters and…
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Taxonomy
TopicsGas Dynamics and Kinetic Theory · Advanced Thermodynamics and Statistical Mechanics · Phase Equilibria and Thermodynamics
