Numerical convergence of physical variables in hydrodynamical simulations of cooling clusters
arXiv:astro-ph/0110545 · doi:10.1086/338548
Abstract
Results from hydrodynamical SPH simulations of galaxy clusters are used to investigate the dependence of the final cluster X-ray properties on the numerical resolution and the assumed models for the physical gas processes. Two different spatially flat cosmological models have been considered: a low-density cold dark matter universe with a vacuum energy density Omega_L=0.7 (LCDM) and a cold+hot dark matter model (CHDM). These simulations first include radiative cooling and then also conversion of cold gas particles into stars. When cold gas particles are allowed to convert into stars the final gas profiles show a well defined core radius and the temperature profiles are nearly flat. For the most massive test cluster in the LCDM model, these simulations show a prominent cooling flow in the cluster core. This cluster was analyzed in detail, running simulations with different star formation methods and increasing numerical resolution. A comparison between different runs shows that the results of simulations, based on star formation methods in which gas conversion into stars is controlled by an efficiency parameter c_star, are sensitive to the numerical resolution of the simulation. In this respect star formation methods based instead on a local density threshold, as in Navarro and White (1993), are shown to give more stable results. Final X-ray luminosities are found to be numerically stable, with uncertainties of a factor two.
32 pages, 11 figures, to appear in ApJ
References in corpus (1)
Cited by in corpus (18)
- Response of dark matter halos to condensation of baryons: cosmological simulations and improved adiabatic contraction model
- Effects of Galaxy Formation on Thermodynamics of the Intracluster Medium
- Total mass biases in X-ray galaxy clusters
- The effect of non--gravitational gas heating in groups and clusters of galaxies
- Metal Enrichment of the ICM: a 3-D Picture of Chemical and Dynamical Properties
- A Comparison of Cosmological Codes: Properties of Thermal Gas and Shock Waves in Large Scale Structures
- Iron abundances and heating of the ICM in hydrodynamical simulations of galaxy clusters
- Effect of Internal Flows on Sunyaev-Zeldovich Measurements of Cluster Peculiar Velocities
- Formation of Cool Cores in Galaxy Clusters via Hierarchical Mergers
- Large-Scale Structure Formation: from the first non-linear objects to massive galaxy clusters
- The MUSIC of Galaxy Clusters II: X-ray global properties and scaling relations
- Thermal and non-thermal traces of AGN feedback: results from cosmological AMR simulations
- The () vs. as a tracer of early-type galaxies evolution in USGC U376 and LGG 225 groups
- The entropy core in galaxy clusters: numerical and physical effects in cosmological grid simulations
- X-ray temperature spectroscopy of simulated cooling clusters
- Can Supermassive Black Holes Sufficiently Heat Cool Cores of Galaxy Clusters?
- Clusters of galaxies: setting the stage
- Parallelization of a treecode