Cosmological Simulations of Isotropic Conduction in Galaxy Clusters
arXiv:1306.5748 · doi:10.1088/0004-637X/778/2/152
Abstract
Simulations of galaxy clusters have a difficult time reproducing the radial gas-property gradients and red central galaxies observed to exist in the cores of galaxy clusters. Thermal conduction has been suggested as a mechanism that can help bring simulations of cluster cores into better alignment with observations by stabilizing the feedback processes that regulate gas cooling, but this idea has not yet been well tested with cosmological numerical simulations. Here we present cosmological simulations of ten galaxy clusters performed with five different levels of isotropic Spitzer conduction, which alters both the cores and outskirts of clusters, but not dramatically. In the cores, conduction flattens central temperature gradients, making them nearly isothermal and slightly lowering the central density but failing to prevent a cooling catastrophe there. Conduction has little effect on temperature gradients outside of cluster cores because outward conductive heat flow tends to inflate the outer parts of the intracluster medium (ICM) instead of raising its temperature. In general, conduction tends reduce temperature inhomogeneity in the ICM, but our simulations indicate that those homogenizing effects would be extremely difficult to observe in ~5 keV clusters. Outside the virial radius, our conduction implementation lowers the gas densities and temperatures because it reduces the Mach numbers of accretion shocks. We conclude that despite the numerous small ways in which conduction alters the structure of galaxy clusters, none of these effects are significant enough to make the efficiency of conduction easily measurable unless its effects are more pronounced in clusters hotter than those we have simulated.
13 pages, 13 figures. Submitted to The Astrophysical Journal
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- Triggering and Delivery Algorithms for AGN Feedback
- Cosmic Rays or Turbulence can Suppress Cooling Flows (Where Thermal Heating or Momentum Injection Fail)
- Growth and Evolution of Thermal Instabilities in Idealized Galaxy-Cluster Cores
- Strong suppression of heat conduction in a laboratory replica of galaxy-cluster turbulent plasmas
- The Biermann Catastrophe in Numerical MHD
- Viscosity, pressure, and support of the gas in simulations of merging cool-core clusters
- Cosmological Magnetogenesis: The Biermann Battery during the Epoch of Reionization
- The Evaporation and Survival of Cluster Galaxies' Coronae Part I: The Effectiveness of Isotropic Thermal Conduction Including Saturation
- Tests of AGN Feedback Kernels in Simulated Galaxy Clusters