Energetics of X-ray Cavities and Radio Lobes in Galaxy Clusters
arXiv:0805.2441 · doi:10.1086/590402
Abstract
We describe the formation and evolution of X-ray cavities in the hot gas of galaxy clusters. The cavities are formed only with relativistic cosmic rays that eventually diffuse into the surrounding gas. We explore the evolution of cavities formed with a wide range of cosmic ray diffusion rates. In previous numerical simulations cavities are formed by injecting ultra-hot but non-relativistic gas which increases the global thermal energy, offsetting radiative losses in the gas and helping to solve the cooling flow problem. Contrary to these results, we find that X-ray cavities formed solely by cosmic rays have a global cooling effect. As the cluster gas is displaced by cosmic rays, a global expansion of the cluster gas occurs with associated cooling that exceeds the heating by shock waves as the cavity forms. Most cosmic rays in our cavity evolutions do not move beyond the cooling radius even after 1 Gyr. The gas density is depressed by cosmic rays, becomes buoyant, and undergoes a significant outward mass transfer within the cooling radius, carrying cosmic rays and relatively low entropy gas to distant regions in the cluster where it remains for times exceeding the local cooling time in the hot gas. This post-cavity mass outflow due to cosmic ray buoyancy may contribute toward solving the cooling flow problem. We describe the energetics, size, stability and buoyant rise of X-ray cavities in detail, showing how each depends on the rate of cosmic ray diffusion.
17 pages, 8 figures, accepted by ApJ
References in corpus (8)
- Heating Hot Atmospheres with Active Galactic Nuclei
- Investigating AGN Heating in a Sample of Nearby Clusters
- Asymmetries in the inner regions of LCDM haloes
- Stopping Cooling Flows with Jets
- Spitzer Observations of Transient, Extended Dust in Two Elliptical Galaxies: New Evidence of Recent Feedback Energy Release in Galactic Cores
- Buoyant Bubbles in a Cooling Intracluster Medium I. Hydrodynamic Bubbles
- Creation of the X-ray Cavity Jet and its Radio Lobe in M87/Virgo with Cosmic Rays; Relevance to Relic Radio Sources
- Morphology of flows and buoyant bubbles in the Virgo cluster
Cited by in corpus (10)
- How AGN Jets Heat the Intracluster Medium -- Insights from Hydrodynamic Simulations
- X-ray cavities in a sample of 83 SPT-selected clusters of galaxies: Tracing the evolution of AGN feedback in clusters of galaxies out to z=1.2
- Hydrostatic Gas Constraints on Supermassive Black Hole Masses: Implications for Hydrostatic Equilibrium and Dynamical Modelling in a Sample of Early-Type Galaxies
- Recent Progress in Modeling the Macro- and Micro-Physics of Radio Jet Feedback in Galaxy Clusters
- Numerical simulations of buoyancy instabilities in galaxy cluster plasmas with cosmic rays and anisotropic thermal conduction
- Stopping Cooling Flows with Cosmic Ray Feedback
- Gas sloshing and cold fronts in pre-merging galaxy cluster Abell 98
- Evolution and feedback of AGN Jets of different Cosmic-ray Composition
- Chandra and XMM-Newton observations of the merging cluster of galaxies PLCK G036.7+14.9
- Predicting Sunyaev-Zel'dovich effect observations of galaxy cluster cavities with the Square Kilometre Array