On the exclusion of intra-cluster plasma from AGN-blown bubbles
arXiv:1001.1356 · doi:10.1111/j.1365-2966.2010.16287.x
Abstract
Simple arguments suggest that magnetic fields should be aligned tangentially to the surface of an AGN-blown bubble. If this is the case, charged particles from the fully ionised intra-cluster medium (ICM) will be prevented, ordinarily, from crossing the boundary by the Lorentz force. However, recent observations indicate that thermal material may occupy up to 50% of the volume of some bubbles. Given the effect of the Lorentz force, the thermal content must then be attributed to one, or a combination, of the following processes: i) the entrainment of thermal gas into the AGN outflow that inflated the bubble; ii) rapid diffusion across the magnetic field lines at the ICM/bubble interface; iii) magnetic reconnection events which transfer thermal material across the ICM/bubble boundary. Unless the AGN outflow behaves as a magnetic tower jet, entrainment may be significant and could explain the observed thermal content of bubbles. Alternatively, the cross-field diffusion coefficient required for the ICM to fill a typical bubble is roughly 10^16 cm^2 s^-1, which is anomalously high compared to predictions from turbulent diffusion models. Finally, the mass transfer rate due to magnetic reconnection is uncertain, but significant for plausible reconnection rates. We conclude that entrainment into the outflow and mass transfer due to magnetic reconnection events are probably the most significant sources of thermal content in AGN-blown bubbles.
Accepted for publication in MNRAS, 8 pages, 1 figure
References in corpus (24)
- Heating Hot Atmospheres with Active Galactic Nuclei
- Radiative Efficiency and Content of Extragalactic Radio Sources: Toward a Universal Scaling Relation Between Jet Power and Radio Power
- The Regulation of Cooling and Star Formation in Luminous Galaxies by AGN Feedback and the Cooling-Time/Entropy Threshold for the Onset of Star Formation
- Draping of Cluster Magnetic Fields over Bullets and Bubbles -- Morphology and Dynamic Effects
- An Entropy Threshold for Strong H-alpha and Radio Emission in the Cores of Galaxy Clusters
- Simulations of AGN feedback in galaxy clusters and groups: impact on gas fractions and the Lx-T scaling relation
- AGN heating and ICM cooling in the HIFLUGCS sample of galaxy clusters
- The flip-side of galaxy formation: A combined model of Galaxy Formation and Cluster Heating
- Impact of tangled magnetic fields on AGN-blown bubbles
- Subgrid Modeling of AGN-Driven Turbulence in Galaxy Clusters
- Constraining the Nature of X-ray Cavities in Clusters and Galaxies
- Stability Properties of Magnetic Tower Jets
- The evolution of the galaxy Red Sequence in simulated clusters and groups
- Structure of Magnetic Tower Jets in Stratified Atmospheres
- The Weak Shock in the Core of the Perseus Cluster
- Bubble-Wrap for Bullets: The Stability Imparted By A Thin Magnetic Layer
- On the Rayleigh-Taylor Instability of Radio Bubbles in Galaxy Clusters
- Three-dimensional Magnetohydrodynamic Simulations of Buoyant Bubbles in Galaxy Clusters
- Energetics of X-ray Cavities and Radio Lobes in Galaxy Clusters
- Rising Jet-Inflated Bubbles in Clusters of Galaxies
- Combining Semi-analytic Models with Simulations of Galaxy Clusters: the Need for Heating from Active Galactic Nuclei
- Stopping Cooling Flows with Cosmic Ray Feedback
- Observable consequences of kinetic and thermal AGN feedback in elliptical galaxies and galaxy clusters
- Hard X-ray emission from the core of the Perseus cluster and the thermal content of the radio bubbles