The Intragroup versus the Intracluster Medium
arXiv:1604.06921 · doi:10.3847/0004-637X/824/2/145
Abstract
Galaxy groups differ from clusters primarily by way of their lower masses, M~10^14 M_sun vs. M~10^15 M_sun. We discuss how mass affects the thermal state of the intracluster or the intragroup medium, specifically as to their entropy levels and radial profiles. We show that entropy is produced in both cases by the continuing inflow of intergalactic gas across the system boundary into the gravitational potential well. The inflow is highly supersonic in clusters, but weakly so in groups. The former condition implies strong accretion shocks with substantial conversion of a large inflow kinetic into thermal energy, whereas the latter condition implies less effective conversion of lower energies. These features produce a conspicuous difference in entropy deposition at the current boundary. Thereafter, adiabatic compression of the hot gas into the potential well converts such time histories into radial profiles throughout a cluster or a group. In addition, in both cases a location of the system at low z in the accelerating universe or in a poor environment will starve out the inflow and the entropy production, and produce flattening or even bending down of the outer profile. We analyze in detail the sharp evidence provided by the two groups ESO 3060170 and RXJ1159+5531 that have been recently observed in X rays out to their virial radii, and find a close and detailed match with our expectations.
10 pages, 3 figures, 1 table. Accepted by ApJ
References in corpus (30)
- Nine-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Parameter Results
- Formation of Galaxy Clusters
- The Evolution of X-ray Clusters and the Entropy of the Intra Cluster Medium
- Properties of spherical galaxies and clusters with an NFW density profile
- The baseline intracluster entropy profile from gravitational structure formation
- Baryons at the Edge of the X-ray Brightest Galaxy Cluster
- Assembly History and Structure of Galactic Cold Dark Matter Halos
- On the Origin of Intracluster Entropy
- Suzaku Observation of Abell 1689: Anisotropic Temperature and Entropy Distributions Associated with the Large-Scale Structure
- Quantifying properties of ICM inhomogeneities
- Gas clumping in galaxy clusters
- Intracluster and Intragroup Entropy from Quasar Activity
- Properties of gas clumps and gas clumping factor in the intra cluster medium
- Large-scale inhomogeneities of the intracluster medium: improving mass estimates using the observed azimuthal scatter
- ESO 3060170 -- a massive fossil galaxy group with a heated gas core?
- Probing the Outskirts of the Early Stage Galaxy Cluster Merger A1750
- Suzaku observations of Abell 1835 outskirts: Deviation from hydrostatic equilibrium
- Dark Matter Equilibria in Galaxies and Galaxy Systems
- Studying the WHIM with Gamma Ray Bursts
- Probing the Astrophysics of Cluster Outskirts
- Chandra X-ray observations of Abell 1835 to the virial radius
- Galaxy Clusters, a Novel Look at Diffuse Baryons Withstanding Dark Matter Gravity
- The Entire Virial Radius of the Fossil Cluster RXJ1159+5531: I. Gas Properties
- A Grand Design for Galaxy Clusters: Connections and Predictions
- The Astrophysics of the Intracluster Plasma
- Entropy Flattening, Gas Clumping and Turbulence in Galaxy Clusters
- Suzaku Observations of the X-ray Brightest Fossil Group ESO 3060170
- Investigating the cores of fossil systems with Chandra
- Turbulence in the SuperModel: Mass Reconstruction with Nonthermal Pressure for Abell 1835
- Galaxy cluster outskirts: a universal entropy profile for relaxed clusters?