The trajectories of galaxies in groups: mass loss and preprocessing
arXiv:1811.06530 · doi:10.1093/mnras/sty3119
Abstract
We present a study of environmental effects and preprocessing in a large galaxy group using a high-resolution, zoom-in simulation run with the GASOLINE2 hydrodynamics code. We categorize galaxies that were always in distinct haloes as unaccreted, galaxies that were distinct before accretion onto the main group as single, and galaxies that were in external sub-groups before accretion onto the main group as grouped. The unaccreted galaxy population experiences steady growth in dark matter, gas and stellar mass. Both single- and group-accreted galaxies begin to lose dark matter and gas after first accretion onto any host but continue to grow in stellar mass. Individual trajectories show that galaxies cease mass growth within roughly three virial radii of the main group. Single galaxies continue to form stars until the group virial radius is crossed, when they begin to lose both dark matter and gas. Grouped galaxies peak in mass when joining their external sub-group, indicating that they experience preprocessing. Most accreted galaxies retain their accumulated stellar mass. The total mass loss is dominated by tidal stripping, with evidence for additional gas stripping via ram pressure. Most accreted galaxies are quenched (0.5-2.5) Gyr after accretion onto any group. These differing histories place unaccreted, single and grouped galaxies in distinct regions of the stellar mass-to-halo mass (SMHM) relation. This suggests that preprocessed galaxies are a key source of scatter in the SMHM relation for mixed galaxy populations.
Accepted for publication in MNRAS, 16 pages, 15 figures
References in corpus (14)
- The NumPy array: a structure for efficient numerical computation
- Astrophysics Source Code Library
- The Tidal Evolution of Local Group Dwarf Spheroidals
- Strangulation in Galaxy Groups
- Gasoline2: A Modern SPH Code
- A Superbubble Feedback Model for Galaxy Simulations
- Phase-space Analysis in the Group and Cluster environment: Time since Infall and Tidal Mass Loss
- Satellite quenching timescales in clusters from projected phase space measurements matched to simulated orbits
- Hot gas in massive halos drives both mass quenching and environment quenching
- The Preferential Tidal Stripping of Dark Matter versus Stars in Galaxies
- The pre-processing of subhaloes in SDSS groups and clusters
- The Cluster-EAGLE project: velocity bias and the velocity dispersion - mass relation of cluster galaxies
- Preprocessing, mass loss and mass segregation of galaxies in DM simulations
- Uncovering Mass Segregation with Galaxy Analogues in Dark Matter Simulations
Cited by in corpus (15)
- Quenched fractions in the IllustrisTNG simulations: the roles of AGN feedback, environment, and pre-processing
- Simulating Groups and the IntraGroup Medium: The Surprisingly Complex and Rich Middle Ground Between Clusters and Galaxies
- The abundance of satellites around Milky Way- and M31-like galaxies with the TNG50 simulation: a matter of diversity
- The fate of disk galaxies in IllustrisTNG clusters
- The distinct stellar-to-halo mass relations of satellite and central galaxies: insights from the IllustrisTNG simulations
- The cumulative star-formation histories of dwarf galaxies with TNG50. I: Environment-driven diversity and connection to quenching
- Quenching low-mass satellite galaxies: evidence for a threshold ICM density
- Strongly lensed cluster substructures are not in tension with CDM
- On the accretion of a new group of galaxies onto Virgo: I. Internal kinematics of nine in-falling dEs
- Auriga Streams I: disrupting satellites surrounding Milky Way-mass haloes at multiple resolutions
- Intracluster light is a biased tracer of the dark matter distribution in clusters
- Scatter in the satellite galaxy SHMR: fitting functions, scaling relations & physical processes from the IllustrisTNG simulation
- The Three Hundred: relation
- The Three Hundred: The existence of massive dark matter-deficient satellite galaxies in cosmological simulations
- Exploring the effect of baryons on the radial distribution of satellite galaxies with GAMA and IllustrisTNG