Why do semi-analytic models predict higher scatter in the stellar mass-halo mass relation than cosmological hydrodynamic simulations?
arXiv:2310.11507 · doi:10.3847/1538-4357/ad7b0f
Abstract
Semi-analytic models (SAMs) systematically predict higher stellar-mass scatter at a given halo mass than hydrodynamical simulations and most empirical models. Our goal is to investigate the physical origin of this scatter by exploring modifications to the physics in the SAM Dark Sage. We design two black hole formation models that approximate results from the IllustrisTNG 300-1 hydrodynamical simulation. In the first model, we assign a fixed black hole mass of to every halo that reaches . In the second model, we disregard any black hole growth as implemented in the standard Dark Sage model. Instead, we force all black hole masses to follow the median black hole mass-halo mass relation in IllustrisTNG 300-1 with a fixed scatter. We find that each model on its own does not significantly reduce the scatter in stellar mass. To do this, we replace the native Dark Sage AGN feedback model with a simple model where we turn off cooling for galaxies with black hole masses above . With this additional modification, the SMBH seeding and fixed conditional distribution models find a significant reduction in the scatter in stellar mass at halo masses between . These results suggest that AGN feedback in SAMs acts in a qualitatively different way than feedback implemented in cosmological simulations. Either or both may require substantial modification to match the empirically inferred scatter in the Stellar Mass Halo Mass Relation (SMHMR).
21 pages, 16 figures
References in corpus (45)
- The NumPy array: a structure for efficient numerical computation
- Introducing the Illustris Project: Simulating the coevolution of dark and visible matter in the Universe
- Properties of galaxies reproduced by a hydrodynamic simulation
- Simulating galaxy formation with black hole driven thermal and kinetic feedback
- A Semi-Analytic Model for the Co-evolution of Galaxies, Black Holes, and Active Galactic Nuclei
- Introducing the Illustris Project: the evolution of galaxy populations across cosmic time
- The Illustris simulation: the evolving population of black holes across cosmic time
- Galaxy Evolution from Halo Occupation Distribution Modeling of DEEP2 and SDSS Galaxy Clustering
- Halo assembly bias and its effects on galaxy clustering
- The Galaxy Content of SDSS Clusters and Groups
- Supermassive black holes in cosmological simulations I: M_BH-M_star relation and black hole mass function
- Quenched fractions in the IllustrisTNG simulations: comparison with observations and other theoretical models
- The galaxy-halo connection from a joint lensing, clustering and abundance analysis in the CFHTLenS/VIPERS field
- The Atomic to Molecular Transition and its Relation to the Scaling Properties of Galaxy Disks in the Local Universe
- Ultra-faint dwarfs in a Milky Way context: Introducing the Mint Condition DC Justice League Simulations
- The origin of scatter in the stellar mass - halo mass relation of central galaxies in the EAGLE simulation
- Evolution in the Halo Masses of Isolated Galaxies between z~1 and z~0: From DEEP2 to SDSS
- High star formation rates as the origin of turbulence in early and modern disk galaxies
- The Formation of Ultra-Diffuse Galaxies in Clusters
- Stochastic modelling of star-formation histories II: star-formation variability from molecular clouds and gas inflow
- L-GALAXIES 2020: Spatially resolved cold gas phases, star formation and chemical enrichment in galactic discs
- Host Galaxy Bulge Predictors of Supermassive Black Hole Mass
- Limitations to the "basic'' HOD model and beyond
- Building disc structure and galaxy properties through angular momentum: The DARK SAGE semi-analytic model
- Quantifying scatter in galaxy formation at the lowest masses
- Spatial Clustering of Dark Matter Halos: Secondary Bias, Neighbor Bias, and the Influence of Massive Neighbors on Halo Properties
- The fate of disk galaxies in IllustrisTNG clusters
- How to get cool in the heat: comparing analytic models of hot, cold, and cooling gas in haloes and galaxies with EAGLE
- Extensions to models of the galaxy-halo connection
- Physical drivers of galaxies' cold-gas content: exploring environmental and evolutionary effects with DARK SAGE
- Clocking the formation of today's largest galaxies: Wide field integral spectroscopy of Brightest Cluster Galaxies and their surroundings
- Correlations between supermassive black holes and hot gas atmospheres in IllustrisTNG and X-ray observations
- Satellite Luminosities in Galaxy Groups
- Galaxy sizes and the galaxy-halo connection -- I: the remarkable tightness of the size distributions
- A Bayesian Population Model for the Observed Dust Attenuation in Galaxies
- Regulation of Star Formation by a Hot Circumgalactic Medium
- X-ray metal line emission from the hot circumgalactic medium: probing the effects of supermassive black hole feedback
- Gas Accretion Can Drive Turbulence in Galaxies
- Galaxy and Mass Assembly (GAMA): Extended Intra-Group Light in a group at from deep Hyper-Suprime Cam images
- Galaxy Formation in the Santa Cruz semi-analytic model compared with IllustrisTNG -- I. Galaxy scaling relations, dispersions, and residuals at z=0
- Testing Galaxy Quenching Theories with Scatter in the Stellar to Halo Mass Relation
- RedMaPPer: Evolution and Mass Dependence of the Conditional Luminosity Functions of Red Galaxies in Galaxy Clusters
- Constraining the scatter in the galaxy-halo connection at Milky Way masses
- Empirical Dust Attenuation Model Leads to More Realistic UVJ Diagram for TNG100 Galaxies
- Angular momentum and morphological sequence of massive galaxies through Dark Sage