IQ-Collaboratory 1.1: the Star-Forming Sequence of Simulated Central Galaxies
Abstract
A tightly correlated star formation rate-stellar mass relation of star forming galaxies, or star-forming sequence (SFS), is a key feature in galaxy property-space that is predicted by modern galaxy formation models. We present a flexible data-driven approach for identifying this SFS over a wide range of star formation rates and stellar masses using Gaussian mixture modeling (GMM). Using this method, we present a consistent comparison of the SFSs of central galaxies in the Illustris, EAGLE, and Mufasa hydrodynamic simulations and the Santa Cruz semi-analytic model (SC-SAM), alongside data from the Sloan Digital Sky Survey. We find, surprisingly, that the amplitude of the SFS varies by up to (factor of ) among the simulations with power-law slopes range from to . In addition to the SFS, our GMM method also identifies sub-components in the star formation rate-stellar mass relation corresponding to star-burst, transitioning, and quiescent sub-populations. The hydrodynamic simulations are similarly dominated by SFS and quiescent sub-populations unlike the SC-SAM, which predicts substantial fractions of transitioning and star-burst galaxies at stellar masses above and below , respectively. All of the simulations also produce an abundance of low-mass quiescent central galaxies in apparent tension with observations. These results illustrate that, even among models that well reproduce many observables of the galaxy population, the SFS and other sub-populations still show marked differences that can provide strong constraints on galaxy formation models.
Keywords
Cite
@article{arxiv.1809.01665,
title = {IQ-Collaboratory 1.1: the Star-Forming Sequence of Simulated Central Galaxies},
author = {ChangHoon Hahn and Tjitske K. Starkenburg and Ena Choi and Romeel Davé and Claire M. Dickey and Marla C. Geha and Shy Genel and Christopher C. Hayward and Ariyeh H. Maller and Nityasri Mandyam and Viraj Pandya and Gergö Popping and Mika Rafieferantsoa and Rachel S. Somerville and Jeremy L. Tinker},
journal= {arXiv preprint arXiv:1809.01665},
year = {2019}
}
Comments
28 pages, 15 figures