Star Formation and Metallicity Gradients in Semi-analytic Models of Disk Galaxy Formation
Jian Fu, Guinevere Kauffmann, Meiling Huang, Robert M. Yates, Sean, Moran, Timothy M. Heckman, Romeel Dav\'e, Qi Guo, Bruno M. B. Henriques

TL;DR
This study updates semi-analytic models of disk galaxy formation to include detailed gas phases, radial inflows, and metal injection processes, providing insights into metallicity gradients and their relation to galaxy properties.
Contribution
The paper introduces a new radially-resolved semi-analytic model incorporating gas inflows and metal injection, improving understanding of metallicity gradients in disk galaxies.
Findings
Radial gas inflow velocities are constrained to ~7 km/s at 10 kpc.
Metal injection into halo gas significantly influences metallicity gradients.
Galaxies with higher bulge-to-total ratios tend to have flatter metallicity gradients.
Abstract
We have updated our radially-resolved SAMs of galaxy formation, which track both the atomic and molecular gas phases of the ISM. The models are adapted from those of Guo et al. using similar methodology as in Fu et al. and are run on halo merger trees from the MS and MS II with the following main changes: (1) We adopt a simple star formation law where \Sigma_SFR \propto \Sigma_H2 (2) We inject the heavy elements produced by supernovae directly into the halo hot gas, instead of first mixing them with the cold gas in the disk. (3) We include radial gas inflows in disks using a model of the form v_inflow = \alpha r. The models are used to study the radial profiles of star formation rate and gas-phase metallicity in present-day galaxies. The \Sigma_H2 profiles in L* galaxies place strong constraints on inflow velocities, favouring models where v_inflow~7km/s at a galactocentric radius of…
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