Tests of subgrid models for star formation using simulations of isolated disc galaxies

Author:

Nobels Folkert S J1ORCID,Schaye Joop1ORCID,Schaller Matthieu12ORCID,Ploeckinger Sylvia23,Chaikin Evgenii1ORCID,Richings Alexander J456ORCID

Affiliation:

1. Leiden Observatory, Leiden University , PO Box 9513, NL-2300 RA Leiden , the Netherlands

2. Lorentz Institute for Theoretical Physics, Leiden University , PO Box 9506, NL-2300 RA Leiden , the Netherlands

3. Department of Astrophysics, University of Vienna , Türkenschanzstrasse 17, 1180 Vienna , Austria

4. Institute for Computational Cosmology, Department of Physics, Durham University , South Road, Durham DH1 3LE , UK

5. E. A. Milne Centre for Astrophysics, University of Hull , Cottingham Road, Hull HU6 7RX , UK

6. DAIM, University of Hull , Cottingham Road, Hull HU6 7RX , UK

Abstract

ABSTRACT We use smoothed particle hydrodynamics simulations of isolated Milky Way-mass disc galaxies that include cold, interstellar gas to test subgrid prescriptions for star formation (SF). Our fiducial model combines a Schmidt law with a gravitational instability criterion, but we also test density thresholds and temperature ceilings. While SF histories are insensitive to the prescription for SF, the Kennicutt–Schmidt (KS) relations between SF rate and gas surface density can discriminate between models. We show that our fiducial model, with an SF efficiency per free-fall time of 1 per cent, agrees with spatially resolved and azimuthally averaged observed KS relations for neutral, atomic, and molecular gas. Density thresholds do not perform as well. While temperature ceilings selecting cold, molecular gas can match the data for galaxies with solar metallicity, they are unsuitable for very low-metallicity gas and hence for cosmological simulations. We argue that SF criteria should be applied at the resolution limit rather than at a fixed physical scale, which means that we should aim for numerical convergence of observables rather than of the properties of gas labelled as star-forming. Our fiducial model yields good convergence when the mass resolution is varied by nearly 4 orders of magnitude, with the exception of the spatially resolved molecular KS relation at low surface densities. For the gravitational instability criterion, we quantify the impact on the KS relations of gravitational softening, the SF efficiency, and the strength of supernova feedback, as well as of observable parameters such as the inclusion of ionized gas, the averaging scale, and the metallicity.

Funder

STFC

European Union

Publisher

Oxford University Press (OUP)

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