The global star formation law by supernova feedback

Author:

Dekel Avishai12,Sarkar Kartick C1ORCID,Jiang Fangzhou1ORCID,Bournaud Frederic3,Krumholz Mark R4ORCID,Ceverino Daniel5,Primack Joel R6

Affiliation:

1. Racah Institute of Physics, The Hebrew University, Jerusalem 91904, Israel

2. SCIPP, University of California, Santa Cruz, 1156 High Street, Santa Cruz, CA 95064, USA

3. Laboratoire AIM Paris-Saclay, CEA/IRFU/SAp, Universite Paris Diderot, F-91191 Gif-sur-Yvette Cedex, France

4. Research School of Astronomy and Astrophysics, Australian National University, Canberra, ACT 2612, Australia

5. Cosmic Dawn Center (DAWN), Niels Bohr Institute, University of Copenhagen, Vibenshuset, Lyngbyvej 2, DK-2100 Copenhagen, Denmark

6. Physics Department, University of California, Santa Cruz, 1156 High Street, Santa Cruz, CA 95064, USA

Abstract

ABSTRACT We address a simple model where the Kennicutt–Schmidt (KS) relation between the macroscopic densities of star formation rate (SFR, ρsfr) and gas (n) in galactic discs emerges from self-regulation of the SFR via supernova feedback. It arises from the physics of supernova bubbles, insensitive to the microscopic SFR recipe and not explicitly dependent on gravity. The key is that the filling factor of SFR-suppressed supernova bubbles self-regulates to a constant, f ∼ 0.5. Expressing the bubble fading radius and time in terms of n, the filling factor is $f\propto S\, n^{-s}$ with s ≃ 1.5, where S is the supernova rate density. A constant f thus refers to ρsfr ∝ n1.5, with a density-independent SFR efficiency per free-fall time ∼0.01. The self-regulation to f ∼ 0.5 and the convergence to a KS relation independent of the local SFR recipe are demonstrated in cosmological and isolated-galaxy simulations using different codes and recipes. In parallel, the spherical analysis of bubble evolution is generalized to clustered supernovae, analytically and via simulations, yielding s ≃ 1.5 ± 0.5. An analysis of photoionized bubbles about pre-supernova stars yields a range of KS slopes but the KS relation is dominated by the supernova bubbles. Superbubble blowouts may lead to an alternative self-regulation by outflows and recycling. While the model is oversimplified, its simplicity and validity in the simulations may argue that it captures the origin of the KS relation.

Funder

France-Israel PICS

Germany-Israel GIF

Germany-Israel DIP

I-CORE

Planning and Budgeting Committee of the Council for Higher Education of Israel

Israel Science Foundation

United States - Israel Binational Science Foundation

National Science Foundation

Lawrence Berkeley National Laboratory

NASA Ames Research Center

Grand Équipement National De Calcul Intensif

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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