Extended Hernquist-Springel formalism for cosmic star formation
arXiv:2109.01146 · doi:10.1093/mnras/stab2845
Abstract
We present a revised and extended version of the analytic model for cosmic star formation originally given by Hernquist & Springel in 2003. The key assumption of this formalism is that star formation proceeds from cold gas, at a rate that is limited by an internal consumption timescale at early times, or by the rate of generation of gas via cooling at late times. These processes are analysed as a function of the mass of dark matter haloes and integrated over the halo population. We modify this approach in two main ways to make it more general: (1) halo collapse times are included explicitly, so that the behaviour is physically reasonable at late times; (2) allowance is made for a mass-dependent baryon fraction in haloes, which incorporates feedback effects. This model reproduces the main features of the observed baryonic Tully-Fisher relationship, and is consistent with observational estimates of the baryon mass fraction in the intergalactic medium. With minimal adjustment of parameters, our approach reproduces the observed history of cosmic star formation within a factor of two over the redshift range . This level of agreement is comparable to that achieved by state-of-the-art cosmological simulations. Our simplified apparatus has pedagogical value in illuminating the results of such detailed calculations, and also serves as a means for rapid approximate exploration of non-standard cosmological models.
Published in the Monthly Notices of the Royal Astronomical Society (MNRAS). This is a pre-copyedited, author-produced version of the article accepted for publication in MNRAS following peer review. The version of record (MNRAS, Vol. 508, Issue 4, pp.5802-5824) is available online at: DOI 10.1093/mnras/stab2845. A few sentences and one citation added wrt the previous version. Conclusions unchanged
References in corpus (27)
- Cosmic Star Formation History
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- Introducing the Illustris Project: Simulating the coevolution of dark and visible matter in the Universe
- 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
- Simba: Cosmological Simulations with Black Hole Growth and Feedback
- A unified model for AGN feedback in cosmological simulations of structure formation
- Momentum Injection by Supernovae in the Interstellar Medium
- The Search for the Missing Baryons at Low Redshift
- Stellar and total baryon mass fractions in groups and clusters since redshift 1
- On the (Non)Evolution of HI Disks over Cosmic Time
- The dark nemesis of galaxy formation: why hot haloes trigger black hole growth and bring star formation to an end
- Scaling Properties of a Complete X-ray Selected Galaxy Group Sample
- Dynamical Properties of z~2 Star Forming Galaxies and a Universal Star Formation Relation
- On the Lack of Evolution in Galaxy Star Formation Efficiency
- On the galaxy stellar mass function, the mass-metallicity relation, and the implied baryonic mass function
- The baryon fraction of LambdaCDM haloes
- Weighing Galaxy Disks with the Baryonic Tully-Fisher Relation
- A First Attempt to Calibrate the Baryonic Tully-Fisher Relation with Gas Dominated Galaxies
- The first generation of stars in LCDM cosmology
- The First Stars in The Universe
- Star formation laws and thresholds from ISM structure and turbulence
- Cosmology-independent estimate of the fraction of baryon mass in the IGM from fast radio burst observations
- Cosmology-insensitive estimate of IGM baryon mass fraction from five localized fast radio bursts
- Connecting cosmological accretion to strong Lyman-alpha absorbers
- Testing anthropic reasoning for the cosmological constant with a realistic galaxy formation model
- Is there another coincidence problem at the reionization epoch?