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FIRE-3: updated stellar evolution models, yields, and microphysics and fitting functions for applications in galaxy simulations

Hopkins, Philip F; Wetzel, Andrew; Wheeler, Coral; Sanderson, Robyn; Grudić, Michael Y; Sameie, Omid; Boylan-Kolchin, Michael; Orr, Matthew; Ma, Xiangcheng; Faucher-Giguère, Claude-André; Kereš, Dušan; Quataert, Eliot; Su, Kung-Yi; Moreno, Jorge; Feldmann, Robert; Bullock, James S; Loebman, Sarah R; Anglés-Alcázar, Daniel; Stern, Jonathan; Necib, Lina; Choban, Caleb R; Hayward, Christopher C (2022). FIRE-3: updated stellar evolution models, yields, and microphysics and fitting functions for applications in galaxy simulations. Monthly Notices of the Royal Astronomical Society, 519(2):3154-3181.

Abstract

Increasingly, uncertainties in predictions from galaxy formation simulations (at sub-Milky Way masses) are dominated by uncertainties in stellar evolution inputs. In this paper, we present the full set of updates from the Feedback In Realistic Environment (FIRE)-2 version of the FIRE project code, to the next version, FIRE-3. While the transition from FIRE-1 to FIRE-2 focused on improving numerical methods, here we update the stellar evolution tracks used to determine stellar feedback inputs, e.g. stellar mass-loss (O/B and AGB), spectra (luminosities and ionization rates), and supernova rates (core-collapse and Ia), as well as detailed mass-dependent yields. We also update the low-temperature cooling and chemistry, to enable improved accuracy at $T \lesssim 10^{4}\,$K and densities $n\gg 1\, {\rm cm^{-3}}$, and the meta-galactic ionizing background. All of these synthesize newer empirical constraints on these quantities and updated stellar evolution and yield models from a number of groups, addressing different aspects of stellar evolution. To make the updated models as accessible as possible, we provide fitting functions for all of the relevant updated tracks, yields, etc, in a form specifically designed so they can be directly ‘plugged in’ to existing galaxy formation simulations. We also summarize the default FIRE-3 implementations of ‘optional’ physics, including spectrally resolved cosmic rays and supermassive black hole growth and feedback.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:07 Faculty of Science > Department of Astrophysics
Dewey Decimal Classification:530 Physics
Uncontrolled Keywords:Space and Planetary Science, Astronomy and Astrophysics
Language:English
Date:30 December 2022
Deposited On:19 Jan 2023 07:52
Last Modified:22 Mar 2025 04:30
Publisher:Oxford University Press
ISSN:0035-8711
OA Status:Closed
Publisher DOI:https://doi.org/10.1093/mnras/stac3489
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