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From UV-bright Galaxies to Early Disks: the Importance of Turbulent Star Formation in the Early Universe

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arxiv 2410.09205 v2 pith:ONT35JYH submitted 2024-10-11 astro-ph.GA astro-ph.CO

classification astro-ph.GAastro-ph.CO
keywords formationearlystardiskburstydiskssimulationsurvival
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abstract

Bursty star formation at early times can explain the surprising abundance of early UV-bright galaxies revealed by JWST but can also be a reason for the delayed formation of galactic disks in high-resolution cosmological simulations. We investigate this interplay in a cosmological simulation of an early-forming Milky Way analog with detailed modeling of the cold turbulent interstellar medium (ISM), star formation, and feedback. We find that the modeling of locally variable star formation efficiency (SFE) coupled with the ISM turbulence on the scales of star-forming regions is important for producing both early bursty evolution and early formation and survival of galactic disks. Such a model introduces a qualitatively new channel of the global star formation rate (SFR) burstiness caused by chaotic fluctuations in the average SFE due to changes in the ISM turbulence, which, in our simulation, dominates the short-term SFR variability. The average SFE stays low, close to $\sim 1\%$ per freefall time, and its variation decreases when the gas disk forms, leading to only mild effects of stellar feedback on the early disk, enabling its survival. By rerunning our simulation with fixed SFE values, we explicitly show that low SFEs lead to smoother SFR histories and disk survival, while high SFEs lead to bursty SFRs and hinder disk formation. The model with variable SFE switches between these two regimes at the moment of disk formation. These trends are missing in more commonly used star formation prescriptions with fixed SFE; in particular, the prescriptions tying star formation to molecular gas should be interpreted with caution because the two are decoupled at early times, as we also show in this paper.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. mitigating the overcooling problem with sink-based bursty star formation in a high-z dwarf galaxy

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    Sink-based star formation drives clump-scale bursts that pre-clear gas via radiation, raise SN momentum, cut stellar mass by ~3× and raise LyC escape by ~10× relative to a gravo-thermo-turbulent Schmidt model in a 10^...

  2. Reconciling extragalactic star formation efficiencies with theory: insights from PHANGS

    astro-ph.GA 2025-05 conditional novelty 6.0 of 10

    A hybrid lognormal power-law density PDF with a galaxy-regulated onset of self-gravity and finite PDF replenishment matches PHANGS star formation efficiencies with environment-dependent power-law slopes around 1.6 to 2.5.

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