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Cold accretion flows and chemical bimodality of the Milky Way galaxy

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arxiv 1809.02299 v1 pith:GMXYOC2J submitted 2018-09-07 astro-ph.GA

classification astro-ph.GA
keywords alphastarsaccretioncoldformationabundancebimodalitychemical
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Abundance of chemical elements in the stars provides important clues regarding galaxy formation. The most powerful diagnostics is the relative abundance of {\alpha}-elements (O, Mg, Si, S, Ca, and Ti) with respect to iron (Fe), [{\alpha}/Fe], each of which is produced by different kinds of supernovae. The existence of two distinct groups of stars in the solar neighbourhood, one with high [{\alpha}/Fe] and another with low [{\alpha}/Fe], suggests that the stars in the solar vicinity have two different origins. However, the specific mechanism of the realization of this bimodality is unknown. Here, we show that the cold flow hypothesis recently proposed for the accretion process of primordial gas onto forming galaxies predicts two episodes of star formation separated by a hiatus 6-7 Gyr ago and naturally explains the observed chemical bimodality. We found that the first phase of star formation that forms high [{\alpha}/Fe] stars is caused by the 'genuine' cold flow, in which unheated primordial gas accretes to the galactic disk in a freefall fashion. The second episode of star formation that forms low [{\alpha}/Fe] stars is sustained by much slower gas accretion as the once-heated gas gradually cools by radiation. The cold flow hypothesis can also explain the large-scale variation in the abundance pattern observed in the Milky Way galaxy in terms of the spatial variation of gas accretion history.

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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. Unveiling Metal Mixing in a Grand-Design Spiral: A UV-optical multiphase spatially resolved study of M83

    astro-ph.GA 2026-08 conditional novelty 6.0 of 10

    Multiphase abundance mapping of M83 reveals a persistent roughly 1.5 dex nitrogen excess in ionized gas relative to neutral gas around young clusters, indicating slow metal mixing in a massive spiral.

  2. Observational Signatures and Constraints on the Intermediate Neutron-Capture Process. The Case of the CEMP star TYC 6044-714-1 (RAVE J094921.8-161722)

    astro-ph.SR 2026-05 unverdicted novelty 5.0 of 10

    High-precision analysis of TYC 6044-714-1 favors s+r nucleosynthesis over i-process models, which require implausible conditions and mismatch Ba isotopes.

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