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The Milky Way Radial Metallicity Gradient as an Equilibrium Phenomenon: Why Old Stars are Metal-Rich

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arxiv 2410.13256 v1 pith:IOIJB3BL submitted 2024-10-17 astro-ph.GA astro-ph.CO

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

Metallicities of both gas and stars decline toward large radii in spiral galaxies, a trend known as the radial metallicity gradient. We quantify the evolution of the metallicity gradient in the Milky Way as traced by APOGEE red giants with age estimates from machine learning algorithms. Stars up to ages of $\sim$9 Gyr follow a similar relation between metallicity and Galactocentric radius. This constancy challenges current models of Galactic chemical evolution, which typically predict lower metallicities for older stellar populations. Our results favor an equilibrium scenario, in which the gas-phase gradient reaches a nearly constant normalization early in the disk lifetime. Using a fiducial choice of parameters, we demonstrate that one possible origin of this behavior is an outflow that more readily ejects gas from the interstellar medium with increasing Galactocentric radius. A direct effect of the outflow is that baryons do not remain in the interstellar medium for long, which causes the ratio of star formation to accretion, $\dot{\Sigma}_\star / \dot{\Sigma}_\text{in}$, to quickly become constant. This ratio is closely related to the local equilibrium metallicity, since its numerator and denominator set the rates of metal production by stars and hydrogen gained through accretion, respectively. Building in a merger event results in a perturbation that evolves back toward the equilibrium state on $\sim$Gyr timescales. Under the equilibrium scenario, the radial metallicity gradient is not a consequence of the inside-out growth of the disk but instead reflects a trend of declining $\dot{\Sigma}_\star / \dot{\Sigma}_\text{in}$ with increasing Galactocentric radius.

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Cited by 3 Pith papers

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

  1. Local variations of the radial metallicity gradient in a simulated NIHAO-UHD Milky Way analogue and their implications for (extra-)galactic studies

    astro-ph.GA 2024-12 conditional novelty 6.0 of 10

    In a simulated Milky Way analogue, the radial metallicity gradient of young stars is better fit by a curved or broken-line model than a straight line, with local spiral-arm variations of up to 0.1-0.2 dex.

  2. Rediscovering the Milky Way with orbit superposition approach and APOGEE data II. Chrono-chemo-kinematics of the disc

    astro-ph.GA 2024-11 conditional novelty 6.0 of 10

    Orbit superposition of APOGEE stars yields a mass-weighted Milky Way disc map showing a less prominent alpha-bimodality and two distinct inner and outer age-metallicity sequences.

  3. The Open Cluster Chemical Abundances and Mapping Survey: VIII. Galactic Chemical Gradient and Azimuthal Analysis from SDSS/MWM DR19

    astro-ph.GA 2025-07 conditional novelty 5.0 of 10

    A 164-cluster sample from SDSS-V/MWM DR19 gives a Milky Way iron gradient of -0.075 dex/kpc and tentative evidence that the gradient varies with azimuth.

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