Characterizing Observed Extra Mixing Trends in Red Giants using the Reduced Density Ratio from Thermohaline Models
arXiv:2204.08487 · doi:10.3847/1538-4357/aca024
Abstract
Observations show an almost ubiquitous presence of extra mixing in low-mass upper giant branch stars. The most commonly invoked explanation for this is thermohaline mixing. One-dimensional stellar evolution models include various prescriptions for thermohaline mixing, but the use of observational data directly to discriminate between thermohaline prescriptions has thus far been limited. Here, we propose a new framework to facilitate direct comparison: Using carbon-to-nitrogen measurements from the SDSS-IV APOGEE survey as a probe of mixing and a fluid parameter known as the reduced density ratio from one-dimensional stellar evolution programs, we compare the observed amount of extra mixing on the upper giant branch to predicted trends from three-dimensional fluid dynamics simulations. Using this method, we are able to empirically constrain how mixing efficiency should vary with the reduced density ratio. We find the observed amount of extra mixing is strongly correlated with the reduced density ratio and that trends between reduced density ratio and fundamental stellar parameters are robust across choices for modeling prescription. We show that stars with available mixing data tend to have relatively low density ratios, which should inform the regimes selected for future simulation efforts. Finally, we show that there is increased mixing at low reduced density ratios, which is consistent with current hydrodynamical models of thermohaline mixing. The introduction of this framework sets a new standard for theoretical modeling efforts, as validation for not only the amount of extra mixing, but trends between the degree of extra mixing and fundamental stellar parameters is now possible.
22 pages, 7 figures, accepted for publication in ApJ. MESA histories available on Zenodo at https://doi.org/10.5281/zenodo.7152746 . MESA inlists available on GitHub at https://github.com/afraser3/Empirical-Magnetic-Thermohaline
References in corpus (35)
- The NumPy array: a structure for efficient numerical computation
- The 2.5 m Telescope of the Sloan Digital Sky Survey
- The GALAH+ Survey: Third Data Release
- Updated Electron-Conduction Opacities: The Impact on Low-Mass Stellar Models
- APOGEE Data and Spectral Analysis from SDSS Data Release 16: Seven Years of Observations Including First Results from APOGEE-South
- The APOKASC Catalog: An Asteroseismic and Spectroscopic Joint Survey of Targets in the Kepler Fields
- Thermohaline mixing: A physical mechanism governing the photospheric composition of low-mass giants
- The Apache Point Observatory Galactic Evolution Experiment (APOGEE) Spectrographs
- Target Selection for the SDSS-IV APOGEE-2 Survey
- Deep Mixing of He-3: Reconciling Big Bang and Stellar Nucleosynthesis
- A Guide to Realistic Uncertainties on Fundamental Properties of Solar-Type Exoplanet Host Stars
- Coulomb tunneling for fusion reactions in dense matter: Path integral Monte Carlo versus mean field
- The APOGEE Data Release 16 Spectral Line List
- New H-band Stellar Spectral Libraries for the SDSS-III/APOGEE survey
- Skye: A Differentiable Equation of State
- Chemical Transport and Spontaneous Layer Formation in Fingering Convection in Astrophysics
- Final Targeting Strategy for the SDSS-IV APOGEE-2S Survey
- Final Targeting Strategy for the SDSS-IV APOGEE-2N Survey
- Constraining Metallicity-dependent Mixing and Extra Mixing using [C/N] in Alpha-Rich Field Giants
- On the Numerical Treatment and Dependence of Thermohaline Mixing in Red Giants
- Magnetic signatures on mixed-mode frequencies. I. An axisymmetric fossil field inside the core of red giants
- The Gaia-ESO survey: Mixing processes in low-mass stars traced by lithium abundance in cluster and field stars
- Lithium in red giant stars: Constraining non-standard mixing with large surveys in the Gaia era
- BACCHUS Analysis of Weak Lines in APOGEE Spectra (BAWLAS)
- Seismic measurement of the locations of the base of convection zone and helium ionization zone for stars in the {\it Kepler} seismic LEGACY sample
- Polluted White Dwarfs: Mixing Regions and Diffusion Timescales
- Enhanced mixing in magnetized fingering convection, and implications for RGB stars
- Diagnostics of Stellar Modelling from Spectroscopy and Photometry of Globular Clusters
- An Atlas of Convection in Main-Sequence Stars
- A phenomenological modification of thermohaline mixing in globular cluster red giants
- The Gaia-ESO survey: Lithium abundances in open cluster Red Clump stars
- The Open Cluster Chemical Abundances and Mapping Survey: VII. APOGEE DR17 [C/N]-Age Calibration
- Is Thermohaline Mixing the Full Story? Evidence for Separate Mixing Events near the Red Giant Branch Bump
- Bridging the Gap between Intermediate and Massive Stars I: Validation of MESA against the State-of-the-Art Monash Stellar Evolution Program for a 2 AGB Star
- The Destruction of 3He by Rayleigh-Taylor Instability on the First Giant Branch
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- Evidence of extra-mixing in field giants as traced by lithium and carbon isotope ratio
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- The evolution of accretor stars in binary systems due to accretion of increasingly helium-rich material
- Spontaneous generation of helical flows by salt fingers
- Beyond MESA Defaults: The Impact of Structural Resolution Uncertainty in p-mode Asteroseismology
- Toward a Comprehensive Grid of Cepheid Models with MESA II. Impact of Physical and Numerical Assumptions on Elemental Abundances