Toward a Comprehensive Grid of Cepheid Models with MESA II. Impact of Physical and Numerical Assumptions on Elemental Abundances
arXiv:2602.08109 · doi:10.3847/1538-4365/ae27d0
Abstract
Modern tools for modeling stellar evolution, such as MESA (Modules for Experiments in Stellar Astrophysics), offer state-of-the-art implementations of stellar theories. However, this parametric approach introduces many free parameters that are often not constrained by observations. This is particularly important for evolved stars, like classical Cepheids, because uncertainties increase with evolution time. In previous work, we studied the effect of varying microphysics, including solar abundance mixtures, nuclear networks, atmosphere models, mixing-length prescriptions, treatments of convective boundaries, and numerical setup on evolutionary tracks. Here, we extend this analysis to the surface abundances of the dominant elements H, He, C, N, O, Ne, and Mg. We establish a reference model and 22 variants for each mass and metallicity, evolving them from the Zero-Age Main Sequence to central helium exhaustion. Masses between 2 to 8 solar mass and metallicities Z=0.0014, 0.004, 0.014 are explored, spanning the range of classical Cepheids. Both canonical and overshooting models are computed and compared. We find that uncertainties in surface abundances are generally small, arising mainly from variations in the depth of the convective envelope during the first dredge-up. The size of the convective envelope is sensitive to many aspects, including mass and metallicity. The central C/O ratio, relevant for white dwarf evolution, can vary by about 0.15, driven largely by convective boundary treatments or by modifying the 12C(alpha,gamma)16O reaction rate during helium burning. Surface and central abundances for the considered models at several benchmark points during the evolution are provided online.
References in corpus (19)
- Array Programming with NumPy
- Modules for Experiments in Stellar Astrophysics (MESA)
- Gaia Data Release 3: Summary of the content and survey properties
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Modules for Experiments in Stellar Astrophysics (MESA): Time-Dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure
- Observational constraints on the origin of the elements. IV: The standard composition of the Sun
- Skye: A Differentiable Equation of State
- On the proper use of the Schwarzschild and Ledoux criteria in stellar evolution computations
- On the effect of rotation on populations of classical Cepheids I. Predictions at solar metallicity
- Improvements to Stellar Structure Models, Based on a Grid of 3D Convection Simulations. I. -Relations
- A helium-flash-induced mixing event can explain the lithium abundances of red clump stars
- Tracing the Milky Way warp and spiral arms with classical Cepheids
- Oxygen, sulfur, and iron radial abundance gradients of classical Cepheids across the Galactic thin disk
- Is Thermohaline Mixing the Full Story? Evidence for Separate Mixing Events near the Red Giant Branch Bump
- CNO abundances and carbon isotope ratios in evolved stars of the open clusters NGC 2324, NGC 2477, and NGC 3960
- Characterizing Observed Extra Mixing Trends in Red Giants using the Reduced Density Ratio from Thermohaline Models
- Cepheid Metallicity in the Leavitt Law (C- MetaLL) survey: VI: Radial abundance gradients of 29 chemical species in the Milky Way Disk
- A novel analytic atmospheric relation for stellar models
- Beyond MESA Defaults: The Impact of Structural Resolution Uncertainty in p-mode Asteroseismology