MESA meets MURaM: Surface effects in main-sequence solar-like oscillators computed using three-dimensional radiation hydrodynamics simulations
W. H. Ball, B. Beeck, R. H. Cameron, L. Gizon

TL;DR
This study uses 3D radiation hydrodynamics simulations to analyze surface effects on oscillation frequencies in main-sequence solar-like stars, improving understanding of near-surface modeling impacts.
Contribution
It introduces a method to replace near-surface stellar structures with simulation data to better model oscillation frequency differences across spectral types.
Findings
Surface effects decrease with decreasing effective temperature.
The two-term fit by Ball & Gizon (2014) best reproduces surface terms.
Hotter stars exhibit larger surface effects.
Abstract
... [C]urrent stellar models predict oscillation frequencies that are systematically affected by simplified modelling of the near-surface layers. We use three-dimensional radiation hydrodynamics simulations to better model the near-surface equilibrium structure of dwarfs with spectral types F3, G2, K0 and K5, and examine the differences between oscillation mode frequencies. ... We precisely match stellar models to the simulations' gravities and effective temperatures at the surface, and to the temporally- and horizontally-averaged densities and pressures at their deepest points. We then replace the near-surface structure with that of the averaged simulation and compute the change in the oscillation mode frequencies. We also fit the differences using several parametric models currently available in the literature. The surface effect in the stars of solar-type and later is qualitatively…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astrophysics and Star Formation Studies · Solar and Space Plasma Dynamics
