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Convective contributions to the frequencies of solar oscillations

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arxiv astro-ph/9803206 v2 pith:UNDFD5LQ submitted 1998-03-17 astro-ph

classification astro-ph
keywords solareffectsmodesdifferencesfrequenciesmodelmodelsoscillations
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Differences between observed and theoretical eigenfrequencies of the Sun have characteristics which identify them as arising predominantly from properties of the oscillations in the vicinity of the solar surface: in the super-adiabatic, convective boundary layer and above. These frequency differences may therefore provide useful information about the structure of these regions, precisely where the theory of solar structure is most uncertain. In the present work we use numerical simulations of the outer part of the Sun to quantify the influence of turbulent convection on solar oscillation frequencies. Separating the influence into effects on the mean model and effects on the physics of the modes, we find that the main model effects are due to the turbulent pressure that provides additional support against gravity, and thermal differences between average 3-D models and 1-D models. Surfaces of constant pressure in the visible photosphere are elevated by about 150 km, relative to a standard envelope model. As a result, the turning points of high-frequency modes are raised, while those of the low-frequency modes remain essentially unaffected. The corresponding gradual lowering of the mode frequencies accounts for most of the frequency difference between observations and standard solar models. Additional effects are expected to come primarily from changes in the physics of the modes, in particular from the modulation of the turbulent pressure by the oscillations.

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  1. Exploring the small-scale magnetic fields of the solar analog KIC 8006161 using asteroseismology

    astro-ph.SR 2024-12 conditional novelty 4.0 of 10

    Asteroseismic modeling of the solar analog KIC 8006161 yields small-scale photospheric magnetic field strengths of about 89 to 96 G, similar to the Sun's.

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