The Chemical Composition of the Sun
Химический состав Солнца
2009-08-20
SCID: 54.1/fn7x73ua
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3D hydrodynamical modelhelioseismologynon-LTE effectssolar chemical compositionsolar photospheric abundances
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Abstract (AI)
The solar chemical composition is an important ingredient in our understanding of the formation, structure, and evolution of both the Sun and our Solar System. Furthermore, it is an essential reference standard against which the elemental contents of other astronomical objects are compared. In this review, we evaluate the current understanding of the solar photospheric composition. In particular, we present a redetermination of the abundances of nearly all available elements, using a realistic new three-dimensional (3D), time-dependent hydrodynamical model of the solar atmosphere. We have carefully considered the atomic input data and selection of spectral lines, and accounted for departures from local thermodynamic equilibrium (LTE) whenever possible. The end result is a comprehensive and homogeneous compilation of the solar elemental abundances. Particularly noteworthy findings are significantly lower abundances of C, N, O, and Ne compared to the widely used values of a decade ago. The new solar chemical composition is supported by a high degree of internal consistency between available abundance indicators, and by agreement with values obtained in the Solar Neighborhood and from the most pristine meteorites. There is, however, a stark conflict with standard models of the solar interior according to helioseismology, a discrepancy that has yet to find a satisfactory resolution.
Key Findings
1
Abundance estimates use a realistic time-dependent 3D hydrodynamical solar-atmosphere model, carefully selected spectral lines, improved atomic data, and non-LTE corrections where possible.
2
The new composition shows strong internal consistency among abundance indicators and agrees with measurements from the Solar Neighborhood and pristine meteorites.
3
The revised abundances of carbon, nitrogen, oxygen, and neon are significantly lower than widely used estimates from the previous decade.
4
The revised solar composition conflicts sharply with standard solar-interior models constrained by helioseismology, and the discrepancy remains unresolved.
5
The study provides a comprehensive, homogeneous redetermination of nearly all available solar photospheric elemental abundances.
Research Object
the solar photospheric chemical composition
Research Subject
the elemental abundances and their consistency, including the revised abundances of nearly all available elements and the conflict with helioseismic solar-interior models
Publication Details
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2009-08-20
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