Determining the metallicity of the solar envelope using seismic inversion techniques
arXiv:1709.00298 · doi:10.1093/mnras/stx2057
Abstract
The solar metallicity issue is a long-lasting problem of astrophysics, impacting multi- ple fields and still subject to debate and uncertainties. While spectroscopy has mostly been used to determine the solar heavy elements abundance, helioseismologists at- tempted providing a seismic determination of the metallicity in the solar convective enveloppe. However, the puzzle remains since two independent groups prodived two radically different values for this crucial astrophysical parameter. We aim at provid- ing an independent seismic measurement of the solar metallicity in the convective enveloppe. Our main goal is to help provide new information to break the current stalemate amongst seismic determinations of the solar heavy element abundance. We start by presenting the kernels, the inversion technique and the target function of the inversion we have developed. We then test our approach in multiple hare-and-hounds exercises to assess its reliability and accuracy. We then apply our technique to solar data using calibrated solar models and determine an interval of seismic measurements for the solar metallicity. We show that our inversion can indeed be used to estimate the solar metallicity thanks to our hare-and-hounds exercises. However, we also show that further dependencies in the physical ingredients of solar models lead to a low accuracy. Nevertheless, using various physical ingredients for our solar models, we determine metallicity values between 0.008 and 0.014.
Accepted for publication in MNRAS
References in corpus (7)
- Updated Electron-Conduction Opacities: The Impact on Low-Mass Stellar Models
- CLES, Code Liegeois d'Evolution Stellaire
- Fresh insights on the structure of the solar core
- The Liege Oscillation Code
- Determining solar abundances using helioseismology
- Comment on "Large enhancement in high-energy photoionization of Fe XVII and missing continuum plasma opacity"
- Analysis of the linear approximation of seismic inversions for various structural pairs
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- The Future of Solar Neutrinos
- Evolutionary models for ultracool dwarfs
- Rotating Solar Models with Low Metal Abundances as Good as Those with High Metal Abundances
- Rotating Solar Models in Agreement with Helioseismic Results and Updated Neutrino Fluxes
- Ionization of heavy elements and the adiabatic exponent in the solar plasma
- Progress in global helioseismology: a new light on the solar modelling problem and its implications for solar-like stars
- Global Helioseismology