The Impact of Initial Composition on Massive Star Evolution and Nucleosynthesis

Fuente: arXiv
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Autores principales: West, Christopher, Heger, Alexander, Cote, Benoit, Serxner, Lev, Sun, Haoxuan
Formato: Preprint
Publicado: 2024
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author West, Christopher
Heger, Alexander
Cote, Benoit
Serxner, Lev
Sun, Haoxuan
author_facet West, Christopher
Heger, Alexander
Cote, Benoit
Serxner, Lev
Sun, Haoxuan
contents We study the sensitivity of presupernova evolution and supernova nucleosynthesis yields of massive stars to variations of the initial composition. We use the solar abundances from Lodders (2009), and compute two different initial stellar compositions: i) scaled solar abundances, and ii) the isotopic galactic chemical history model (GCH) developed by West and Heger (2013b). We run a grid of models using the KEPLER stellar evolution code, with 7 initial stellar masses, 12 initial metallicities, and two for each scaling method to explore the effects on nucleosynthesis over a metallicity range of $-4.0\leq[Z]\leq+0.3$. We find that the compositions from the GCH model better reproduce the weak \emph{s}-process peak than the scaled solar models. The model yields are then used in the OMEGA Galactic Chemical Evolution (GCE) code to assess this result further. We find that initial abundances used in computing stellar structure have more of an impact on GCE results than initial abundances used in the burn network, with the GCH model again being favored when compared to observations. Lastly, a machine learning algorithm was used to verify the free parameter values of the GCH model, which were previously found by West and Heger (2013b) using a stochastic fitting process. The updated model is provided as an accessible tool for further nucleosynthesis studies.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16594
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Impact of Initial Composition on Massive Star Evolution and Nucleosynthesis
West, Christopher
Heger, Alexander
Cote, Benoit
Serxner, Lev
Sun, Haoxuan
Solar and Stellar Astrophysics
Astrophysics of Galaxies
We study the sensitivity of presupernova evolution and supernova nucleosynthesis yields of massive stars to variations of the initial composition. We use the solar abundances from Lodders (2009), and compute two different initial stellar compositions: i) scaled solar abundances, and ii) the isotopic galactic chemical history model (GCH) developed by West and Heger (2013b). We run a grid of models using the KEPLER stellar evolution code, with 7 initial stellar masses, 12 initial metallicities, and two for each scaling method to explore the effects on nucleosynthesis over a metallicity range of $-4.0\leq[Z]\leq+0.3$. We find that the compositions from the GCH model better reproduce the weak \emph{s}-process peak than the scaled solar models. The model yields are then used in the OMEGA Galactic Chemical Evolution (GCE) code to assess this result further. We find that initial abundances used in computing stellar structure have more of an impact on GCE results than initial abundances used in the burn network, with the GCH model again being favored when compared to observations. Lastly, a machine learning algorithm was used to verify the free parameter values of the GCH model, which were previously found by West and Heger (2013b) using a stochastic fitting process. The updated model is provided as an accessible tool for further nucleosynthesis studies.
title The Impact of Initial Composition on Massive Star Evolution and Nucleosynthesis
topic Solar and Stellar Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2410.16594