The late stages of the evolution of intermediate-mass primordial stars: the effects of overshooting
arXiv:astro-ph/0612267 · doi:10.1051/0004-6361:20065641
Abstract
We compute and analyze the evolution of primordial stars of masses at the ZAMS between 5 M_sun and 10 M_sun, with and without overshooting. Our main goals are to determine the nature of the remnants of massive intermediate-mass primordial stars and to check the influence of overshooting in their evolution. Our calculations cover stellar evolution from the main sequence phase until the formation of the degenerate cores and the thermally pulsing phase. We have obtained the values for the limiting masses of Population III progenitor stars leading to carbon-oxygen and oxygen-neon compact cores. Moreover, we have also obtained the limiting mass for which isolated primordial stars would lead to core-collapse supernovae after the end of the main central burning phases. Considering a moderate amount of overshooting the mass thresholds at the ZAMS for the formation of carbon-oxygen and oxygen-neon degenerate cores shifts to smaller values by about 2 M_sun. As a by-product of our calculations, we have also obtained the structure and composition profiles of the resulting compact remnants. Opposite to what happens with solar metallicity objects, the final fate of primordial stars is not straightforward determined from the mass of the compact cores at the end of carbon burning. Instead, the small mass-loss rates typically associated to stellar winds of low metallicity stars might allow the growth of the resulting degenerate cores up to the Chandrasekhar mass, on time scales one or two orders of magnitude shorter than the time required to loose the envelope. This would lead to the formation of supernovae for initial masses as small as about 5 M_sun.
19 pages, 16 fig, accepted by A&A
References in corpus (11)
- Nucleosynthetic signatures of the first stars
- An empirical formula for the mass-loss rates of dust-enshrouded red supergiants and oxygen-rich Asymptotic Giant Branch stars
- The early star generations: the dominant effect of rotation on the CNO yields
- A New Version of Reimers' law of Mass Loss Based on a Physical Approach
- A strong case for fast stellar rotation at very low metallicities
- The cooling of shock-compressed primordial gas
- Constraints on the IMF of the first stars
- Low-Mass Star Formation, Triggered by Supernova in Primordial Clouds
- The gravitational collapse of ONe electron-degenerate cores and white dwarfs: the role of Mg and C revisited
- On the stability of thermonuclear shell sources in stars
- Carbon burning in intermediate mass primordial stars
Cited by in corpus (21)
- The Evolution of Isotope Ratios in the Milky Way Galaxy
- Super and massive AGB stars - IV. Final fates - Initial to final mass relation
- Effects of rotation on the evolution of primordial stars
- Super-AGB Stars and their role as Electron Capture Supernova progenitors
- On the evolution of ultra-massive white dwarfs
- Dust formation around AGB and SAGB stars: a trend with metallicity?
- A new imprint of fast rotators: low 12C/13C ratios in extremely metal-poor halo stars
- Evolution of progenitors for electron capture supernovae
- On Carbon Burning in Super Asymptotic Giant Branch Stars
- The evolution of low-metallicity asymptotic giant branch stars and the formation of carbon-enhanced metal-poor stars
- Evolution of Low- and Intermediate-Mass Stars with [Fe/H] <= -2.5
- The end of super AGB and massive AGB stars I. The instabilities that determine the final mass of AGB stars
- The evolution of CNO elements in galaxies
- Short-lived radioactivity in the early Solar System: the Super-AGB star hypothesis
- Further investigation of white dwarfs in the open clusters NGC2287 and NGC3532
- Evolution and CNO yields of Z=10^-5 stars and possible effects on CEMP production
- An Explosive End to Intermediate-Mass Zero-Metallicity Stars and Early Universe Nucleosynthesis
- Case A and B evolution towards electron capture supernova
- The effect of intermediate mass close binaries on the chemical evolution of Globular Clusters
- Nitrogen abundance in the X-ray halos of clusters and groups of galaxies
- The most metal-rich asymptotic giant branch stars