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相关论文: Mixing of CNO-cycled matter in massive stars

200 篇论文

We report on the abundances of helium, carbon, nitrogen and oxygen in a larger sample of Galactic massive stars of ~7-20 M_sun near the main sequence, composed of apparently normal objects, pulsators of beta-Cephei- and SPB-type, and…

太阳与恒星天体物理 · 物理学 2015-05-20 Norbert Przybilla , Maria-Fernanda Nieva

The nitrogen to carbon (N/C) and nitrogen to oxygen (N/O) ratios are the most sensitive quantities to mixing in stellar interiors of intermediate and massive stars. We further investigate the theoretical properties of these ratios as well…

Massive stars burn hydrogen through the CNO cycle during most of their evolution. When mixing is efficient, or when mass transfer in binary systems happens, chemically processed material is observed at the surface of O and B stars. ON stars…

太阳与恒星天体物理 · 物理学 2015-04-24 F. Martins , S. Simon-Diaz , A. Palacios , I. Howarth , C. Georgy , N. R. Walborn , J. -C. Bouret , R. Barba

In order to investigate the possible influence of rotation on the efficiency of the first dredge-up we determined atmospheric parameters, masses, and abundances of carbon, nitrogen, and oxygen in a sample of evolved intermediate mass stars.…

天体物理学 · 物理学 2009-11-11 R. Smiljanic , B. Barbuy , J. R. De Medeiros , A. Maeder

Aims: Past observations of fast-rotating massive stars exhibiting normal nitrogen abundances at their surface have raised questions about the rotational mixing paradigm. We revisit this question thanks to a spectroscopic analysis of a…

太阳与恒星天体物理 · 物理学 2020-12-09 Constantin Cazorla , Yaël Nazé , Thierry Morel , Cyril Georgy , Mélanie Godart , Norbert Langer

Massive stars play a key role in the evolution of the Universe. Our goal is to compare observed and predicted properties of single Galactic O stars to identify and constrain uncertain physical parameters and processes in stellar evolution…

太阳与恒星天体物理 · 物理学 2018-05-16 Nevena Markova , Joachim Puls , Norbert Langer

Surface abundances of C, N, and O in red giants are affected by processed material mixed into the stars' convective envelopes. Using a sample of $\sim 5100$ stars with elemental abundances from APOGEE and asteroseismic masses from {\it…

Aims: Recent observations have challenged our understanding of rotational mixing in massive stars by revealing a population of fast-rotating objects with apparently normal surface nitrogen abundances. However, several questions have arisen…

太阳与恒星天体物理 · 物理学 2017-07-12 Constantin Cazorla , Thierry Morel , Yael Naze , Gregor Rauw , Thierry Semaan , Simone Daflon , M. S. Oey

We have investigated the poorly-understood origin of nitrogen in the early Galaxy by determining N abundances in 35 extremely metal-poor halo giants (22 stars have [Fe/H]<-3.0) using the C and O abundances determined in Paper V. Because any…

The GES survey using FLAMES at the VLT has obtained high-resolution UVES spectra for a large number of giant stars, allowing a determination of the abundances of the key chemical elements C and N at their surface. The surface abundances of…

After hydrogen and helium, oxygen, carbon, and nitrogen - hereinafter, the CNO elements - are the most abundant species in the universe. They are observed in all kinds of astrophysical environments, from the smallest to the largest scales,…

星系天体物理 · 物理学 2022-11-16 Donatella Romano

We study the evolutionary and physical properties of evolved O stars in the Small Magellanic Cloud (SMC), with a special focus on their surface abundances to investigate the efficiency of rotational mixing as a function of age, rotation and…

Chemical abundances and abundance ratios measured in galaxies provide precious information about the mechanisms, modes and time scales of the assembly of cosmic structures. Yet, the nucleogenesis and chemical evolution of elements heavier…

星系天体物理 · 物理学 2019-12-04 Donatella Romano , Francesca Matteucci , Zhi-Yu Zhang , Rob J. Ivison , Paolo Ventura

We present NLTE abundances of CNO for a sample of four O9 stars in the Galaxy, together with new determinations of their stellar parameters, $T_{\rm eff}$, $\log g$, $\epsilon$(He) and microturbulence. These new analyses take into account…

天体物理学 · 物理学 2009-11-07 M. R. Villamariz , A. Herrero , S. R. Becker , K. Butler

Context. The recent detection of nitrogen-enhanced, metal-poor galaxies at high redshift by the James Webb Space Telescope has sparked renewed interest in exploring the chemical evolution of carbon, nitrogen, and oxygen (the CNO elements)…

The evolution of massive stars is still partly unconstrained. Mass, metallicity, mass loss and rotation are the main drivers of stellar evolution. Binarity and magnetic field may also significantly affect the fate of massive stars. Our goal…

太阳与恒星天体物理 · 物理学 2015-06-23 F. Martins , A. Hervé , J. -C. Bouret , W. Marcolino , G. A. Wade , C. Neiner , E. Alecian , J. Grunhut , V. Petit , the MiMeS collaboration

Thanks to their usefulness in various fields of astrophysics (e.g. mixing processes in stars, chemical evolution of galaxies), the last few years have witnessed a large increase in the amount of abundance data for early-type stars. Two…

天体物理学 · 物理学 2008-11-26 T. Morel

There is increasing evidence that single-star evolutionary models are inadequate to reproduce all observational properties of massive stars. Binary interaction has emerged as a key factor in the evolution of a significant fraction of…

太阳与恒星天体物理 · 物理学 2025-01-08 C. Martínez-Sebastián , S. Simón-Díaz , H. Jin , Z. Keszthelyi , G. Holgado , N. Langer , J. Puls

We review general characteristics of massive stars, present the main observable constraints that stellar models should reproduce. We discuss the impact of massive star nucleosynthesis on the early phases of the chemical evolution of the…

In previous works, we computed abundances for the red giant in nearly four dozen S-type symbiotic systems (SySt). The abundances provide information about metallicity, evolutionary status, and possible memberships in Galactic stellar…

太阳与恒星天体物理 · 物理学 2023-10-20 Cezary Gałan , Joanna Mikołajewska , Kenneth H. Hinkle , Richard R. Joyce
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