English

Mass-loss, composition and observational signatures of stellar winds from X-ray bursts

High Energy Astrophysical Phenomena 2024-11-18 v1 Solar and Stellar Astrophysics

Abstract

X-Ray bursts (XRBs) are powerful thermonuclear events on the surface of accreting neutron stars (NSs), which can synthesize intermediate-mass elements. Although the high surface gravity prevents an explosive ejection, a small fraction of the envelope may be ejected by radiation-driven winds. In our previous works, we have developed a non-relativistic radiative wind model and coupled it to an XRB hydrodynamic simulation. We now apply this technique to another model featuring consecutive bursts. We determine the mass-loss and chemical composition of the wind ejecta. Results show that, for a representative XRB, about 0.1%0.1\% of the envelope mass is ejected per burst, at an average rate of 3.9×1012Myr13.9 \times 10^{-12}\,M_\odot \texttt{yr}^{-1}. Between 66%66\% and 76%76\% of the ejecta composition is 60^{60}Ni, 64^{64}Zn, 68^{68}Ge, 4^{4}He and 58^{58}Ni. We also report on the evolution of observational quantities during the wind phase and simulate NICER observations that resemble those of 4U 1820-40.

Keywords

Cite

@article{arxiv.2411.10256,
  title  = {Mass-loss, composition and observational signatures of stellar winds from X-ray bursts},
  author = {Yago Herrera and Daniel Muñoz Vela and Glòria Sala and Jordi José and Yuri Cavecchi},
  journal= {arXiv preprint arXiv:2411.10256},
  year   = {2024}
}

Comments

6 pages, 3 figures, part of 2024 XMM-Newton Science Conference Proceedings, Madrid