Mass-loss, composition and observational signatures of stellar winds from X-ray bursts
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 of the envelope mass is ejected per burst, at an average rate of . Between and of the ejecta composition is Ni, Zn, Ge, He and 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