Type I X-Ray Burst Models With Rotation
David Martin, Jordi Jose
astro-ph.HE, astro-ph.SR, nucl-ex
Submitted: 2026-08-05
Comments: 22 pages, 9 figures, Accepted for publication in The Astrophysical Journal
License: http://creativecommons.org/licenses/by/4.0/
The gist: Type I X-ray bursts are powered by unstable thermonuclear burning on the surface of accreting neutron stars in close binary systems.
Terminology
Abstract
Type I X-ray bursts are powered by unstable thermonuclear burning on the surface of accreting neutron stars in close binary systems. These brief X-ray flashes, with light curves featuring rise times of 1-10 s, durations of 10-100 s, and recurrence periods of hours to days, represent the most frequent stellar explosions in our Galaxy. With typical energies of about 10 39-10 40 erg, they rank among the most powerful astrophysical transients after supernovae and classical novae. To date, roughly 120 bursting X-ray binaries have been identified in the Milky Way. Several studies have been conducted to characterize the dynamics of these events, with emphasis on reproducing the observed recurrence periods and light curve shapes. In this paper we show, for the first time, that rotation is a key factor shaping the properties of Type I X-ray bursts in rapidly spinning systems. The inclusion of centrifugal forces, together with a suite of rotationally-induced mixing mechanisms, such as meridional circulation and shear-induced turbulent diffusion, reduce surface gravity, shortening the recurrence times and lowering burst energies. Rotation also modifies the extent of the nuclear activity during these events and affects the morphology of their light curves, which are distinctly broader for rapidly rotating neutron stars.
Sources
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