Interactions of Type I X-ray Bursts with Thin Accretion Discs
arXiv:2001.01032
Abstract
We perform a set of numerical experiments studying the interaction of Type I X-ray bursts with thin, Shakura-Sunyaev type accretion discs. Careful observations of X-ray spectra during such bursts have hinted at changes occurring in the inner regions of the disc. We now clearly demonstrate a number of key effects that take place simultaneously, including: evidence for weak, radiation-driven outflows along the surface of the disc; significant levels of Poynting-Robertson (PR) drag, leading to enhanced accretion; and prominent heating in the disc, which increases the height, while lowering the density and optical depth. The PR drag causes the inner edge of the disc to retreat from the neutron star surface toward larger radii and then recover on the timescale of the burst. We conclude that the rich interaction of an X-ray burst with the surrounding disc provides a novel way to study the physics of accretion onto compact objects.
26 pages, 10 figures
References in corpus (6)
- The Masses and Spins of Neutron Stars and Stellar-Mass Black Holes
- Neutron star mass and radius measurements from atmospheric model fits to X-ray burst cooling tail spectra
- Semi-implicit scheme for treating radiation under M1 closure in general relativistic conservative fluid dynamics codes
- Evidence for enhanced persistent emission during sub-Eddington thermonuclear bursts
- Accretion disks and coronae in the X-ray flashlight
- The influence of accretion geometry on the spectral evolution during thermonuclear (type-I) X-ray bursts