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External irradiation of a neutron star (NS) accretion disc induces Poynting-Robertson (PR) drag, removing angular momentum and increasing the mass accretion rate. Recent simulations show PR drag significantly enhancing the mass accretion…

High Energy Astrophysical Phenomena · Physics 2023-09-04 J. Speicher , P. C. Fragile , D. R. Ballantyne

The accretion flow onto a neutron star will be impacted due to irradiation by a Type I X-ray burst. The burst radiation exerts Poynting-Robertson (PR) drag on the accretion disk, leading to an enhanced mass accretion rate. Observations of…

High Energy Astrophysical Phenomena · Physics 2024-10-29 J. Speicher , D. R. Ballantyne , P. C. Fragile

We use two-dimensional, general relativistic, viscous, radiation hydrodynamic simulations to study the impact of a Type I X-ray burst on a hot and geometrically thick accretion disk surrounding an unmagnetized, non-rotating neutron star.…

High Energy Astrophysical Phenomena · Physics 2018-11-14 P. Chris Fragile , David R. Ballantyne , Thomas J. Maccarone , Jason W. L. Witry

Plasma accreted onto the surface of a neutron star can ignite due to unstable thermonuclear burning and produce a bright flash of X-ray emission called a Type-I X-ray burst. Such events are very common; thousands have been observed to date…

High Energy Astrophysical Phenomena · Physics 2017-12-27 N. Degenaar , D. R. Ballantyne , T. Belloni , M. Chakraborty , Y. -P. Chen , L. Ji , P. Kretschmar , E. Kuulkers , J. Li , T. J. Maccarone , J. Malzac , S. Zhang , S. -N. Zhang

Irradiation of the accretion disc causes reflection signatures in the observed X-ray spectrum, encoding important information about the disc structure and density. A Type I X-ray burst will strongly irradiate the accretion disc and alter…

High Energy Astrophysical Phenomena · Physics 2021-11-03 J. Speicher , D. R. Ballantyne , P. C. Fragile

Type I X-ray bursts and superbursts on neutron stars release sudden and intense radiation fields into their surroundings. Here, we consider the possible effects of these powerful explosions on the structure of the accretion disk. The goal…

Astrophysics · Physics 2009-11-10 D. R. Ballantyne , J. E. Everett

Accretion disks around neutron stars regularly undergo sudden strong irradiation by Type I X-ray bursts powered by unstable thermonuclear burning on the stellar surface. We investigate the impact on the disk during one of the first X-ray…

The outpouring of radiation during an X-ray burst can affect the properties of accretion discs around neutron stars: the corona can cool and collapse, the inner regions can be bled away due to enhanced accretion, and the additional heating…

High Energy Astrophysical Phenomena · Physics 2022-11-16 D. R. Ballantyne

Type I X-ray bursts are the result of an unstable thermonuclear burning of accreting matter on the neutron star (NS) surface. The quick release of energetic X-ray photons during such bursts interacts with the surrounding accretion disk,…

High Energy Astrophysical Phenomena · Physics 2022-04-08 Guoying Zhao , Zhaosheng Li , Yuanyue Pan , Maurizio Falanga , Long Ji , Yupeng Chen , Shu Zhang

The intense radiation flux of Type I X-ray bursts is expected to interact with the accretion flow around neutron stars. High frequency quasiperiodic oscillations (kHz QPOs), observed at frequencies matching orbital frequencies at tens of…

High Energy Astrophysical Phenomena · Physics 2014-09-05 P. Peille , J-F. Olive , D. Barret

Understanding the persistent emission is crucial for studying type I X-ray bursts, which provide insight into neutron star properties. Although accretion disc coronae appear to be common in many accreting systems, their fundamental…

High Energy Astrophysical Phenomena · Physics 2020-10-21 J. Speicher , D. R. Ballantyne , J. Malzac

Recent studies have shown that runaway thermonuclear burning of material accreted onto neutron stars, i.e. Type I X-ray bursts, may affect the accretion disk. We investigate this by performing a detailed time-resolved spectral analysis of…

High Energy Astrophysical Phenomena · Physics 2015-06-19 L. Keek , D. R. Ballantyne , E. Kuulkers , T. E. Strohmayer

When neutron stars accrete matter from a companion star, this matter forms a disc around them and eventually falls on their surface. Here, the fuel can ignite into bright flashes called Type I bursts. Theoretical calculations based on…

Type I X-ray bursts and superbursts from accreting neutron stars illuminate the accretion disk and produce a reflection signal that evolves as the burst fades. Examining the evolution of reflection features in the spectra will give insight…

High Energy Astrophysical Phenomena · Physics 2016-07-26 L. Keek , Z. Wolf , D. R. Ballantyne

One long standing tension between theory and observations of Type I X-ray burst is the accretion rate at which the burst disappear due to stabilization of the nuclear burning that powers them. This is observed to happen at roughly one third…

High Energy Astrophysical Phenomena · Physics 2024-11-18 Martin Nava-Callejas , Yuri Cavecchi , Dany Page

I review our understanding of the thermonuclear instabilities on accreting neutron stars that produce Type I X-Ray bursts. I emphasize those observational and theoretical aspects that should interest the broad audience of this meeting. The…

Astrophysics · Physics 2009-10-31 Lars Bildsten

During accretion a neutron star (NS) is spun up as angular momentum is transported through its surface layers. We study the resulting differentially rotating profile, focusing on the impact this has for type I X-ray bursts. The predominant…

Astrophysics · Physics 2009-06-23 Anthony L. Piro , Lars Bildsten

Millisecond x-ray pulsars have weak magnetic dipole moments of $\sim 10^{16}$\,T\,m$^3$ compared to ordinary X-ray pulsars with dipole moments of $10^{20}$\,T\,m$^3$. For this reason a surrounding accretion disc can extend closer to the…

High Energy Astrophysical Phenomena · Physics 2010-11-12 Solomon Belay Tessema , Ulf Torkelsson

During accretion, a neutron star (NS) is spun up as angular momentum is transported through its liquid surface layers. We study the resulting differentially rotating profile, focusing on the impact this has for type I X-ray bursts. The…

Astrophysics · Physics 2008-11-26 Anthony L. Piro , Lars Bildsten

The excess of the rate of type I X-ray bursts over that expected when the matter fallen between bursts completely burns out in a thermonuclear explosion is explained in terms of the model of a spreading layer of matter coming from the…

High Energy Astrophysical Phenomena · Physics 2018-12-03 S. A. Grebenev , I. V. Chelovekov
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