The appearance of magnetospheric instability in flaring activity at the onset of X-ray outbursts in A0535+26
arXiv:0801.3165 · doi:10.1051/0004-6361:20079277
Abstract
We argue that X-ray flaring variability observed in the transient X-ray pulsar A 0535+26 is due to low-mode magnetospheric instability. This instability develops at the onset of accretion, in the thin boundary layer between the accretion disk and neutron star magnetosphere. As a result, the matter collected in the boundary layer can rapidly fall onto the NS surface close to the magnetic poles, but not exactly along the field lines by which the stationary accretion proceeds. This explains the shift in cyclotron line energy measured using RXTE data in a pre-outburst spike, with respect to the line energy observed during the main outburst. Furthermore, the instability can account for the difference in pulse profiles, and their energy evolution that is different in the pre-outburst flare and main outburst.
4 pages, 1 figure, accepted for publication in A&A Letters. To be published in parallel to Caballero et al. 2008
References in corpus (8)
- Physics of Strongly Magnetized Neutron Stars
- "Propeller" Regime of Disk Accretion to Rapidly Rotating Stars
- Discovery of a flux-related change of the cyclotron line energy in Her X-1
- A 0535+26 in the August/September 2005 outburst observed by RXTE and INTEGRAL
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- The pre-outburst flare of the A 0535+26 August/September 2005 outburst
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- Supergiant Fast X-ray Transients uncovered by the EXTraS project: flares reveal the development of magnetospheric instability in accreting neutron stars
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- Phase dependent evolution within large luminosity range of 1A 0535+262 observed by Insight-HXMT during 2020 giant outburst
- Luminosity dependence of the cyclotron line energy in 1A 0535+262 observed by Insight-HXMT during 2020 giant outburst
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