English

Origin of bright flares in SFXTs

High Energy Astrophysical Phenomena 2014-12-08 v1

Abstract

In the settling accretion theory, which is applicable to quasi-spherical accreting slowly rotating magnetized neutron stars with X-ray luminosity Lx4×1036L_x\lesssim 4\times 10^{36}~erg/s, bright X-ray flares (10381040\sim 10^{38}-10^{40}~ergs) observed in supergiant fast X-ray transients (SFXT) may be produced by sporadic capture of magnetized stellar-wind plasma from the early-type supergiant. At sufficiently low steady accretion rates (1015\lesssim 10^{15}~g/s) through the shell around the neutron star magnetosphere at the settling accretion stage, magnetic reconnection can temporarily enhance the magnetospheric plasma entry rate, resulting in copious production of X-ray photons, strong Compton cooling, and ultimately in unstable accretion of the entire shell. A bright flare develops on the free-fall time scale in the shell, RB3/2/GM103104R_B^{3/2}/\sqrt{GM}\sim 10^3-10^4~s (RBR_B is the classical Bondi capture radius), and the typical energy released in an SFXT bright flare corresponds to the mass of the shell.

Keywords

Cite

@article{arxiv.1412.2101,
  title  = {Origin of bright flares in SFXTs},
  author = {K. Postnov and N. Shakura and L. Sidoli and A. Paizis},
  journal= {arXiv preprint arXiv:1412.2101},
  year   = {2014}
}

Comments

10 pages, 1 figure, submitted to PoS (Proceedings of 10th INTEGRAL Workshop)