English

Slim Disk Model for Ultra-Luminous X-Ray Sources

Astrophysics 2009-10-31 v1

Abstract

The Ultra Luminous X-ray Sources (ULXs) are unique in exhibiting moderately bright X-ray luminosities, Lx103840erg s1L_{\rm x} \sim 10^{38-40} {\rm erg~s^{-1}}, and relatively high blackbody temperatures, \Tin1.02.0keV\Tin \sim 1.0-2.0 {\rm keV}. From the constraint that LxL_{\rm x} cannot exceed the Eddington luminosity, LEL_{\rm E}, we require relatively high black-hole masses, M10100MM\sim 10-100 M_\odot, however, for such large masses the standard disk theory predicts lower blackbody temperatures, \Tin<1.0\Tin < 1.0 keV. To understand a cause of this puzzling fact, we carefully calculate the accretion flow structure shining at LE\sim L_{\rm E}, fully taking into account the advective energy transport in the optically thick regime and the transonic nature of the flow. Our calculations show that at high accretion rate (M˙\ga30 LE/c2\dot M \ga 30~L_{\rm E}/c^2) an apparently compact region with a size of \Rin(13)\rg\Rin \simeq (1-3)\rg (with \rg\rg being Schwarzschild radius) is shining with a blackbody temperature of \Tin1.8(M/10M)1/4\Tin \simeq 1.8 (M/10M_\odot)^{-1/4} keV even for the case of a non-rotating black hole. Further, \Rin\Rin decreases as M˙\dot M increases, on the contrary to the canonical belief that the inner edge of the disk is fixed at the radius of the marginally stable last circular orbit. Accordingly, the loci of a constant black-hole mass on the "H-R diagram" (representing the relation between LxL_{\rm x} and \Tin\Tin both on the logarithmic scales) are not straight but bent towards the lower MM direction in the frame of the standard-disk relation.

Keywords

Cite

@article{arxiv.astro-ph/0011434,
  title  = {Slim Disk Model for Ultra-Luminous X-Ray Sources},
  author = {Ken-ya Watarai and Tsunefumi Mizuno and Shin Mineshige},
  journal= {arXiv preprint arXiv:astro-ph/0011434},
  year   = {2009}
}

Comments

5 pages, 2 figures, 2 tables, accepted for publication in the Astrophysical Journal Letters

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