Radiation Spectrum of a Magnetized Supercritical Accretion Disc with Thermal Conduction
arXiv:1304.6922 · doi:10.1007/s10509-013-1451-0
Abstract
We examine the effect of thermal conduction on the observational properties of a super critical hot magnetized flow. We obtained self-similar solution of a magnetized disc when the thermal conduction plays an important role. Follow of our first paper (Ghasemnezhad et al. 2012 (hereafter GKA12)) we have extended our solution on the observational appearance of the disc to show how physical condition such as thermal conduction, viscosity, and advection will change the observed luminosity of the disc, Continuous spectra and surface temperature of such discs was plotted. We apply the present model to black-hole X-ray binary LMC X-3 and narrow-line seyfert 1 galaxies, which are supposed to be under critical accretion rate. Our results show clearly that the surface temperature is strongly depends on the thermal conduction, the magnetic field and advection parameter. However we see that thermal conduction acts to oppose the temperature gradient as we expect and observed luminosity of the disc will reduce when thermal conduction is high. We have shown that in this model the spectra of critical accretion flows strongly depends on the inclination angle.
Accepted for publication, AP&SS
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Cited by in corpus (4)
- Three-Dimensional General Relativistic Radiation Magnetohydrodynamical Simulation of Super-Eddington Accretion, using a new code HARMRAD with M1 Closure
- Hydrodynamical wind on vertically self-gravitating ADAFs in the presence of toroidal magnetic field
- Structure of a hot accretion flow in the presence of outflow and convection with large ordered magnetic field
- The influence of large scale magnetic field in the structure of supercritical accretion flow with outflow