Illumination of the accretion disk in black hole binaries: An extended jet as the primary source of hard X-rays
arXiv:2101.02437 · doi:10.1051/0004-6361/202039903
Abstract
The models that seek to explain the reflection spectrum in black hole binaries usually invoke a point-like primary source of hard X-rays. This source illuminates the accretion disk and gives rise to the discrete (lines) and continuum-reflected components. The main goal of this work is to investigate whether the extended, mildly relativistic jet that is present in black hole binaries in the hard and hard-intermediate states is the hard X-ray source that illuminates the accretion disk. We use a Monte Carlo code that simulates the process of inverse Compton scattering in a mildly relativistic jet. Blackbody photons from the thin accretion disk are injected at the base of the jet and interact with the energetic electrons that move outward. Despite the fact that the jet moves away from the disk at a mildly relativistic speed, we find that approximately \% of the input soft photons are scattered back toward the accretion disk. The vast majority of the Comptonized, back-scattered photons escape very close to the black hole (, where is the gravitational radius), but a non-negligible amount escape at a wide range of heights. At high heights, , the distribution falls off rapidly. The high-height cutoff strongly depends on the width of the jet at its base and is almost insensitive to the optical depth. The disk illumination spectrum is softer than the direct jet spectrum of the radiation that escapes in directions that do not encounter the disk. We conclude that an extended jet is an excellent candidate source of hard photons in reflection models.
to be published in A&A
References in corpus (12)
- Modelling the behaviour of accretion flows in X-ray binaries
- The role of the reflection fraction in constraining black hole spin
- Self-Consistent Black Hole Accretion Spectral Models and the Forgotten Role of Coronal Comptonization of Reflection Emission
- A jet model for Galactic black-hole X-ray sources: Some constraining correlations
- Lorentz Factors of compact jets in Black hole X-ray binaries
- Modelling hard and soft state of Cygnus X-1 with propagating mass accretion rate fluctuations
- The evolution of the X-ray phase lags during the outbursts of the black hole candidate GX 339-4
- A spectral study of the black hole X-ray binary MAXI J1820+070 with AstroSat and NuSTAR
- The photon-index - time-lag correlation in black-hole X-ray binaries
- A quantitative explanation of the type-B QPOs in GX 339-4
- Stronger Reflection from Black Hole Accretion Disks in Soft X-ray States
- Inclination effects on the X-ray emission of Galactic black-hole binaries
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- A variable corona during the transition from type-C to type-B quasi-periodic oscillations in the black hole X-ray binary MAXI J1820+070
- A study of natural frequencies in a dynamic corona-disk system
- Trace the Accretion Geometry of H 1743--322 with Type C Quasi-periodic Oscillations in Multiple Outbursts
- The prototype X-ray binary GX 339-4: using TeV gamma-rays to assess LMXBs as Galactic cosmic ray accelerators
- A quantitative explanation of the radio--X-ray correlation in black-hole X-ray binaries
- The role of outflows in black-hole X-ray binaries
- Variable QPO lags and reduced coherence between the disc and corona in MAXI J1820+070
- Radiative feedbacks as drivers for quasi-periodic-oscillation activity in black-hole X-ray binaries
- On the infrared coincidence: what is the jet contribution to the X-ray power law in GX 339-4?