4.7 Article

Understanding X-ray irradiation in low-mass X-ray binaries directly from their light-curves

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/sty1798

关键词

accretion; accretion discs; black hole physics; X-rays: binaries

资金

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. Discovery Accelerator Supplement
  3. National Science Foundation [NSF PHY-1125915]
  4. Polish National Science Centre OPUS [2015/19/B/ST9/01099]
  5. French Space Agency CNES

向作者/读者索取更多资源

The X-ray light curves of the recurring outbursts observed in low-mass X-ray binaries provide strong test beds for constraining (still) poorly understood disc-accretion processes. These light curves act as a powerful diagnostic to probe the physics behind the mechanisms driving mass inflow and outflow in these binary systems. We have thus developed an innovative methodology, combining a foundation of Bayesian statistics, observed X-ray light-curves, and accretion disc theory. With this methodology, we characterize the angular momentum (and mass) transport processes in an accretion disc, as well as the properties of the X-ray irradiation-heating that regulates the decay from outburst maximum in low-mass X-ray transients. We recently applied our methodology to the Galactic black-hole low-mass X-ray binary population, deriving from their light curves the first-ever quantitative measurements of the alpha-viscosity parameter in these systems (Tetarenko et al. 2018). In this paper, we continue the study of these binaries, using Bayesian methods to investigate the X-ray irradiation of their discs during outbursts of strong accretion. We find that the predictions of the discinstability model, assuming a source of X-ray irradiation proportional to the central accretion rate throughout outburst, do not adequately describe the later stages of BH-LMXB outburst light curves. We postulate that the complex and varied light-curve morphology observed across the population is evidence for irradiation that varies in time and space within the disc, throughout individual transient outbursts. Lastly, we demonstrate the robustness of our methodology, by accurately reproducing the synthetic model light curves computed from numerical codes built to simulate accretion flows in binary systems.

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