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Strong disc winds traced throughout outbursts in black-hole X-ray binaries
- Source :
- Nature, Nature, 2018, 554 (7690), pp.69-72. ⟨10.1038/nature25159⟩, Nature, 2018, 554 (7690), pp.69-72. 〈10.1038/nature25159〉
- Publication Year :
- 2018
- Publisher :
- HAL CCSD, 2018.
-
Abstract
- Recurring outbursts associated with matter flowing onto compact stellar remnants (black-holes, neutron stars, white dwarfs) in close binary systems, provide strong test beds for constraining the poorly understood accretion process. The efficiency of angular momentum (and thus mass) transport in accretion discs, which has traditionally been encoded in the $\alpha$-viscosity parameter, shapes the light-curves of these outbursts. Numerical simulations of the magneto-rotational instability that is believed to be the physical mechanism behind this transport find values of $\alpha \sim 0.1-0.2$ as required from observations of accreting white dwarfs. Equivalent $\alpha$-viscosity parameters have never been estimated in discs around neutron stars or black holes. Here we report the results of an analysis of archival X-ray light-curves of twenty-one black hole X-ray binary outbursts. Applying a Bayesian approach for a model of accretion allows us to determine corresponding $\alpha$-viscosity parameters, directly from the light curves, to be $\alpha \sim$0.2--1. This result may be interpreted either as a strong intrinsic rate of angular momentum transport in the disc, which can only be sustained by the magneto-rotational instability if a large-scale magnetic field threads the disc, or as a direct indication that mass is being lost from the disc through substantial mass outflows strongly shaping the X-ray binary outburst. Furthermore, the lack of correlation between our estimates of $\alpha$-viscosity and accretion state implies that such outflows can remove a significant fraction of disc mass in all black hole X-ray binary accretion states, favouring magnetically-driven winds over thermally-driven winds that require specific radiative conditions.<br />Comment: 28 pages, 4 Figures, Nature in press
- Subjects :
- High Energy Astrophysical Phenomena (astro-ph.HE)
Physics
Multidisciplinary
010308 nuclear & particles physics
[ PHYS.ASTR ] Physics [physics]/Astrophysics [astro-ph]
Astrophysics::High Energy Astrophysical Phenomena
FOS: Physical sciences
White dwarf
Astrophysics
Compact star
Light curve
01 natural sciences
Instability
Accretion (astrophysics)
Black hole
Neutron star
13. Climate action
0103 physical sciences
Radiative transfer
Astrophysics::Solar and Stellar Astrophysics
Astrophysics::Earth and Planetary Astrophysics
Astrophysics - High Energy Astrophysical Phenomena
[PHYS.ASTR]Physics [physics]/Astrophysics [astro-ph]
010303 astronomy & astrophysics
Astrophysics::Galaxy Astrophysics
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Nature, Nature, 2018, 554 (7690), pp.69-72. ⟨10.1038/nature25159⟩, Nature, 2018, 554 (7690), pp.69-72. 〈10.1038/nature25159〉
- Accession number :
- edsair.doi.dedup.....f7273069bb489f236507385a5d003245
- Full Text :
- https://doi.org/10.1038/nature25159⟩