Common-envelope Dynamics of a Stellar-mass Black Hole: General Relativistic Simulations
arXiv:2004.13782 · doi:10.3847/1538-4357/ab89aa
Abstract
With the goal of providing more accurate and realistic estimates of the secular behavior of the mass accretion and drag rates in the "common-envelope" scenario encountered when a black hole or a neutron star moves in the stellar envelope of a red supergiant star, we have carried out the first general relativistic simulations of the accretion flow onto a nonrotating black hole moving supersonically in a medium with regular but different density gradients. The simulations reveal that the supersonic motion always rapidly reaches a stationary state and it produces a shock cone in the downstream part of the flow. In the absence of density gradients we recover the phenomenology already observed in the well-known Bondi--Hoyle--Lyttleton accretion problem, with super-Eddington mass accretion rate and a shock cone whose axis is stably aligned with the direction of motion. However, as the density gradient is made stronger, the accretion rate also increases and the shock cone is progressively and stably dragged toward the direction of motion. With sufficiently large gradients, the shock-cone axis can become orthogonal to the direction, or even move in the upstream region of the flow in the case of the largest density gradient. Together with the phenomenological aspects of the accretion flow, we have also quantified the rates of accretion of mass and momentum onto the black hole. Simple analytic expressions have been found for the rates of accretion of mass, momentum, drag force, and bremsstrahlung luminosity, all of which have been employed in the astrophysical modelling of the secular evolution of a binary system experiencing a common-envelope evolution...
16 pages, 27 figures. Accepted for publication in ApJ
References in corpus (19)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- The Evolution of Compact Binary Star Systems
- Modeling GW170817 based on numerical relativity and its implications
- Asymmetric Accretion Flows within a Common Envelope
- The influence of the hydrodynamic drag from an accretion torus on extreme mass-ratio inspirals
- Recombination energy in double white dwarf formation
- On the Accretion-Fed Growth of Neutron Stars During Common Envelope
- On the role of recombination in common-envelope ejections
- Episodic mass ejections from common-envelope objects
- EM counterparts of recoiling black holes: general relativistic simulations of non-Keplerian discs
- Numerical Simulations of Optically Thick Accretion onto a Black Hole - II. Rotating Flow
- Discovery of a Thorne-Zytkow object candidate in the Small Magellanic Cloud
- Accretion Disk Assembly During Common Envelope Evolution: Implications for Feedback and LIGO Binary Black Hole Formation
- Relativistic dynamical friction in a collisional fluid
- Is the flip-flop behaviour of accretion shock cones on to black holes an effect of coordinates?
- Revisiting the Flip-Flop Instability of Hoyle-Lyttleton Accretion
- Axisymmetric Bondi-Hoyle accretion onto a Schwarzschild Black Hole: shock cone vibrations
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- The depletion of the red supergiant envelope radiative zone during common envelope evolution
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