Supercritical Accretion onto a Non-Magnetized Neutron Star: Why is it Feasible?
arXiv:1712.02068 · doi:10.3847/1538-4357/aaa082
Abstract
To understand why supercritical accretion is feasible onto a neutron star, we carefully examine the accretion flow dynamics by 2.5-dimensional general relativistic (GR) radiation magnetohydrodynamic (RMHD) simulations, comparing the cases of accretion onto a non-magnetized neutron star (NS) and that onto a black hole (BH). Supercritical BH accretion is relatively easy, since BH can swallow excess radiation energy, so that radiation flux can be inward in its vicinity. This mechanism can never work for NS which has a solid surface. In fact, we find that the radiation force is always outward. Instead, we found significant reduction in the mass accretion rate due to strong radiation-pressure driven outflow. The radiation flux is self-regulated such that the radiation force balances with the sum of gravity and centrifugal forces. Even when the radiation energy density much exceeds that expected from the Eddington luminosity , the radiation flux is always kept below the certain value which makes it possible not to blow all the gas away from the disk. These effects make supercritical accretion feasible. We also find that a settling region, where accretion is significantly decelerated by radiation cushion, is formed around the NS surface. In the settling region, the radiation temperature and mass density roughly follow and , respectively. No settling region appears around the BH so that matter can be directly swallowed by the BH with supersonic speed.
11 pages, 7 figures, accepted for publication in ApJ
References in corpus (11)
- An Ultraluminous X-ray Source Powered by An Accreting Neutron Star
- Super-critically accreting stellar-mass black holes as ultraluminous X-ray sources
- An accreting pulsar with extreme properties drives an ultraluminous x-ray source in NGC 5907
- Discovery of a 0.42-s pulsar in the ultraluminous X-ray source NGC 7793 P13
- Discovery of coherent pulsations from the Ultraluminous X-ray Source NGC 7793 P13
- Global simulations of axisymmetric radiative black hole accretion disks in general relativity with a sub-grid magnetic dynamo
- Semi-implicit scheme for treating radiation under M1 closure in general relativistic conservative fluid dynamics codes
- Why Is Supercritical Disk Accretion Feasible?
- A radiation-hydrodynamic model of accretion columns for ultra-luminous X-ray pulsars
- General relativistic radiation magnetohydrodynamics simulations of supercritical accretion onto magnetized neutron star; -modeling of ultra luminous x-ray pulsars
- Radiation Drag Effects in Black Hole Outflows from Super-critical Accretion Disks via Special Relativistic Radiation Magnetohydrodynamics Simulations
Cited by in corpus (20)
- Ultraluminous X-ray sources
- Ultraluminous X-Ray Sources
- No magnetars in ULXs
- Timing properties of ULX pulsars: optically thick envelopes and outflows
- Long-term X-ray spectral evolution of Ultraluminous X-ray sources: implications on the accretion flow geometry and the nature of the accretor
- Pulsing and Non-Pulsing ULXs: the Iceberg Emerges
- A Three-dimensional Simulation of a Magnetized Accretion Disk: Fast Funnel Accretion onto a Weakly Magnetized Star
- Supercritical accretion of stellar-mass compact objects in active galactic nuclei
- On the magnetic field in M51 ULX-8
- The FORCE mission : Science aim and instrument parameter for broadband X-ray imaging spectroscopy with good angular resolution
- The Role of Outflow Feedback on Accretion of Compact Objects in Accretion Disk of Active Galactic Nuclei
- Large-scale outflow structure and radiation properties of super-Eddington flow: Dependence on the accretion rates
- Radiative GRMHD simulations of accretion and outflow in non-magnetized neutron stars and ultraluminous X-ray sources
- Beamed emission from a neutron-star ULX in a GRRMHD simulation
- Bright X-ray Pulsars: how outflows influence beaming, pulsations and pulse phase lags
- Modeling of Thermal Emission from ULX Pulsar Swift J0243.6+6124 with General Relativistic Radiation MHD simulations
- GRMHD simulations of accreting neutron stars I: nonrotating dipoles
- GR-RMHD Simulations of Super-Eddington Accretion Flows onto a Neutron Star with Dipole and Quadrupole Magnetic Fields
- Discovery of two eclipsing X-ray binaries in M51
- Investigating the Disk-Jet Structure in M87 through Flux Separation in the Linear and Circular Polarization Images