Relativistic, Viscous, Radiation Hydrodynamic Simulations of Geometrically Thin Disks. II. Disk Variability
arXiv:1909.06490 · doi:10.1093/mnras/staa1848
Abstract
We perform detailed variability analysis of two-dimensional viscous, radiation hydrodynamic numerical simulations of Shakura-Sunyaev thin disks around a stellar mass black hole. Disk models are initialized on both the gas-, as well as radiation-, pressure-dominated branches of the thermal equilibrium curve, with mass accretion rates spanning the range from to . An analysis of temporal variations of the numerically simulated disk reveals multiple robust, coherent oscillations. Considering the local mass flux variability, we find an oscillation occurring at the maximum radial epicyclic frequency, , a possible signature of a trapped fundamental -mode. Although present in each of our simulated models, the trapped -mode feature is most prominent in the gas-pressure-dominated case. The total pressure fluctuations in the disk suggest strong evidence for standing-wave -modes, some trapped in the inner disk close to the ISCO, others present in the middle/outer parts of the disk. Knowing that the trapped -mode frequency and maximum radial epicyclic frequency differ by only in the case of a non-rotating black hole, we simulated an additional initially gas-pressure-dominated disk with a dimensionless black hole spin parameter . The oscillation frequency in the spinning black hole case confirms that this oscillation is indeed a trapped -mode. All the numerical models we report here also show a set of high frequency oscillations at the vertical epicyclic and breathing mode frequencies. The vertical oscillations show a 3:2 frequency ratio with oscillations occurring approximately at the radial epicyclic frequency, which could be of astrophysical importance in observed twin peak, high-frequency quasi-periodic oscillations.
submitted MNRAS, comments are welcome
References in corpus (9)
- X-ray Properties of Black-Hole Binaries
- Semi-implicit scheme for treating radiation under M1 closure in general relativistic conservative fluid dynamics codes
- Strongly magnetized accretion disks: structure and accretion from global magnetohydrodynamic simulations
- Numerical Simulations of Optically Thick Accretion onto a Black Hole - II. Rotating Flow
- Puffy accretion disks: sub-Eddington, optically thick, and stable
- Relativistic Viscous Radiation Hydrodynamic Simulations of Geometrically Thin Disks: I. Thermal and Other Instabilities
- Breathing Oscillations in a Global Simulation of a Thin Accretion Disk
- Atmospheric oscillations provide simultaneous measurement of neutron star mass and radius
- Frequency spectrum of axisymmetric horizontal oscillations in accretion disks
Cited by in corpus (10)
- Radiation Transport Two-Temperature GRMHD Simulations of Warped Accretion Disks
- Disk Tearing Leads to Low and High Frequency Quasi Periodic Oscillations in a GRMHD Simulation of a Thin Accretion Disk
- Lense-Thirring Precession after a Supermassive Black Hole Disrupts a Star
- Looking for the underlying cause of black hole X-ray variability in GRMHD simulations
- HFQPOs and discoseismic mode excitation in eccentric, relativistic discs. I. Hydrodynamic simulations
- Inertial oscillation modes of an inclined dipolar magnetosphere as a source of band-limited noise in X-ray pulsars
- Dynamics of charged particles and quasi-periodic oscillations in the vicinity of a distorted, deformed compact object embedded in a uniform magnetic field
- Magnetic precession as a model for QPOs in PULXs: flat-top noise ULXs are different
- Oscillation properties of relativistic tori in the vicinity of a distorted deformed compact object
- On a discontinuity at the base of the transition layer located between the Keplerian accretion disk and the compact object