Investigating the Theory of Propagating Fluctuations with Numerical Models of Stochastic Accretion Discs
arXiv:2103.09281 · doi:10.1093/mnras/stab875
Abstract
Across a large range of scales, accreting sources show remarkably similar patterns of variability, most notably the log-normality of the luminosity distribution and the linear root-mean square (rms)-flux relationship. These results are often explained using the theory of propagating fluctuations in which fluctuations in the viscosity create perturbations in the accretion rate at all radii, propagate inwards and combine multiplicatively. While this idea has been extensively studied analytically in a linear regime, there has been relatively little numerical work investigating the non-linear behaviour. In this paper, we present a suite of stochastically driven 1-d -disc simulations, exploring the behaviour of these discs. We find that the eponymous propagating fluctuations are present in all simulations across a wide range of model parameters, in contradiction to previous work. Of the model parameters, we find by far the most important to be the timescale on which the viscosity fluctuations occur. Physically, this timescale will depend on the underlying physical mechanism, thought to be the magnetorotational instability (MRI). We find a close relationship between this fluctuation timescale and the break frequency in the power spectral density (PSD) of the luminosity, a fact which could allow observational probes of the behaviour of the MRI dynamo. We report a fitting formula for the break frequency as a function of the fluctuation timescale, the disc thickness and the mass of the central object.
18 pages, 14 figures, accepted for publication in MNRAS
References in corpus (14)
- X-ray reverberation around accreting black holes
- Is Quasar Optical Variability a Damped Random Walk?
- Are the Variability Properties of the Kepler AGN Light Curves Consistent with a Damped Random Walk?
- Optical variability of AGN in the PTF/iPTF survey
- Spectral-timing evidence for a Very High State in the Narrow Line Seyfert 1 Ark 564
- The Energy-dependent X-ray Timing Characteristics of the Narrow Line Seyfert 1 Mkn 766
- Propagating mass accretion rate fluctuations in X-ray binaries under the influence of viscous diffusion
- The general relativistic thin disc evolution equation
- Broadband aperiodic variability in X-ray pulsars: accretion rate fluctuations propagating under the influence of viscous diffusion
- Non-Linear Dynamics of Accretion Disks with Stochastic Viscosity
- Evolution of finite viscous disks with time-independent viscosity
- Looking for the underlying cause of black hole X-ray variability in GRMHD simulations
- X-ray time lags in PG 1211+143
- Modeling the response of a standard accretion disc to stochastic viscous fluctuations
Cited by in corpus (9)
- MAXI J1820+070 X-ray spectral-timing reveals the nature of the accretion flow in black hole binaries
- The accretion flow geometry of MAXI J1820+070 through broadband noise research with Insight-HXMT
- Hilbert-Huang Transform analysis of quasi-periodic oscillations in MAXI J1820+070
- A hidden quasi-periodic oscillation in Cygnus X-1 revealed by NICER
- The high energy probability distribution of accretion disc luminosity fluctuations
- Extending the theory of propagating fluctuations: the first fully relativistic treatment and analytical Fourier-Green's functions
- A new 2D stochastic methodology for simulating variable accretion discs: propagating fluctuations and epicyclic motion
- The turbulent variability of accretion discs observed at high energies
- Influence of inhomogeneous stochasticity on the falsifiability of mean-field theories and examples from accretion disc modeling