A physical model for the continuum variability and QPO in accreting black holes
Adam Ingram, Chris Done

TL;DR
This paper presents a physical model linking propagating accretion rate fluctuations and Lense-Thirring precession to explain the variability and QPOs in black hole binaries, fitting observed power spectra during state transitions.
Contribution
It introduces a self-consistent physical model that explains both spectral and timing properties of black hole binaries, fitting multiple observed power spectra with a unified framework.
Findings
Model reproduces broad band power spectral features.
Inner radius remains constant while outer radius decreases during state transition.
Predicts correlation between QPO frequency and flux, matching observations.
Abstract
The power spectra of black hole binaries have been well studied for decades, giving a detailed phenomenological picture of the variability properties and their correlation with the energy spectrum (spectral state) of the source. Here we take the truncated disc/hot inner flow picture which can describe the spectral changes, and show that propagating mass accretion rate fluctuations in the hot flow can match the broad band power spectral properties seen in black hole binaries, i.e. give approximately band limited noise between a low and high frequency break. The low frequency break marks the viscous timescale at the outer edge of the hot inner flow, which is the inner edge of the truncated disc. The model also predicts the Lense-Thirring precession timescale of the hot flow, as this is set by the surface density of the flow which is self consistently calculated from the propagating…
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