Constraints on the Viscosity and Magnetic Field in Hot Accretion Flows around Black Holes
B.F.Liu, Ronald E. Taam

TL;DR
This paper constrains the viscosity and magnetic field parameters in hot accretion flows around black holes in LLAGNs by comparing theoretical models with observational data, supporting the disk truncation via evaporation at low accretion rates.
Contribution
It provides observationally constrained estimates of viscosity and magnetic field parameters in hot accretion flows, validating the evaporation model for disk truncation in LLAGNs.
Findings
Viscosity parameter ranges from 0.17 to 0.5, clustered around 0.2-0.3.
Magnetic pressure can reach equipartition with gas pressure in some LLAGNs.
Results are consistent with accretion behavior in stellar mass black hole X-ray transients.
Abstract
The magnitude of the viscosity and magnetic field parameters in hot accretion flows is investigated in low luminosity active galactic nuclei (LLAGNs). Theoretical studies show that a geometrically thin, optically thick disk is truncated at mass accretion rates less than a critical value by mass evaporated vertically from the disk to the corona, with the truncated region replaced by an advection dominated accretion flow (ADAF). The critical accretion rate for such a truncation is a function of the viscosity and magnetic field. Observations of X-ray photon indices and spectral fits of a number of LLAGNs published in the literature provide an estimate of the critical rate of mass accretion and the truncation radius respectively. By comparing the observational results with theoretical predictions, the viscosity and magnetic field parameters in the hot accretion flow region are estimated.…
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