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arXiv · 1805.02844

The 2D disk structure with advective transonic inflow-outflow solutions around black holes

Abstract

We solved analytically viscous two-dimensional (2D) fluid equations for accretion and outflows in spherical polar coordinates ($r, θ, ϕ$) and obtained explicitly flow variables in $r-$ and $θ-$directions around black holes (BHs). We investigated global transonic advection-dominated accretion flow (ADAF) solutions in $r-$direction on an equatorial plane with using Paczyński-Wiita potential. We used radial flow variables of ADAFs with symmetric conditions on the equatorial plane, as initial values for integration in $θ-$direction. In the study of 2D disk structure, we used two-azimuthal components of viscous stress tensors namely, $τ_{\rm rϕ}$ and $τ_{\rmθϕ}$. Interestingly, we found that the whole advective disk is not participating in outflow generation and the outflows form close to the BHs. Normally, outflow strength increased with increasing viscosity parameter ($α_1$), mass-loss parameter ($s$) and decreasing gas pressure ratio ($β$). Outflow region increased with increasing $s$, $α_1$ for $τ_{\rm rϕ}$ and decreasing $α_2$ for $τ_{\rmθϕ}$. The $τ_{\rmθϕ}$ is effective in angular momentum transportation at high latitude and outflows collimation along an axis of symmetry since it changes polar velocity ($v_{\rmθ}$) of the flow. The outflow emission is also affected by the ADAF size and decreased with decreasing it. Transonic surfaces formed for both inflows ($v_{\rm r}<0$, very close to BH) and outflows ($v_{\rm r}>0$). We also explored no outflows, outflows and failed outflows regions, which mainly depend on the viscosity parameters.

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Rajiv Kumar, Wei-Min Gu. 2018-05-08. The 2D disk structure with advective transonic inflow-outflow solutions around black holes. https://doi.org/10.3847/1538-4357%2Faac328

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