Thermal Conduction in Clumpy Disks and BLR clouds
arXiv:2210.10466 · doi:10.1093/mnras/stac2964
Abstract
We investigate the dynamics of clumps that coexisted with/in advection-dominated accretion flows by considering thermal conductivity. Thermal conduction can be one of the effective factors in the energy transportation of ADAFs; hence it may indirectly affect the dynamics of clumps by means of a contact force between them and their host medium. We first study the ensemble of clumps by assuming them as collision-less particles and secondly we find the orbital motion of these clouds as individuals. For both parts, clumps are subject to the gravity of the central object and a drag force. The strong coupling between clumps and ADAF leads to equality between the average treatment of the clumps and the dynamics of their background. By employing the collision-less Boltzmann equation we calculate the velocity dispersion of the clumps which turns out approximately one order of magnitude higher than the ADAF. In fact, involving drag force in such a system causes the angular momentum of the clumps can be transported outwards by the ADAF, and hence the clouds eventually will be captured at the tidal radius. The results show that the presence of thermal conduction increases the root of the averaged radial velocity square and this in turn speeds up the process of capturing the clouds through the tidal force. In the end, we focus on a typical individual cloud, the spiral orbits appear thanks to only the toroidal component of friction force. The parametric study again proves that the operation of thermal conduction helps for decreasing the lifetime of clumps.
Accepted for publication in MNRAS
References in corpus (11)
- The effect of radiation pressure on virial black hole mass estimates and the case of Narrow Line Seyfert 1 galaxies
- Three-dimensional radiative transfer models of clumpy tori in Seyfert galaxies
- Hot Accretion With Conduction: Spontaneous Thermal Outflows
- On the X-ray spectra of luminous, inhomogeneous accretion flows
- Hydrodynamical wind on a magnetized ADAF with thermal conduction
- On the evolution of gas clouds exposed to AGN radiation. I. Three-dimensional radiation hydrodynamic simulations
- Hot accretion with outflow and thermal conduction
- On the wind production from hot accretion flows with different accretion rates
- Dynamics of gas and dust clouds in active galactic nuclei
- On the dynamics of clouds in the broad-line region of AGNs with an ADAF atmosphere
- Kinematics and Structure of Clumps in Broad-line Regions in Active Galactic Nuclei