Parker Winds Revisited: An Extension to Disc Winds
arXiv:1207.7348 · doi:10.1111/j.1365-2966.2012.21823.x
Abstract
A simple 1D dynamical model of thermally driven disc winds is proposed, based on the results of recent, 2.5D axi-symmetric simulations. Our formulation of the disc wind problem is in the spirit of the original Parker (1958) and Bondi (1952) problems, namely we assume an elementary flow configuration consisting of an outflow following pre-defined trajectories in the presence of a central gravitating point mass. Viscosity and heat conduction are neglected. We consider two different streamline geometries, both comprised of straight lines in the (x,z)-plane: (i) streamlines that converge to a geometric point located at (x,z)=(0,-d) and (ii) streamlines that emerge at a constant inclination angle from the disc midplane (the x-axis, as we consider geometrically thin accretion discs). The former geometry is commonly used in kinematic models to compute synthetic spectra, while the latter, which exhibits self-similarity, is likely unused for this purpose, although it easily can be with existing kinematic models. We make the case that it should be, i.e. that geometry (ii) leads to transonic wind solutions with substantially different properties owing to its lack of streamline divergence. Both geometries can be used to complement recent efforts to estimate photoevaporative mass loss rates from protoplanetary discs. Pertinent to understanding our disc wind results, which are also applicable to X-ray binaries and active galactic nuclei, is a focused discussion on lesser known properties of classic Parker wind solutions. We find that the parameter space corresponding to decelerating Parker wind solutions is made larger due to rotation and leads instead to disc wind solutions that always accelerate after the bulk velocity is slowed to a minimum value. Surprisingly, Keplerian rotation may allow for two different transonic wind solutions for the same physical conditions.
30 pages, 13 figures, accepted for publication in MNRAS
References in corpus (7)
- Planetary evaporation by UV & X-ray radiation: basic hydrodynamics
- On the Conditions for Neutron-Rich Gamma-Ray Burst Outflows
- Multi-dimensional modelling of X-ray spectra for AGN accretion-disk outflows
- Thermodynamics of an Accretion Disk Annulus with Comparable Radiation and Gas Pressure
- Surface Structure in an Accretion Disk Annulus with Comparable Radiation and Gas Pressure
- Large-Scale Parker Winds in Active Galactic Nuclei
- The Geometry and Ionization Structure of the Wind in the Eclipsing Nova-like Variables RW Tri and UX UMa
Cited by in corpus (17)
- The Impact of Dust Evolution and Photoevaporation on Disk Dispersal
- Disk Dispersal: Theoretical Understanding and Observational Constraints
- A self-similar solution for thermal disc winds
- Isothermal Bondi accretion in Jaffe and Hernquist galaxies with a central black hole: fully analytical solutions
- Large-scale dynamics of winds originated from black hole accretion flows: (II) Magnetohydrodynamics
- Two-component Jaffe models with a central black hole. I: the spherical case
- On the Virialization of Disk Winds: Implications for the Black Hole Mass Estimates in AGN
- Large-scale dynamics of winds originated from black hole accretion flows: (I) Hydrodynamics
- Monte-Carlo simulations of the detailed iron absorption line profiles from thermal winds in X-ray binaries
- Outflows from inflows: the nature of Bondi-like accretion
- Winds and feedback from supermassive black holes accreting at low rates: Hydrodynamical treatment
- Radiative non-isothermal Bondi accretion onto a massive black hole
- On the polytropic Bondi accretion in two-component galaxy models with a central massive BH
- A Plane-Parallel Wind Solution For Testing Numerical Simulations of Photoevaporation
- Polytropic Wind Solutions via the Complex Plane Strategy
- Self-similar Solution of Hot Accretion Flow with Thermal Conduction and Anisotropic Pressure
- Self-similar solution of hot accretion flow: the role of kinematic viscosity coefficient