Thermal Disk Winds in X-ray Binaries: Realistic Heating and Cooling Rates Give Rise to Slow, but Massive Outflows
arXiv:1612.08996 · doi:10.3847/1538-4357/836/1/42
Abstract
A number of X-ray binaries exhibit clear evidence for the presence of disk winds in the high/soft state. A promising driving mechanism for these outflows is mass loss driven by the thermal expansion of X-ray heated material in the outer disk atmosphere. Higginbottom \& Proga recently demonstrated that the properties of thermally-driven winds depend critically on the shape of the thermal equilibrium curve, since this determines the thermal stability of the irradiated material. For a given spectral energy distribution, the thermal equilibrium curve depends on exact balance between the various heating and cooling mechanisms at work. Most previous work on thermally-driven disk winds relied an analytical approximation to these rates. Here, we use the photoionization code \textsc{cloudy} to generate realistic heating and cooling rates which we then use in a 2.5D hydrodynamic model computed in ZEUS to simulate thermal winds in a typical black-hole X-ray binary. We find that these heating and cooling rates produce a significantly more complex thermal equilibrium curve, with dramatically different stability properties. The resulting flow, calculated in the optically thin limit, is qualitatively different from flows calculated using approximate analytical rates. Specifically, our thermal disk wind is much denser and slower, with a mass-loss rate that is a factor of two higher and characteristic velocities that are a factor of three lower. The low velocity of the flow -- ~km~s -- may be difficult to reconcile with observations. However, the high mass-loss rate -- 15 the accretion rate -- is promising, since it has the potential to destabilize the disk. Thermally-driven disk winds may therefore provide a mechanism for state changes.
10 Page, 8 figures, Accepted for publication in ApJ
References in corpus (4)
Cited by in corpus (23)
- Ionized outflows from active galactic nuclei as the essential elements of feedback
- Multiphase AGN winds from X-ray irradiated disk atmospheres
- The luminosity dependence of thermally-driven disc winds in low-mass X-ray binaries
- Photoevaporation of protoplanetary discs with PLUTO+PRIZMO I. Lower X-ray-driven mass-loss rates due to enhanced cooling
- A Comprehensive Chandra Study of the Disk Wind in the Black Hole Candidate 4U 1630-472
- Discovery of optical outflows and inflows in the black hole candidate GRS 1716-249
- The variable radio counterpart of Swift J1858.6-0814
- Outflows and spectral evolution in the eclipsing AMXP SWIFT J1749.4-2807 with NICER, XMM-Newton and NuSTAR
- Thermally driven winds in ULXs
- XRISM Spectroscopy of Accretion-Driven Wind Feedback in NGC 4151
- The connection between the UV/optical and X-ray emission in the neutron star low-mass X-ray binary Aql X-1
- SIROCCO: A Publicly Available Monte Carlo Ionization and Radiative Transfer Code for Astrophysical Outflows
- Magnetohydrodynamic Winds Driven by the Line Force from the Standard Thin Disk around Supermassive Black Holes. I. The Case of Weak Magnetic Field
- An optical spectroscopic and polarimetric study of the microquasar binary system SS 433
- Thermal wind from hot accretion flows at large radii
- Impact of the disk magnetization on MHD disk wind signature
- Stratified wind from a super-Eddington X-ray binary is slower than expected
- On the wind-driven relaxation cycle in accretion disks
- Accretion disc winds in X-ray binaries
- Change in the orbital period of a binary system due to an outburst in a windy accretion disc
- The effect of thermal winds on the outbursts evolution of LMXB systems
- Expected disk wind properties evolution along an X-ray Binary outburst
- Tracking the evolution of the accretion flow in MAXI J1820+070 during its hard state with the JED-SAD model