Line Driven Winds from Variable Accretion Discs
arXiv:2301.03632 · doi:10.1093/mnras/stad083
Abstract
We use numerical hydrodynamics simulations to study line driven winds launched from an accreting alpha-disc. Building on previous work where the driving radiation field is static, we compute a time-dependent radiation flux from the local, variable accretion rate of the disc. We find that prior to the establishment of a steady state in the disc, variations of ~ 15% in disc luminosity correlate with variations of ~ 2-3 in the mass flux of the wind. After a steady state is reached, when luminosity variations drop to ~ 3%, these correlations vanish as the variability in the mass flux is dominated by the intrinsic variability of the winds. This is especially evident in lower luminosity runs where intrinsic variability is higher due to a greater prevalence of failed winds. The changing mass flux occurs primarily due to the formation of clumps and voids near the disc atmosphere that propagate out into the low velocity part of the flow, a process that can be influenced by local variations in disc intensity. By computing the normalised standard deviation of the mass outflow, we show that the impact of luminosity variations on mass outflow is more visible at higher luminosity. However, the absolute change in mass outflow due to luminosity increases is larger for lower luminosity models due to the luminosity-mass flux scaling relation becoming steeper. We further discuss implications for CVs and AGN and observational prospects.
12 pages, 7 figures, accepted for publication in MNRAS
References in corpus (5)
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Irradiation of Astrophysical Objects - SED and Flux Effects on Thermally Driven Winds
- SWIFT XRT Observations of the Nova-like Cataclysmic Variables MV Lyr, BZ Cam and V592 Cas
- Observations of V592 Cas - An Outflow at Optical Wavelengths
- Radiation-driven outflows in AGNs: Revisiting feedback effects of scattered and reprocessed photons