Turbulent Mixing on Helium-Accreting White Dwarfs
arXiv:1501.06915 · doi:10.1088/0004-637X/801/2/137
Abstract
An attractive scenario for producing Type Ia supernovae (SNe Ia) is a double detonation, where detonation of an accreted helium layer triggers ignition of a C/O core. Whether or not such a mechanism can explain some or most SNe Ia depends on the properties of the helium burning, which in turn is set by the composition of the surface material. Using a combination of semi-analytic and simple numerical models, I explore when turbulent mixing due to hydrodynamic instabilities during the accretion process can mix C/O core material up into the accreted helium. Mixing is strongest at high accretion rates, large white dwarf (WD) masses, and slow spin rates. The mixing would result in subsequent helium burning that better matches the observed properties of SNe Ia. In some cases, there is considerable mixing that can lead to more than 50% C/O in the accreted layer at the time of ignition. These results will hopefully motivate future theoretical studies of such strongly mixed conditions. Mixing also has implications for other types of WD surface explosions, including the so-called .Ia supernovae, the calcium-rich transients (if they arise from accreting WDs), and metal-enriched classical novae.
9 pages, 6 figures, accepted for publication in The Astrophysical Journal
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Cited by in corpus (6)
- Type Ia Supernova Explosions in Binary Systems: A Review
- Exploring the diversity of double detonation explosions for type Ia supernovae: Effects of the post-explosion helium shell composition
- Electron Captures on as a Trigger for Helium Shell Detonations
- SN 2016dsg: A Thermonuclear Explosion Involving A Thick Helium Shell
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- Exploration of Aspherical Ejecta Properties in Type Ia Supernova: Progenitor Dependence and Applications to Progenitor Classification