Abstract
We develop and calibrate a realistic model flame for hydrodynamic simulations of deflagrations in white dwarf (Type Ia) supernovae. Our flame model builds on the advection-diffusion-reaction model of Khokhlov and includes electron screening and Coulomb corrections to the equation of state in a self-consistent way. We calibrate this model flame - its energetics and timescales for energy release and neutralization - with self-heating reaction network calculations that include both these Coulomb effects and up-to-date weak interactions. The burned material evolves postflame due to both weak interactions and hydrodynamic changes in density and temperature. We develop a scheme to follow the evolution, including neutralization, of the NSE state subsequent to the passage of the flame front. As a result, our model flame is suitable for deflagration simulations over a wide range of initial central densities and can track the temperature and electron fraction of the burned material through the explosion and into the expansion of the ejecta. © 2007. The American Astronomical Society. All rights reserved.
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CITATION STYLE
Calder, A. C., Townsley, D. M., Seitenzahl, I. R., Peng, F., Messer, O. E. B., Vladimirova, N., … Lamb, D. Q. (2007). Capturing the Fire: Flame Energetics and Neutronization for Type Ia Supernova Simulations. The Astrophysical Journal, 656(1), 313–332. https://doi.org/10.1086/510709
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