A three-dimensional deflagration model for Type Ia supernovae confronted with observations
F. K. Roepke, W. Hillebrandt, W. Schmidt, J. C. Niemeyer, S. I., Blinnikov, P. A. Mazzali

TL;DR
This paper presents a high-resolution 3D simulation of a Type Ia supernova explosion using turbulent deflagration modeling, achieving good agreement with observations and providing insights into the explosion mechanism.
Contribution
It introduces the most detailed 3D supernova simulation to date, with no free parameters except initial conditions, enhancing predictive power and understanding of SNe Ia explosions.
Findings
Good match with observed light curves of normal SNe Ia
Reproduces key features of abundance stratification
Highlights the need for a transition to detonation at late times
Abstract
A simulation of the thermonuclear explosion of a Chandrasekhar-mass C+O white dwarf, the most popular scenario of a type Ia supernova (SN Ia), is presented. The underlying modeling is pursued in a self-consistent way, treating the combustion wave as a turbulent deflagration using well tested methods developed for laboratory combustion and based on the concept of `large eddy simulations' (LES). Such consistency requires to capture the onset of the turbulent cascade on resolved scales. This is achieved by computing the dynamical evolution on a 1024 moving grid, which resulted in the best-resolved three-dimensional SN Ia simulation carried out thus far, reaching the limits of what can be done on present supercomputers. Consequently, the model has no free parameters other than the initial conditions at the onset of the explosion, and therefore it has considerable predictive power. Our…
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