Three-dimensional delayed-detonation models with nucleosynthesis for Type Ia supernovae
Ivo R. Seitenzahl, Franco Ciaraldi-Schoolmann, Friedrich K. Roepke,, Michael Fink, Wolfgang Hillebrandt, Markus Kromer, Ruediger Pakmor, Ashley J., Ruiter, Stuart A. Sim, Stefan Taubenberger

TL;DR
This study presents a comprehensive set of three-dimensional delayed-detonation models for Type Ia supernovae, including detailed nucleosynthesis yields, to better understand explosion mechanisms and observable features.
Contribution
First 3D SN Ia simulations with detailed isotopic yields, employing a stochastic DDT model to explore various explosion strengths and nucleosynthetic outcomes.
Findings
Range of 56Ni masses from 0.32 to 1.11 solar masses.
Stable neutron-rich isotopes at intermediate velocities.
Low velocity oxygen and carbon predicted in ejecta.
Abstract
We present results for a suite of fourteen three-dimensional, high resolution hydrodynamical simulations of delayed-detonation modelsof Type Ia supernova (SN Ia) explosions. This model suite comprises the first set of three-dimensional SN Ia simulations with detailed isotopic yield information. As such, it may serve as a database for Chandrasekhar-mass delayed-detonation model nucleosynthetic yields and for deriving synthetic observables such as spectra and light curves. We employ a physically motivated, stochastic model based on turbulent velocity fluctuations and fuel density to calculate in situ the deflagration to detonation transition (DDT) probabilities. To obtain different strengths of the deflagration phase and thereby different degrees of pre-expansion, we have chosen a sequence of initial models with 1, 3, 5, 10, 20, 40, 100, 150, 200, 300, and 1600 (two different…
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