English

Nucleosynthesis in Two-Dimensional Delayed Detonation Models of Type Ia Supernova Explosions

Solar and Stellar Astrophysics 2015-05-18 v1 High Energy Astrophysical Phenomena

Abstract

The nucleosynthetic characteristics of various explosion mechanisms of Type Ia supernovae (SNe Ia) is explored based on three two-dimensional explosion simulations representing extreme cases: a pure turbulent deflagration, a delayed detonation following an approximately spherical ignition of the initial deflagration, and a delayed detonation arising from a highly asymmetric deflagration ignition. Apart from this initial condition, the deflagration stage is treated in a parameter-free approach. The detonation is initiated when the turbulent burning enters the distributed burning regime. This occurs at densities around 10710^{7} g cm3^{-3} -- relatively low as compared to existing nucleosynthesis studies for one-dimensional spherically symmetric models. The burning in these multidimensional models is different from that in one-dimensional simulations as the detonation wave propagates both into unburned material in the high density region near the center of a white dwarf and into the low density region near the surface. Thus, the resulting yield is a mixture of different explosive burning products, from carbon-burning products at low densities to complete silicon-burning products at the highest densities, as well as electron-capture products synthesized at the deflagration stage. In contrast to the deflagration model, the delayed detonations produce a characteristic layered structure and the yields largely satisfy constraints from Galactic chemical evolution. In the asymmetric delayed detonation model, the region filled with electron capture species (e.g., 58^{58}Ni, 54^{54}Fe) is within a shell, showing a large off-set, above the bulk of 56^{56}Ni distribution, while species produced by the detonation are distributed more spherically (abridged).

Keywords

Cite

@article{arxiv.1002.2153,
  title  = {Nucleosynthesis in Two-Dimensional Delayed Detonation Models of Type Ia Supernova Explosions},
  author = {K. Maeda and F. K. Roepke and M. Fink and W. Hillebrandt and C. Travaglio and F. -K. Thielemann},
  journal= {arXiv preprint arXiv:1002.2153},
  year   = {2015}
}

Comments

Accepted by the Astrophysical Journal. 15 pages, 14 figures, 4 tables

R2 v1 2026-06-21T14:45:39.468Z