arXiv Open Access 2014

Advancing Nucleosynthesis in Self-consistent, Multidimensional Models of Core-Collapse Supernovae

J. Austin Harris W. Raphael Hix Merek A. Chertkow Stephen W. Bruenn Eric J. Lentz +5 lainnya
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Abstrak

We investigate core-collapse supernova (CCSN) nucleosynthesis in polar axisymmetric simulations using the multidimensional radiation hydrodynamics code CHIMERA. Computational costs have traditionally constrained the evolution of the nuclear composition in CCSN models to, at best, a 14-species $α$-network. Such a simplified network limits the ability to accurately evolve detailed composition, neutronization and the nuclear energy generation rate. Lagrangian tracer particles are commonly used to extend the nuclear network evolution by incorporating more realistic networks in post-processing nucleosynthesis calculations. Limitations such as poor spatial resolution of the tracer particles, estimation of the expansion timescales, and determination of the "mass-cut" at the end of the simulation impose uncertainties inherent to this approach. We present a detailed analysis of the impact of these uncertainties on post-processing nucleosynthesis calculations and implications for future models.

Topik & Kata Kunci

Penulis (10)

J

J. Austin Harris

W

W. Raphael Hix

M

Merek A. Chertkow

S

Stephen W. Bruenn

E

Eric J. Lentz

O

O. E. Bronson Messer

A

Anthony Mezzacappa

J

John M. Blondin

P

Pedro Marronetti

K

Konstantin N. Yakunin

Format Sitasi

Harris, J.A., Hix, W.R., Chertkow, M.A., Bruenn, S.W., Lentz, E.J., Messer, O.E.B. et al. (2014). Advancing Nucleosynthesis in Self-consistent, Multidimensional Models of Core-Collapse Supernovae. https://arxiv.org/abs/1411.0037

Akses Cepat

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Informasi Jurnal
Tahun Terbit
2014
Bahasa
en
Sumber Database
arXiv
Akses
Open Access ✓