Three-dimensional Boltzmann-Hydro code for core-collapse in massive stars I. special relativistic treatments
Abstract
We propose a novel numerical method for solving multi-dimensional, special relativistic Boltzmann equations for neutrinos coupled to hydrodynamics equations. It is meant to be applied to simulations of core-collapse supernovae. We handle special relativity in a non-conventional way, taking account of all orders of v/c. Consistent treatment of advection and collision terms in the Boltzmann equations is the source of difficulties, which we overcome by employing two different energy grids: Lagrangian remapped and laboratory fixed grids. We conduct a series of basic tests and perform a one-dimensional simulation of core-collapse, bounce and shock-stall for a 15M_{sun} progenitor model with a minimum but essential set of microphysics. We demonstrate in the latter simulation that our new code is capable of handling all phases in core-collapse supernova. For comparison, a non-relativistic simulation is also conducted with the same code, and we show that they produce qualitatively wrong results in neutrino transfer. Finally, we discuss a possible incorporation of general relativistic effects in our method.
Keywords
Cite
@article{arxiv.1407.5632,
title = {Three-dimensional Boltzmann-Hydro code for core-collapse in massive stars I. special relativistic treatments},
author = {Hiroki Nagakura and Kohsuke Sumiyoshi and Shoichi Yamada},
journal= {arXiv preprint arXiv:1407.5632},
year = {2015}
}
Comments
25 pages, 22 figures, submitted to ApJ