English

Core-collapse supernova simulations in one and two dimensions: comparison of codes and approximations

High Energy Astrophysical Phenomena 2018-09-20 v2 Solar and Stellar Astrophysics

Abstract

We present spherically symmetric (1D) and axisymmetric (2D) supernova simulations for a convection-dominated 9 Msun and a 20 Msun progenitor that develops violent activity by the standing-accretion-shock instability (SASI). We compare in detail the Aenus-Alcar code, which uses fully multidimensional two-moment neutrino transport with an M1 closure, with a ray-by-ray-plus (RbR+) version of this code and with the Prometheus-Vertex code that employs RbR+ two-moment transport with a Boltzmann closure. Besides testing consequences of ignored non-radial neutrino-flux components in the RbR+ approximation, we also discuss the influence of various transport ingredients applied or not applied in recent literature, namely simplified neutrino-pair processes, neutrino-electron scattering, velocity-dependent and gravitational-redshift terms, and strangeness and many-body corrections for neutrino-nucleon scattering. Alcar and Vertex show excellent agreement in 1D and 2D despite a slightly but systematically smaller radius (~1km) and stronger convection of the proto-neutron star with Alcar. As found previously, the RbR+ approximation is conducive to explosions, but much less severely in the convection-dominated 9 Msun case than in the marginally exploding 20 Msun model, where the onset time of explosion also exhibits big stochastic variations, and the RbR+ approximation has no distinctly stronger supportive effect than simplified pair processes or strangeness and many-body corrections. Neglecting neutrino-electron scattering has clearly unfavorable effects for explosions, while ignoring velocity and gravitational-redshift effects can both promote or delay the explosion. The ratio of advection timescale to neutrino-heating timescale in 1D simulations is a sensitive indicator of the influence of physics ingredients on explosions also in multidimensional simulations.

Keywords

Cite

@article{arxiv.1805.03953,
  title  = {Core-collapse supernova simulations in one and two dimensions: comparison of codes and approximations},
  author = {Oliver Just and Robert Bollig and Hans-Thomas Janka and Martin Obergaulinger and Robert Glas and Shigehiro Nagataki},
  journal= {arXiv preprint arXiv:1805.03953},
  year   = {2018}
}

Comments

32 pages, 15 figures, accepted to MNRAS, extended the ray-by-ray analysis and final discussion compared to version 1, results remain unchanged