Published November 1, 2020 | Version v1
Journal article

Simulations of the Early Postbounce Phase of Core-collapse Supernovae in Three-dimensional Space with Full Boltzmann Neutrino Transport

  • 1. Advanced Research Institute for Science and Engineering, Waseda University, 3-4-1 Okubo, Shinjuku, Tokyo 169-8555 (Japan)
  • 2. Waseda Institute for Advanced Study, Waseda University, 1-6-1 Nishi-Waseda, Shinjuku-ku, Tokyo, 169-8050 (Japan)
  • 3. Department of Astrophysical Sciences, Princeton University, Princeton, NJ 08544 (United States)
  • 4. Institute for Cosmic Ray Research, University of Tokyo, 5-1-5 Kashiwanoha, Kashiwa, Chiba 277-8582 (Japan)
  • 5. Department of Physics, Tokyo University of Science, Shinjuku, Tokyo, 162-8601 (Japan)
  • 6. National Institute of Technology, Numazu College, Ooka 3600, Numazu, Shizuoka 410-8501 (Japan)
  • 7. High Energy Accelerator Research Organization, 1-1 Oho, Tsukuba, Ibaraki 305-0801 (Japan)

Description

We report on the core-collapse supernova simulation we conducted for a 11.2M progenitor model in three-dimensional space up to 20 ms after bounce, using a radiation-hydrodynamics code with full Boltzmann neutrino transport. We solve the six-dimensional Boltzmann equations for three neutrino species and the three-dimensional compressible Euler equations with Furusawa and Togashi's nuclear equation of state. We focus on the prompt convection at ∼10 ms after bounce and investigate how neutrinos are transported in the convective matter. We apply a new analysis based on the eigenvalues and eigenvectors of the Eddington tensor and make a comparison between the Boltzmann transport results and the M1 closure approximation in the transition regime between the optically thick and thin limits. We visualize the eigenvalues and eigenvectors using an ellipsoid, in which each principal axis is parallel to one of the eigenvectors and has a length proportional to the corresponding eigenvalue. This approach enables us to understand the difference between the Eddington tensor derived directly from the Boltzmann simulation and the one given by the M1 prescription from a new perspective. We find that the longest principal axis of the ellipsoid is almost always nearly parallel to the energy flux in the M1 closure approximation, whereas in the Boltzmann simulation it becomes perpendicular in some transition regions, where the mean free path is ∼0.1 times the radius. In three spatial dimensions, the convective motions make it difficult to predict where this happens and to possibly improve the closure relation there.

Availability note (English)

Available from http://dx.doi.org/10.3847/1538-4357/abb8cf

Additional details

Identifiers

Publishing Information

Journal Title
Astrophysical Journal
Journal Volume
903
Journal Issue
2
Journal Page Range
[24 p.]
ISSN
0004-637X
CODEN
ASJOAB