New Equations of State in Simulations of Core-Collapse Supernovae
Matthias Hempel, Tobias Fischer, J\"urgen Schaffner-Bielich, and, Matthias Liebend\"orfer

TL;DR
This paper introduces three new equations of state for core-collapse supernova simulations, highlighting the importance of nuclear matter modeling and nuclear physics details in supernova dynamics and black hole formation.
Contribution
The study presents novel EOS based on the HS model with relativistic mean-field interactions, including nuclear distributions and light nuclei, and compares their effects on supernova outcomes.
Findings
New EOS models affect supernova dynamics and neutrino signals.
Temperature influences collapse speed, with non-relativistic EOS collapsing faster.
A new correlation links black hole formation time to proto-neutron star maximum mass.
Abstract
We discuss three new equations of state (EOS) in core-collapse supernova simulations. The new EOS are based on the nuclear statistical equilibrium model of Hempel and Schaffner-Bielich (HS), which includes excluded volume effects and relativistic mean-field (RMF) interactions. We consider the RMF parameterizations TM1, TMA, and FSUgold. These EOS are implemented into our spherically symmetric core-collapse supernova model, which is based on general relativistic radiation hydrodynamics and three-flavor Boltzmann neutrino transport. The results obtained for the new EOS are compared with the widely used EOS of H. Shen et al. and Lattimer & Swesty. The systematic comparison shows that the model description of inhomogeneous nuclear matter is as important as the parameterization of the nuclear interactions for the supernova dynamics and the neutrino signal. Furthermore, several new aspects of…
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