Neutrino interactions are essential for an accurate understanding of the binary neutron star merger process. In this article, we extend the code infrastructure of the well-established numerical-relativity code BAM that until recently neglected neutrino-driven interactions. In fact, while previous work allowed already the usage of nuclear-tabulated equations of state and employing a neutrino leakage scheme, we are moving forward by implementing a first-order multipolar radiation transport scheme (M 1 ) for the advection of neutrinos. After testing our implementation on a set of standard scenarios, we apply it to the evolution of four low-mass binary systems, and we perform an analysis of ejecta properties. We also show that our new ejecta analysis infrastructure is able to provide numerical relativity-informed inputs for the codes POSSIS and Skynet, for the computation of kilonova lightcurves and nucleosynthesis yields, respectively.

M1 neutrino transport within the numerical-relativistic code BAM with application to low mass binary neutron star mergers

Bulla, Mattia
Penultimo
;
2024

Abstract

Neutrino interactions are essential for an accurate understanding of the binary neutron star merger process. In this article, we extend the code infrastructure of the well-established numerical-relativity code BAM that until recently neglected neutrino-driven interactions. In fact, while previous work allowed already the usage of nuclear-tabulated equations of state and employing a neutrino leakage scheme, we are moving forward by implementing a first-order multipolar radiation transport scheme (M 1 ) for the advection of neutrinos. After testing our implementation on a set of standard scenarios, we apply it to the evolution of four low-mass binary systems, and we perform an analysis of ejecta properties. We also show that our new ejecta analysis infrastructure is able to provide numerical relativity-informed inputs for the codes POSSIS and Skynet, for the computation of kilonova lightcurves and nucleosynthesis yields, respectively.
2024
Schianchi, Federico; Gieg, Henrique; Nedora, Vsevolod; Neuweiler, Anna; Ujevic, Maximiliano; Bulla, Mattia; Dietrich, Tim
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11392/2607846
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