Parametrized 3D models of neutrino-driven supernova explosions: Neutrino emission asymmetries and gravitational-wave signals
E. M\"uller, H.-Th. Janka, A. Wongwathanarat

TL;DR
This paper presents 3D models of neutrino-driven supernova explosions, analyzing their neutrino and gravitational-wave signals, revealing complex time-dependent features, anisotropies, and variability that differ from 2D predictions.
Contribution
The study introduces parametrized 3D supernova models with detailed neutrino and GW emission analysis, capturing asymmetries and dynamics without symmetry constraints, advancing beyond previous 2D models.
Findings
GW signals show strong variability and anisotropy.
Neutrino emission fluctuations reflect non-spherical mass motions.
GW amplitudes are 5-20 cm with 100-500 Hz frequencies.
Abstract
Time-dependent and direction-dependent neutrino and gravitational-wave (GW) signatures are presented for a set of 3D hydrodynamic models of parametrized, neutrino-driven supernova explosions of non-rotating 15 and 20 solar mass stars. We employ an approximate treatment of neutrino transport. Due to the excision of the high-density core of the proto-neutron star and the use of an axis-free overset grid, the models can be followed from the post-bounce accretion phase for more than one second without imposing any symmetry restrictions. GW and neutrino emission exhibit the generic time-dependent features known from 2D models. Non-radial hydrodynamic mass motions in the accretion layer and their interaction with the outer layers of the proto-neutron star together with anisotropic neutrino emission give rise to a GW signal with an amplitude of ~5-20 cm and frequencies 100--500 Hz. The GW…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Pulsars and Gravitational Waves Research · Neutrino Physics Research
