General Relativistic Simulations of High-Mass Binary Neutron Star Mergers: rapid formation of low-mass stellar black holes
arXiv:2301.09635 · doi:10.1093/mnras/stad3752
Abstract
Almost a hundred compact binary mergers have been detected via gravitational waves by the LIGO-Virgo-KAGRA collaboration in the past few years providing us with a significant amount of new information on black holes and neutron stars. In addition to observations, numerical simulations using newly developed modern codes in the field of gravitational wave physics will guide us to understand the nature of single and binary degenerate systems and highly energetic astrophysical processes. We here presented a set of new fully general relativistic hydrodynamic simulations of high-mass binary neutron star systems using the open-source Einstein Toolkit and LORENE codes. We considered systems with total baryonic masses ranging from 2.8 to 4.0 and used the SLy equation of state. We analyzed the gravitational wave signal for all models and reported potential indicators of systems undergoing rapid collapse into a black hole that could be observed by future detectors like the Einstein Telescope and the Cosmic Explorer. The properties of the post-merger black hole, the disk and ejecta masses, and their dependence on the binary parameters were also extracted. We also compared our numerical results with recent analytical fits presented in the literature and provided parameter-dependent semi-analytical relations between the total mass and mass ratio of the systems and the resulting black hole masses and spins, merger frequency, BH formation time, ejected mass, disk mass, and radiated gravitational wave energy.
12 pages, 6 figures, 5 tables, Accepted for publication in MNRAS
References in corpus (24)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Multi-messenger Observations of a Binary Neutron Star Merger
- Tidal Love numbers of neutron stars
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Relativistic theory of tidal Love numbers
- GW170817: Joint Constraint on the Neutron Star Equation of State from Multimessenger Observations
- Merger of binary neutron stars to a black hole: Disk mass, short gamma-ray bursts, and quasinormal mode ringing
- Binary Neutron Star Mergers: Dependence on the Nuclear Equation of State
- AT2017gfo: an anisotropic and three-component kilonova counterpart of GW170817
- Gravitational waves and mass ejecta from binary neutron star mergers: Effect of the mass-ratio
- Longterm general relativistic simulation of binary neutron stars collapsing to a black hole
- A General-relativistic Determination of the Threshold Mass to Prompt Collapse in Binary Neutron Star Mergers
- Revisiting the lower bound on tidal deformability derived by AT 2017gfo
- Gravitational waves and mass ejecta from binary neutron star mergers: Effect of the stars' rotation
- Exploring binary-neutron-star-merger scenario of short-gamma-ray bursts by gravitational-wave observation
- Numerical relativity simulations of prompt collapse mergers: threshold mass and phenomenological constraints on neutron star properties after GW170817
- Quasi-universal behaviour of the threshold mass in unequal-mass, spinning binary neutron-star mergers
- kuibit: Analyzing Einstein Toolkit simulations with Python
- Effects of spin on magnetized binary neutron star mergers and jet launching
- Mapping dynamical ejecta and disk masses from numerical relativity simulations of neutron star mergers
- Probing the incompressibility of nuclear matter at ultra-high density through the prompt collapse of asymmetric neutron star binaries
- Jet Launching from Binary Neutron Star Mergers: Incorporating Neutrino Transport and Magnetic Fields
- Numerical relativity simulations of the neutron star merger GW190425: microphysics and mass ratio effects
- Impact of extreme spins and mass ratios on the post-merger observables of high-mass binary neutron stars
Cited by in corpus (3)
- Neutron stars and the dense matter equation of state: from microscopic theory to macroscopic observations
- Prospects for Direct Detection of Black Hole Formation in Neutron Star Mergers with Next-Generation Gravitational-Wave Detectors
- Insights into Binary Neutron Star Merger Simulations: A Multi-Code Comparison