Gravitational-wave imprints of non-convex dynamics in binary neutron star mergers
arXiv:2401.06849 · doi:10.1103/PhysRevD.109.064032
Abstract
Explaining gravitational-wave (GW) observations of binary neutron star (BNS) mergers requires an understanding of matter beyond nuclear saturation density. Our current knowledge of the properties of high-density matter relies on electromagnetic and GW observations, nuclear physics experiments, and general relativistic numerical simulations. In this paper we perform numerical-relativity simulations of BNS mergers subject to non-convex dynamics, allowing for the appearance of expansive shock waves and compressive rarefactions. Using a phenomenological non-convex equation of state we identify observable imprints on the GW spectra of the remnant. In particular, we find that non-convexity induces a significant shift in the quasi-universal relation between the peak frequency of the dominant mode and the tidal deformability (of order ) with respect to that of binaries with convex (regular) dynamics. Similar shifts have been reported in the literature, attributed however to first-order phase transitions from nuclear/hadronic matter to deconfined quark matter. We argue that the ultimate origin of the frequency shifts is to be found in the presence of anomalous, non-convex dynamics in the binary remnant.
13 pages, 8 figures. Minor changes. Journal version
References in corpus (26)
- Array Programming with NumPy
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- A Massive Pulsar in a Compact Relativistic Binary
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- The equation of state in (2+1)-flavor QCD
- Constraints on a phenomenologically parameterized neutron-star equation of state
- Science with the Einstein Telescope: a comparison of different designs
- Sound velocity bound and neutron stars
- Freeze-out Conditions in Heavy Ion Collisions from QCD Thermodynamics
- Spectral properties of the post-merger gravitational-wave signal from binary neutron stars
- Relativistic neutron star merger simulations with non-zero temperature equations of state I. Variation of binary parameters and equation of state
- Testing Approximations of Thermal Effects in Neutron Star Merger Simulations
- Analytical representations of unified equations of state of neutron-star matter
- Neutron-star Radius from a Population of Binary Neutron Star Mergers
- Prospects For High Frequency Burst Searches Following Binary Neutron Star Coalescence With Advanced Gravitational Wave Detectors
- Phase transitions in dense matter and the maximum mass of neutron stars
- Phase transitions in neutron stars and their links to gravitational waves
- Equations of state for hot neutron stars -- II. The role of exotic particle degrees of freedom
- On the convexity of Relativistic Hydrodynamics
- Addition of tabulated equation of state and neutrino leakage support to IllinoisGRMHD
- Quantifying uncertainties in general relativistic magnetohydrodynamic codes
- Reverse phase transitions in binary neutron-star systems with exotic-matter cores
- On the convexity of Relativistic Ideal Magnetohydrodynamics
Cited by in corpus (8)
- The Science of the Einstein Telescope
- Revealing Phase Transition in Dense Matter with Gravitational Wave Spectroscopy of Binary Neutron Star Mergers
- Identifying thermal effects in neutron star merger remnants with model-agnostic waveform reconstructions and third-generation detectors
- Dependence of postmerger properties on the thermal heating efficiency in neutron star mergers
- Insights into Binary Neutron Star Merger Simulations: A Multi-Code Comparison
- Robust and fast parameter estimation for gravitational waves from binary neutron star merger remnants
- Self-consistent treatment of thermal effects in neutron-star post-mergers: observational implications for third-generation gravitational-wave detectors
- The thermal index of neutron-star matter in the virial approximation