Prospects For High Frequency Burst Searches Following Binary Neutron Star Coalescence With Advanced Gravitational Wave Detectors
arXiv:1406.5444 · doi:10.1103/PhysRevD.90.062004
Abstract
The equation of state plays a critical role in the physics of the merger of two neutron stars. Recent numerical simulations with microphysical equation of state suggest the outcome of such events depends on the mass of the neutron stars. For less massive systems, simulations favor the formation of a hypermassive, quasi-stable neutron star, whose oscillations produce a short, high frequency burst of gravitational radiation. Its dominant frequency content is tightly correlated with the radius of the neutron star, and its measurement can be used to constrain the supranuclear equation of state. In contrast, the merger of higher mass systems results in prompt gravitational collapse to a black hole. We have developed an algorithm which combines waveform reconstruction from a morphology-independent search for gravitational wave transients with Bayesian model selection, to discriminate between post-merger scenarios and accurately measure the dominant oscillation frequency. We demonstrate the efficacy of the method using a catalogue of simulated binary merger signals in data from LIGO and Virgo, and we discuss the prospects for this analysis in advanced ground-based gravitational wave detectors. From the waveforms considered in this work and assuming an optimally oriented source, we find that the post-merger neutron star signal may be detectable by this technique to \,Mpc. We also find that we successfully discriminate between the post-merger scenarios with accuracy and determine the dominant oscillation frequency of surviving post-merger neutron stars to within \,Hz, averaged over all detected signals. This leads to an uncertainty in the estimated radius of a non-rotating 1.6\,M reference neutron star of m.
21 pages, 13 figures, submitted to PRD
References in corpus (25)
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- Neutron Star Observations: Prognosis for Equation of State Constraints
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Accurate evolutions of inspiralling neutron-star binaries: prompt and delayed collapse to black hole
- 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
- Coherent method for detection of gravitational wave bursts
- Toward faithful templates for non-spinning binary black holes using the effective-one-body approach
- 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
- Accurate evolutions of inspiralling and magnetized neutron-stars: equal-mass binaries
- General relativistic simulations of magnetized binary neutron star mergers
- Tidal effects in binary neutron star coalescence
- Revealing the high-density equation of state through binary neutron star mergers
- Longterm general relativistic simulation of binary neutron stars collapsing to a black hole
- Simulating binary neutron stars: dynamics and gravitational waves
- Analytic modelling of tidal effects in the relativistic inspiral of binary neutron stars
- Gravitational waves from relativistic neutron star mergers with nonzero-temperature equations of state
- Search for Gravitational Waves from Binary Black Hole Inspiral, Merger and Ringdown in LIGO-Virgo Data from 2009-2010
- Gravitational wave asteroseismology with fast rotating neutron stars
- Importance of cooling in triggering the collapse of hypermassive neutron stars
- On the frequency band of the f-mode CFS instability
- Separating Gravitational Wave Signals from Instrument Artifacts
- Gravitational Wave Astronomy: Needle in a Haystack
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- Search for post-merger gravitational waves from the remnant of the binary neutron star merger GW170817
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Neutron-star Radius from a Population of Binary Neutron Star Mergers
- Inferring the post-merger gravitational wave emission from binary neutron star coalescences
- Projected Constraints on Scalarization with Gravitational Waves from Neutron Star Binaries
- High-Energy Neutrinos from Millisecond Magnetars formed from the Merger of Binary Neutron Stars
- Universal and approximate relations for the gravitational-wave damping timescale of -modes in neutron stars
- Gravitational-wave imprints of non-convex dynamics in binary neutron star mergers
- Probing neutron stars with the full pre-merger and post-merger gravitational wave signal from binary coalescences