English

Constraining the Gravitational-Wave Afterglow From a Binary Neutron Star Coalescence

Instrumentation and Methods for Astrophysics 2020-02-13 v2 High Energy Astrophysical Phenomena

Abstract

Binary neutron star mergers are rich laboratories for physics, accessible with ground-based interferometric gravitational-wave detectors such as the Advanced LIGO and Advanced Virgo. If a neutron star remnant survives the merger, it can emit gravitational waves that might be detectable with the current or next generation detectors. The physics of the long-lived post-merger phase is not well understood and makes modelling difficult. In particular the phase of the gravitational-wave signal is not well modelled. In this paper, we explore methods for using long duration post-merger gravitational-wave signals to constrain the parameters and the properties of the remnant. We develop a phase-agnostic likelihood model that uses only the spectral content for parameter estimation and demonstrate the calculation of a Bayesian upper limit in the absence of a signal. With the millisecond magnetar model, we show that for an event like GW170817, the ellipticity of a long-lived remnant can be constrained to less than about 0.5 in the parameter space used.

Keywords

Cite

@article{arxiv.1909.01934,
  title  = {Constraining the Gravitational-Wave Afterglow From a Binary Neutron Star Coalescence},
  author = {Sharan Banagiri and Michael W. Coughlin and James Clark and Paul D. Lasky and M. A. Bizouard and Colm Talbot and Eric Thrane and Vuk Mandic},
  journal= {arXiv preprint arXiv:1909.01934},
  year   = {2020}
}

Comments

6 pages, 4 figured