Nonlinear mode-tide coupling in coalescing binary neutron stars with relativistic corrections
Fatemeh Hossein Nouri, Sukanta Bose, Matthew D. Duez, Abhishek Das

TL;DR
This paper investigates the relativistic effects on mode-tide coupling in coalescing binary neutron stars, revealing that relativistic corrections can significantly influence the coupling strength and potentially impact gravitational wave signals.
Contribution
It introduces a new relativistic eigenmode calculation for neutron stars and assesses how relativistic effects alter mode-tide coupling compared to Newtonian models.
Findings
Relativistic corrections can change mode-tide coupling strength by up to tens of percent.
Coupling strength depends on orbital separation and equation of state.
Crust region modeling is crucial for accurate coupling estimates.
Abstract
We compute the internal modes of a nonspinning neutron star and its tidal metric perturbation in general relativity, and determine the effect of relativistic corrections to the modes on mode coupling. Claims have been made that a new hydrodynamic instability can occur in a neutron star in a binary neutron star system triggered by the nonlinear coupling of the companion's tidal field to pairs of p-modes and g-modes in it as the binary inspirals toward merger. This "PG" instability may be significant since it can influence the binary's inspiral phase by extracting orbital energy, thereby potentially causing large deviations in their gravitational waveforms from those predicted by theoretical models that do not account for it. This can result in incorrect parameter estimation, at best, or mergers going undetected, at worst, owing to the use of deficient waveform models. On the other hand,…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Gravity Measurements · Geophysics and Sensor Technology
