Impact of nonlinearities on relativistic dynamical tides in compact binary inspirals
Tristan Pitre, Eric Poisson

TL;DR
This paper extends the understanding of relativistic dynamical tides in neutron stars during binary inspirals by incorporating nonlinear effects and a general relativistic framework, revealing significant impacts on tidal response frequencies.
Contribution
It introduces a relativistic, mode-independent approach to modeling nonlinear tidal deformations, expanding beyond previous Newtonian, mode-based analyses.
Findings
Nonlinear tidal constant p2 reduces the characteristic response frequency by up to 15%.
Relativistic treatment confirms importance of nonlinear effects in dynamical tides.
Response function modeled as a harmonic oscillator with a natural frequency parameter.
Abstract
The tidal deformation of a neutron star in a binary inspiral driven by the emission of gravitational waves affects the orbital dynamics and produces a measurable modulation of the waves. Late in the inspiral, a regime of dynamical tides takes over from a prior regime of static tides. A recent analysis by Yu et al. [M.N.R.A.S. 519, 4325 (2022)] reveals that nonlinear aspects of the tidal interaction are important during the regime of dynamical tides. Their theoretical framework is grounded in Newtonian gravity and fluid mechanics, and relies on a representation of the tidal deformation in terms of the star's normal modes of vibration. We confirm their observation in a general relativistic treatment of the tidal deformation of a neutron star, without relying on a mode representation of this deformation. The starting point of our description is a simultaneous time-derivative and nonlinear…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Astrophysical Phenomena and Observations · Cosmology and Gravitation Theories
