Beyond the linear tide: impact of the non-linear tidal response of neutron stars on gravitational waveforms from binary inspirals
arXiv:2211.07002 · doi:10.1093/mnras/stac3614
Abstract
Tidal interactions in coalescing binary neutron stars modify the dynamics of the inspiral and hence imprint a signature on their gravitational wave (GW) signals in the form of an extra phase shift. We need accurate models for the tidal phase shift in order to constrain the supranuclear equation of state from observations. In previous studies, GW waveform models were typically constructed by treating the tide as a linear response to a perturbing tidal field. In this work, we incorporate non-linear corrections due to hydrodynamic three- and four-mode interactions and show how they can improve the accuracy and explanatory power of waveform models. We set up and numerically solve the coupled differential equations for the orbit and the modes and analytically derive solutions of the system's equilibrium configuration. Our analytical solutions agree well with the numerical ones up to the merger and involve only algebraic relations, allowing for fast phase shift and waveform evaluations for different equations of state over a large parameter space. We find that, at Newtonian order, non-linear fluid effects can enhance the tidal phase shift by at a GW frequency of 1000 Hz, corresponding to a correction to the linear theory. The scale of the additional phase shift near the merger is consistent with the difference between numerical relativity and theoretical predictions that account only for the linear tide. Non-linear fluid effects are thus important when interpreting the results of numerical relativity and in the construction of waveform models for current and future GW detectors.
20 pages, 9 figures. Accepted for publication in MNRAS
References in corpus (36)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Relativistic theory of tidal Love numbers
- Scientific Objectives of Einstein Telescope
- Dynamical Tides in General Relativity: Effective Action and Effective-One-Body Hamiltonian
- Modeling the dynamics of tidally-interacting binary neutron stars up to merger
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Angular momentum transport by heat-driven g-modes in slowly pulsating B stars
- Gravitational self-force corrections to two-body tidal interactions and the effective one-body formalism
- Resonant tidal excitation of superfluid neutron stars in coalescing binaries
- An aligned-spin neutron-star--black-hole waveform model based on the effective-one-body approach and numerical-relativity simulations
- Resonant Tidal Excitation of Oscillation Modes in Merging Binary Neutron Stars: Inertial-Gravity Modes
- Gravitational waves from f-modes excited by the inspiral of highly eccentric neutron star binaries
- Spin effects on neutron star fundamental-mode dynamical tides: phenomenology and comparison to numerical simulations
- Using gravitational-wave data to constrain dynamical tides in neutron star binaries
- Exploring tidal effects of coalescing binary neutron stars in numerical relativity II: Longterm simulations
- Impact of Dynamical Tides on the Reconstruction of the Neutron Star Equation of State
- Gravitational waveforms from SpEC simulations : neutron star-neutron star and low-mass black hole-neutron star binaries
- Beta equilibrium under neutron star merger conditions
- Gravitomagnetic tidal resonance in neutron-star binary inspirals
- Dynamical tides in coalescing superfluid neutron star binaries with hyperon cores and their detectability with third generation gravitational-wave detectors
- Tidal Deformabilities of Neutron Stars in scalar-Gauss-Bonnet Gravity and Their Applications to Multimessenger Tests of Gravity
- General-relativistic treatment of tidal -mode resonances in coalescing binaries of neutron stars. I. Theoretical framework and crust breaking
- Dynamical tides in neutron stars: The impact of the crust
- Excitation of f-modes during mergers of spinning binary neutron star
- Impact of the tidal p-g instability on the gravitational wave signal from coalescing binary neutron stars
- Relativistic effective action of dynamical gravitomagnetic tides for slowly rotating neutron stars
- Nonlinear dynamical tides in white dwarf binaries
- Probing Crust Meltdown in Inspiraling Binary Neutron Stars
- General-relativistic treatment of tidal -mode resonances in coalescing binaries of neutron stars. II. As triggers for precursor flares of short gamma-ray bursts
- Detecting resonant tidal excitations of Rossby modes in coalescing neutron-star binaries with third-generation gravitational-wave detectors
- Dynamical tides in superfluid neutron stars
- Tidal evolution and diffusive growth during high-eccentricity planet migration: revisiting the eccentricity distribution of hot Jupiters
- Tides in the high-eccentricity migration of hot Jupiters: Triggering diffusive growth by nonlinear mode interactions
- Evolution of inspiralling neutron star binaries: effects of tidal interactions and orbital eccentricities
Cited by in corpus (14)
- The Science of the Einstein Telescope
- Possible Causes of False General Relativity Violations in Gravitational Wave Observations
- Renormalizing Love: tidal effects at the third post-Newtonian order
- Accurate and Efficient Waveform Model for Precessing Binary Black Holes
- Precision constraints on the neutron star equation of state with third-generation gravitational-wave observatories
- Gravitoelectric dynamical tides at second post-Newtonian order
- Dynamical tides during the inspiral of rapidly spinning neutron stars: Solutions beyond mode resonance
- Interface modes in inspiralling neutron stars: A gravitational-wave probe of first-order phase transitions
- Premerger phenomena in neutron-star binary coalescences
- Measuring spin in coalescing binaries of neutron stars showing double precursors
- Suppression of composition -modes in chemically-equilibrating warm neutron stars
- Gravitational-Wave Constraints on Neutron-Star Pressure Anisotropy via Universal Relations
- Non-linear saturation of gravito-inertial modes excited by tidal resonances in binary neutron stars
- Irregular Repeating Tidal Disruption Events due to Diffusive Tides