Dynamical tides in neutron stars: The impact of the crust
arXiv:2012.09637 · doi:10.1093/mnras/stab870
Abstract
We consider the dynamical tidal response of a neutron star in an inspiralling binary, focussing on the impact of the star's elastic crust. Within the context of Newtonian gravity, we add the elastic aspects to the theoretical formulation of the problem and quantify the dynamical excitation of different classes of oscillation modes. The results demonstrate the expectation that the fundamental mode dominates the tidal response and show how the usual tidal deformability (and the Love number) emerge in the static limit. In addition, we consider to what extent the different modes may be excited to a level where the breaking strain of the crust would be exceeded (locally). The results show that the fundamental mode may fracture the crust during the late stages of inspiral. This is also the case for the first gravity mode, which reaches the breaking threshold in strongly stratified stars. In our models with a fluid ocean, interface modes associated with the crust-ocean transition may also induce crust fracture. If this happens it does so earlier in the inspiral, at a lower orbital frequency.
23 pages, 12 figures and 6 tables. Version accepted for publication in MNRAS
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- Dynamical tides during the inspiral of rapidly spinning neutron stars: Solutions beyond mode resonance
- Probing phase transition in neutron stars via the crust-core interfacial mode
- Rotating Love: The dynamical tides of spinning Newtonian stars
- Dynamical tides in superfluid neutron stars
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- Nonradial instabilities in anisotropic neutron stars
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- Crust-core interface and bulk neutron star properties
- Nonlinear Alfvén-wave Dynamics and Premerger Emission from Crustal Oscillations in Neutron Star Mergers
- Measuring spin in coalescing binaries of neutron stars showing double precursors
- Crustal failure as a tool to probe hybrid stars
- Nonradial oscillations of stratified neutron stars with solid crusts: Mode characterization and tidal resonances in coalescing binaries
- Gravitational waves from nonradial oscillations of stochastically accreting neutron stars
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- Dynamical neutron-star tides: The signature of a mode resonance
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- Non-linear saturation of gravito-inertial modes excited by tidal resonances in binary neutron stars
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