Probing internal dissipative processes of neutron stars with gravitational waves during the inspiral of neutron star binaries
Justin L. Ripley, Abhishek Hegade K. R., Nicolas Yunes

TL;DR
This paper introduces a new dissipative tidal deformability parameter affecting gravitational wave phases during neutron star inspirals, enabling potential insights into neutron star interior dissipation through gravitational wave observations.
Contribution
It defines and analyzes a novel dissipative tidal deformability parameter, showing its impact on gravitational wave phase and how it can be constrained observationally.
Findings
Dissipative effects modify gravitational wave phase at 4PN order.
The dissipative tidal deformability is not degenerate with coalescence time.
Gravitational wave measurements can constrain dissipative interior processes.
Abstract
We study the impact of out-of-equilibrium, dissipative effects on the dynamics of inspiraling neutron stars. We find that modeling dissipative processes (such as those from the stars internal effective fluid viscosity) requires that one introduce a new tidal deformability parameter--the dissipative tidal deformability--which modifies the phase of gravitational waves emitted during the inspiral phase of a neutron star binary. We show that the dissipative tidal deformability corrects the gravitational-wave phase at 4 post-Newtonian order for quasi-circular binaries. This correction receives a large finite-size enhancement by the stellar compactness, analogous to the case of the tidal deformability. Moreover, the correction is not degenerate with the time of coalescence, which also enters at 4PN order, because it contains a logarithmic frequency-dependent contribution. Using a simple…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Stellar, planetary, and galactic studies · Geophysics and Gravity Measurements
