Tidal Resonance in Binary Neutron Star Inspirals: A High-Precision Study in Numerical Relativity
Abstract
We investigate the tidal resonance of the fundamental (-)mode in spinning neutron stars, robustly tracing the onset of the excitation to its saturation, using numerical relativity for the first time. We performed long-term (~orbits) fully relativistic simulations of a merger of two highly and retrogradely spinning neutron stars. The resonance window of the -mode is extended by self-interaction, and the nonlinear resonance continues up to the final plunging phase. We observe that the quasi-circular orbit is maintained throughout since the dissipation of orbit motion due to the resonance is coherent with that due to gravitational waves. The -mode resonance causes a variation in the stellar spin of in the linear regime and much more as during the later nonlinear regime. At the merger, a phase shift of ~radians is rendered in the gravitational waveform as a consequence of the angular momentum and energy transfers into the neutron star oscillations.
Keywords
Cite
@article{arxiv.2411.16850,
title = {Tidal Resonance in Binary Neutron Star Inspirals: A High-Precision Study in Numerical Relativity},
author = {Hao-Jui Kuan and Kenta Kiuchi and Masaru Shibata},
journal= {arXiv preprint arXiv:2411.16850},
year = {2025}
}
Comments
5 pages, 4 figures + supplemental material. To appear in Physical Review Letters