Striking the right tone: toward a self-consistent framework for measuring black hole ringdowns
arXiv:2402.02819 · doi:10.1103/PhysRevD.109.124030
Abstract
The ringdown portion of a binary black hole merger consists of a sum of modes, each containing an infinite number of tones that are exponentially damped sinusoids. In principle, these can be measured as gravitational-waves with observatories like LIGO/Virgo/KAGRA, however in practice it is unclear how many tones can be meaningfully resolved. We investigate the consistency and resolvability of the overtones of the quadrupolar mode by starting at late times when the gravitational waveform is expected to be well-approximated by the tone alone. We present a Bayesian inference framework to measure the tones in numerical relativity data. We measure tones at different start times, checking for consistency: we classify a tone as stably recovered if and only if the 95\% credible intervals for amplitude and phase at time overlap with the credible intervals at all subsequent times. We test a set of tones including the first four overtones of the fundamental mode and the 320 tone and find that the 220 and 221 tones can be measured consistently with the inclusion of additional overtones. The 222 tone measurements can be stabilised when we include the 223 tone, but only in a narrow time window, after which it is too weak to measure. The 223 tone recovery appears to be unstable, and does not become stable with the introduction of the 224 tone. We find that tones can be stably recovered simultaneously. However, when analysing tones, the amplitude of one tone is consistent with zero. Thus, within our framework, one can identify only tones with non-zero amplitude that are simultaneously stable.
14 pages, 8 figures, 2 tables. Published in PRD
References in corpus (15)
- Inspiral, merger and ring-down of equal-mass black-hole binaries
- Observational Black Hole Spectroscopy: A time-domain multimode analysis of GW150914
- Ringdown overtones, black hole spectroscopy, and no-hair theorem tests
- qnm: A Python package for calculating Kerr quasinormal modes, separation constants, and spherical-spheroidal mixing coefficients
- Spectroscopy of binary black hole ringdown using overtones and angular modes
- Extracting linear and nonlinear quasinormal modes from black hole merger simulations
- Fixing the BMS frame of numerical relativity waveforms with BMS charges
- Challenges testing the no-hair theorem with gravitational waves
- Reply to Comment on "Analysis of Ringdown Overtones in GW150914"
- Comment on "Analysis of Ringdown Overtones in GW150914''
- Ringdown of a dynamical spacetime
- Searching for ringdown higher modes with a numerical relativity-informed post-merger model
- Effect of Noise Estimation in Time-Domain Ringdown Analysis: A Case Study with GW150914
- Linear vs. nonlinear modeling of black hole ringdowns
- Fundamental Tone and Overtones of Quasinormal Modes in Ringdown Gravitational Waves: A Detailed Study in Black Hole Perturbation
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