The GW-Universe Toolbox II: constraining the binary black hole population with second and third generation detectors
arXiv:2201.06196 · doi:10.1051/0004-6361/202243127
Abstract
We employ the method used by the GW-Universe Toolbox to generate a synthetic catalogue of detection of stellar mass binary black hole (BBH) mergers. We study advanced LIGO (aLIGO) and Einstein Telescope (ET) as two representatives for the 2nd and 3rd generation GW observatories, and study how GW observations of BBHs can be used to constrain the merger rate as function of redshift and masses. We also simulate the observations from a detector that is half as sensitive as the ET at design which represents an early phase of ET. Two methods are used to obtain the constraints on the source population properties from the catalogues: 1. parametric differential merger rate model and applies a Bayesian inference on the parameters; and 2. non-parametric and uses weighted Kernel density estimators. The results show the overwhelming advantages of the 3rd generation detector over the 2nd generation for the study of BBH population properties, especially at a redshifts higher than ~2, where the merger rate is believed to peak. With the simulated aLIGO catalogue, the parametric Bayesian method can still give some constraints on the merger rate density and mass function beyond its detecting horizon, while the non-parametric method lose the constraining ability completely there. We also find that, despite the numbers of detection of the half-ET can be easily compatible with full ET after a longer observation duration, the catalogue from the full ET can still give much better constraints on the population properties, due to its smaller uncertainties on the physical parameters of the GW events.
8 pages, 10 figures, Accepted by A&A; (the abstract shown above is trimmed in order to fit in the abstract field)
References in corpus (11)
- Cosmic Star Formation History
- Exoplanet population inference and the abundance of Earth analogs from noisy, incomplete catalogs
- The cosmic merger rate of stellar black hole binaries from the Illustris simulation
- The redshift evolution of the binary black hole merger rate: a weighty matter
- The Cosmic Evolution of Binary Black Holes in Young, Globular and Nuclear Star Clusters: Rates, Masses, Spins and Mixing Fractions
- The H-alpha Luminosity Function and Star Formation Rate Volume Density at z=0.8 from the NEWFIRM H-alpha Survey
- Star formation rates in Lyman break galaxies: radio stacking of LBGs in the COSMOS field and the sub-Jy radio source population
- The star formation rate at redshift one: H-alpha spectroscopy with CIRPASS
- The impact of the FMR and starburst galaxies on the (low-metallicity) cosmic star formation history
- The Gravitational Wave Universe Toolbox: A software package to simulate observation of the Gravitational Wave Universe with different detectors
- Merger rate density of stellar-mass binary black holes from young massive clusters, open clusters, and isolated binaries: comparisons with LIGO-Virgo-KAGRA results
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- Classifying binary black holes from Population III stars with the Einstein Telescope: A machine-learning approach
- The GW-Universe Toolbox III: simulating joint observations of gravitational waves and gamma-ray bursts
- Consistency Tests for Comparing Astrophysical Models and Observations
- Fast and accurate parameter estimation of high-redshift sources with the Einstein Telescope
- Reconstructing the star formation rate for compact binary populations with the Einstein telescope
- Effect of kick velocity on gravitational wave detection of binary black holes with space- and ground-based detectors
- Resolving white dwarf binaries within globular clusters with LISA
- Impact of facility timing and coordination for next-generation gravitational-wave detectors