Predicting Short-duration GRB Rates in the Advanced LIGO Volume
Tzvetelina A. Dimitrova, Nathaniel R. Butler, and Srihari Ravi

TL;DR
This paper models the rates of short gamma-ray bursts in the volume detectable by LIGO, linking them to gravitational wave events, and predicts detection rates considering jet beaming and detector sensitivities.
Contribution
It introduces a probabilistic model that predicts joint sGRB and GW detection rates, accounting for jet beaming and detector sensitivities, and compares predictions with GW170817/GRB 170817A.
Findings
Predicted 0.18^{+0.19}_{-0.08} sGRB/GW associations per year within 200 Mpc for on-axis events.
Nearby sGRBs likely have broader jets ($ heta_{jet} extgreater 30$ degrees).
Detection rates increase with experimental sensitivity and include off-axis events.
Abstract
Starting with models for the compact object merger event rate, the short-duration Gamma-ray Burst (sGRB) luminosity function, and the Swift/BAT detector, we calculate the observed Swift sGRB rate and its uncertainty. Our probabilistic sGRB world model reproduces the observed number distributions in redshift and flux for 123 Swift/BAT detected sGRBs and can be used to predict joint sGRB/LIGO detection rates. We discuss the dependence of the rate predictions on the model parameters and explore how they vary with increasing experimental sensitivity. In particular, the number of bursts in the LIGO volume depends strongly on the parameters that govern sGRB beaming. Our results suggest that nearby sGRBs should be observed to have broader jets on average ( degrees), as compared to the narrowly-beamed appearance of cosmological sGRBs due to detection selection effect…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Astronomical Observations and Instrumentation · GNSS positioning and interference
