The landscape of disk outflows from black hole - neutron star mergers
Rodrigo Fern\'andez, Francois Foucart, Jonas Lippuner

TL;DR
This study uses high-resolution hydrodynamic simulations to explore mass ejection from black hole-neutron star merger disks, revealing how disk properties influence outflow composition and potential electromagnetic signals.
Contribution
It provides the first comprehensive parameter space exploration of BH-NS merger disk outflows, including neutrino effects and nuclear reactions, to predict electromagnetic counterparts.
Findings
Ejected mass fraction inversely related to disk compactness.
Higher disk mass leads to less lanthanide/actinide content in outflows.
Radioactive luminosity varies over two orders of magnitude.
Abstract
We investigate mass ejection from accretion disks formed in mergers of black holes (BHs) and neutron stars (NSs). The third observing run of the LIGO/Virgo interferometers provided BH-NS candidate events that yielded no electromagnetic (EM) counterparts. The broad range of disk configurations expected from BH-NS mergers motivates a thorough exploration of parameter space to improve EM signal predictions. Here we conduct 27 high-resolution, axisymmetric, long-term hydrodynamic simulations of the viscous evolution of BH accretion disks that include neutrino emission/absorption effects and post-processing with a nuclear reaction network. In the absence of magnetic fields, these simulations provide a lower-limit to the fraction of the initial disk mass ejected. We find a nearly linear inverse dependence of this fraction on disk compactness (BH mass over initial disk radius). The dependence…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Mechanics and Biomechanics Studies · Pulsars and Gravitational Waves Research
