Scale-invariant radio jets and varying black hole spin
Monika Moscibrodzka, Heino Falcke, Scott Noble

TL;DR
This study uses 3D GRMHD simulations to analyze how black hole spin influences the radio luminosity of jets, finding that spin increases radio flux but is not the primary factor, supporting scale-invariant models.
Contribution
It provides the first detailed numerical analysis of the dependency of radio jet luminosity on black hole spin, mass, and accretion rate, confirming scale-invariance and weak spin influence.
Findings
Radio flux increases by a factor of 6 with high black hole spin.
Radio luminosity scales with black hole mass and accretion rate as predicted by scale-invariant models.
Black hole spin has a limited effect on the visibility of radio jets.
Abstract
Compact radio cores associated with relativistic jets are often observed in both active galactic nuclei and X-ray binaries. Their radiative properties follow some general scaling laws which primarily depend on their masses and accretion rates. However, it has been suggested that the black hole spin can also strongly influence the power and radio flux of these. Here, we attempt to estimate the dependency of the radio luminosity of steady jets launched by accretion disks on black hole mass, accretion rate and spin using numerical simulations. We make use of 3D GRMHD simulations of accretion disks around low-luminosity black holes in which the jet radio emission is produced by the jet sheath. We find that the radio flux increases roughly by a factor of 6 as the back hole spin increases from a~0 to a=0.98. This is comparable to the increase in accretion power with spin, meaning that the…
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