Dynamo and Jet interconnections in GRMHD simulations of black hole accretion disks
P. S. Santhiya, Pallavi Bhat, Prayush Kumar, Tushar Mondal, Indu K. Dihingia

TL;DR
This study uses 3D GRMHD simulations with small-scale magnetic loops to explore how MRI-driven dynamo action influences jet formation and stability in black hole accretion disks, revealing a direct dynamo-jet connection.
Contribution
It demonstrates that dynamo-driven magnetic field evolution and horizon magnetic coherence are key factors in regulating jet longevity in GRMHD black hole accretion disks.
Findings
Large-scale dynamo cycles occur with ~10 orbit periods.
Dynamo-generated fields are advected inward, correlating with jet energy flux.
Jet shutdown correlates with loss of magnetic field coherence at the horizon.
Abstract
We present global 3D GRMHD simulations of black hole (BH) accretion disks designed to investigate how MRI-driven dynamo action regulates jet formation and evolution. Unlike standard SANE/MAD setups that impose a coherent large-scale poloidal loop, our "sub-SANE" initial conditions use multiple same-polarity small-scale magnetic loops. Rapid reconnection erases magnetic memory and enables large-scale dynamo to emerge early from MRI turbulence. We perform two such sub-SANE simulations at different BH spins () and compare them with conventional SANE runs. The sub-SANE disks show regular large-scale dynamo cycles with periods of about ten orbits. Decomposition of the induction equation shows that the turbulent dynamo term is stronger in 3D compared to 2.5D and balances advection in the saturated state, confirming sustained large-scale field generation. These…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Astrophysics and Star Formation Studies · Pulsars and Gravitational Waves Research
