Comprehensive coverage of particle acceleration and kinetic feedback from the stellar mass black hole V404 Cygni
R.P. Fender (Oxford), K.P. Mooley (Oxford/NRAO/Caltech), S.E. Motta, (Oxford/INAF), J.S. Bright (Oxford/Northwestern), D.R.A. Williams, (Oxford/Manchester), A.P. Rushton (Oxford), R.J. Beswick (Manchester), J.C.A., Miller-Jones (Curtin), M. Kimura (RIKEN)

TL;DR
This paper provides the most comprehensive radio observations of the black hole V404 Cyg during its 2015 outburst, revealing detailed insights into jet production, particle acceleration, and feedback mechanisms.
Contribution
It offers the first detailed analysis of particle acceleration phases and flux-rms correlations in V404 Cyg, enhancing understanding of black hole jet physics.
Findings
First near-linear flux-rms correlation in radio flux densities.
Extended particle acceleration phase beyond impulsive models.
Correlation between radio and X-ray emissions across multiple timescales.
Abstract
We present analysis of comprehensive radio observations of the black hole V404 Cyg during its 2015 outburst. These data represent the best ever coverage of jet production and particle acceleration from any black hole. We report for the first time a clear and near-linear flux-rms correlation in the radio flux densities. Investigation of individual flares reveals in nearly all cases the peak corresponds to the transition from optically thick to thin to synchrotron emission, but an extended phase of particle acceleration is required in contrast to simple impulsive injection models. The largest radio flare is preceded by a phase of optical oscillations and followed one day later by a smaller but optically thin flare, likely due to ejecta interacting with the interstellar medium. Comparing the radio emission to contemporaneous X-ray and optical data, we find that the X-ray and radio…
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