Parsec-scale jet precession and a putative supermassive binary black hole system in the blazar AO 0235+164
Flavio Benevenuto da Silva Junior, Anderson Caproni

TL;DR
This study analyzes the parsec-scale jet structure of blazar AO 0235+164, revealing jet precession with periods matching optical and radio periodicities, suggesting a possible supermassive black hole binary system influencing jet dynamics.
Contribution
The paper presents the first detailed kinematic analysis of AO 0235+164's jet components using interferometric radio maps and models jet precession with a period consistent with observed multi-wavelength periodicities.
Findings
Identified 36 relativistic jet components with high Lorentz factor.
Detected jet precession with an 8.4-year period, matching optical periodicity.
Proposed supermassive black hole binary as a possible cause for jet precession.
Abstract
The blazar AO 0235+164 is a key source for studying the interplay between multi-wavelength variability in its light curves and changes in the position angles and apparent velocities of its parsec-scale jet components. In this work, we analyse public interferometric radio maps of AO 0235+164 at 15 and 43 GHz, using the Cross Entropy global optimisation technique to determine the structural parameters of its jet components. We identified 36 kinematically distinct jet components across all sky quadrants, indicating a highly relativistic parsec-scale jet with a minimum Lorentz factor of 34 +/- 7 and a maximum viewing angle of 37 +/- 8 degree. The temporal evolution of these jet components was modelled as a relativistic jet under a constant precession rate. The optimal clockwise precession model has a precession period of 8.4 +\- 0.2 years, consistent with the 8.13-year periodicity…
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