Magnetic reconnection plasmoid model for Sagittarius A* flares
N. Aimar, A. Dmytriiev, F.H. Vincent, I.El Mellah, T. Paumard, G., Perrin, A. Zech

TL;DR
This paper presents a semi-analytic plasmoid ejection model based on magnetic reconnection to explain Sagittarius A*'s infrared flares, successfully matching recent astrometric and photometric observations.
Contribution
It introduces a novel plasmoid-based flare model that explicitly incorporates emission mechanisms and orbital dynamics, aligning well with recent GRAVITY data.
Findings
Model reproduces astrometric and flux variations observed by GRAVITY.
Super-Keplerian motion explained by magnetic field line anchoring.
Astrometric shifts consistent with quiescent radiation influence.
Abstract
Sagittarius A*, the supermassive black hole at the center of our galaxy, exhibits episodic near-infrared flares. The recent monitoring of three such events by the GRAVITY instrument has shown that some flares are associated with orbital motions in the close environment of the black hole with super Keplerian velocity. We develop a semi-analytic model of Sagittarius~A* flares based on an ejected large plasmoid, inspired by recent particle-in-cell global simulations of black hole magnetospheres. We model the infrared astrometric and photometric signatures associated to this model. We consider a spherical large plasmoid ejected along a conical orbit around the black hole. This plasmoid is assumed to be formed by successive mergers of smaller plasmoids produced through magnetic reconnection. Non-thermal electrons are injected in the plasmoid. We compute the evolution of the…
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