Modeling the kinematics of the decelerating jets from the black hole X-ray binary MAXI J1348$-$630
F. Carotenuto, A. J. Tetarenko, S. Corbel

TL;DR
This study models the decelerating jet from the black hole X-ray binary MAXI J1348-630 during its 2019/2020 outburst, revealing its physical properties, high initial energy, and environment interaction, with implications for jet energetics and surrounding medium.
Contribution
First detailed dynamical modeling of the jet deceleration in MAXI J1348-630, constraining its physical parameters and environmental interaction, highlighting the jet's high energy and environmental cavity.
Findings
Jet initial Lorentz factor ~1.85
Jet energy significantly exceeds synchrotron estimates
System likely embedded in a low-density ISM cavity
Abstract
Black hole low mass X-ray binaries (BH LMXBs) can launch powerful outflows in the form of discrete ejecta. Observing the entire trajectory of these ejecta allows us to model their motion with great accuracy, and this is essential for measuring their physical properties. In particular, observing the final deceleration phase, often poorly sampled, is fundamental to obtain a reliable estimate of the jet's energy. During its 2019/2020 outburst, the BH LMXB MAXI J1348630 launched a single-sided radio-emitting jet that was detected at large scales after a strong deceleration due to the interaction with the interstellar medium (ISM). We successfully modelled the jet motion with a dynamical external shock model, which allowed us to constrain the jet initial Lorentz factor , inclination angle deg and ejection date $t_{\rm ej} =…
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