English

Joint Radiative and Kinematic Modelling of X-ray Binary Ejecta: Energy Estimate and Reverse Shock Detection

High Energy Astrophysical Phenomena 2025-08-28 v2

Abstract

Black hole X-ray binaries in outburst launch discrete, large-scale jet ejections which can propagate to parsec scales. The kinematics of these ejecta appear to be well described by relativistic blast wave models original devised for gamma-ray burst afterglows. In previous kinematic-only modelling, a crucial degeneracy prevented the initial ejecta energy and the interstellar medium density from being accurately determined. In this work, we present the first joint Bayesian modelling of the radiation and kinematics of a large-scale jet ejection from the X-ray binary MAXI J1535-571. We demonstrate that a reverse shock powers the bright, early ejecta emission. The joint model breaks the energetic degeneracy, and we find the ejecta has an initial energy of E03×1043ergE_{0} \sim 3 \times 10^{43} \, {\rm erg}, and propagates into a low density interstellar medium of nism4×105cm3n_{\rm ism} \sim 4 \times 10^{-5} \, {\rm cm^{-3}}. The ejecta is consistent with being launched perpendicular to the disc and could be powered by an efficient conversion of available accretion power alone. This work lays the foundation for future parameter estimation studies using all available data of X-ray binary jet ejecta.

Keywords

Cite

@article{arxiv.2503.10804,
  title  = {Joint Radiative and Kinematic Modelling of X-ray Binary Ejecta: Energy Estimate and Reverse Shock Detection},
  author = {A. J. Cooper and J. H. Matthews and F. Carotenuto and R. Fender and G. P. Lamb and T. D. Russell and N. Sarin and K. Savard and A. A. Zdziarski},
  journal= {arXiv preprint arXiv:2503.10804},
  year   = {2025}
}

Comments

Updated to match revised, accepted version