A Real-Time Jet Laboratory in Swift J1727.8-1613
Callan M. Wood, James C. A. Miller-Jones, Arash Bahramian, Steven J. Tingay, Sara E. Motta, Hongmin Cao, Thomas D. Russell, Francesco Carotenuto, Pikky Atri, Diego Altamirano, Alexandra J. Tetarenko, Rob Fender, Elmar Körding, Dipankar Maitra, Sera Markoff, David M. Russell, Gregory R. Sivakoff, Roberto Soria, Valeriu Tudose
astro-ph.HE
Submitted: 2026-08-05
Comments: 26 pages, 19 figures, 5 tables. Accepted for publication by PASA
Code: https://github.com/joshspeagle/dynesty
License: http://creativecommons.org/licenses/by/4.0/
The gist: We present the results of our intensive VLBI campaign on the black-hole low-mass X-ray binary (LMXB) Swift J1727.8-1613 during its 2023-2024 outburst.
Terminology
Abstract
We present the results of our intensive VLBI campaign on the black-hole low-mass X-ray binary (LMXB) Swift J1727.8-1613 during its 2023-2024 outburst. We observed the repeated quenching and re establishment of the highly-extended continuous jet during several transitions between hard-intermediate and soft-intermediate states, and the repeated ejection of transient jets. Using time-dependent visibility model fitting, we tracked the motion of nine discrete jet knots, obtaining some of the most precise measurements of transient jet proper motions and ejection dates in an LMXB. These ejecta were only detectable for a short time with VLBI, and some showed rapid intra-observation flux density variability that was not captured in image reconstructions. For the first time, we use time-dependent visibility modelling to fit a piecewise model for the jet knot flux densities, allowing us to create complex, non-parametric light curves of their intra-observation variability. We observed the launching of multiple ejecta across several state transitions, however, we could not identify a consistent signature of jet ejection in the available X-ray intensity or hardness data. We constrained the intrinsic speeds and bulk Lorentz factors of the jet knots, finding that Swift J1727.8-1613 launched both mildly relativistic and highly relativistic ejecta throughout its outburst. We used their proper motions to constrain a posterior distribution for the maximum inclination angle of the jet axis, which had 50th, 84th, and 99th percentiles of 40, 50, and 66, respectively. These unique observations of the repeated ejection of transient jets by a single LMXB reveal that fixed parameters such as black-hole mass, black-hole spin, and spin-orbit misalignment do not uniquely determine the varying properties of transient jets, particularly their speeds and Lorentz factors.
Sources
- Dynamic disk-corona coupling during the state transition of Swift J1727.8-1613
- The Broadband X-ray Spectral Properties during the Rising Phases of the Outburst of the New Black Hole X-ray Binary Candidate Swift J1727.8-1613
- Jets from a stellar-mass black hole are as relativistic as those from supermassive black holes
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