Quasar jet emission model applied to the microquasar GRS 1915+105
arXiv:astro-ph/0401275 · doi:10.1051/0004-6361:20040010
Abstract
The true nature of the radio emitting material observed to be moving relativistically in quasars and microquasars is still unclear. The microquasar community usually interprets them as distinct clouds of plasma, while the extragalactic community prefers a shock wave model. Here we show that the synchrotron variability pattern of the microquasar GRS 1915+105 observed on 15 May 1997 can be reproduced by the standard shock model for extragalactic jets, which describes well the long-term behaviour of the quasar 3C 273. This strengthens the analogy between the two classes of objects and suggests that the physics of relativistic jets is independent of the mass of the black hole. The model parameters we derive for GRS 1915+105 correspond to a rather dissipative jet flow, which is only mildly relativistic with a speed of 0.60 c. We can also estimate that the shock waves form in the jet at a distance of about 1 AU from the black hole.
accepted for publication in A&A Letters
Cited by in corpus (6)
- Heating and Non-thermal Particle Acceleration in Relativistic, Transverse Magnetosonic Shock Waves in Proton-Electron-Positron Plasmas
- Radio Frequency Timing Analysis of the Compact Jet in the Black Hole X-ray Binary Cygnus X-1
- Synchrotron flaring in the jet of 3C 279
- Opacity effects and shock-in-jet modelling of low-level activity in Cygnus X-3
- Synchrotron flaring behaviour of CygnusX-3 during the February-March 1994 and September 2001 outbursts
- Short Timescale Evolution of the Polarized Radio Jet during V404 Cygni's 2015 Outburst