Using radiative energy losses to constrain the magnetisation and magnetic reconnection rate at the base of black hole jets
arXiv:1610.08321 · doi:10.1093/mnras/stw2609
Abstract
We calculate the severe radiative energy losses which occur at the base of black hole jets using a relativistic fluid jet model, including in-situ acceleration of non-thermal leptons by magnetic reconnection. Our results demonstrate that including a self-consistent treatment of radiative energy losses is necessary to perform accurate MHD simulations of powerful jets and that jet spectra calculated via post-processing are liable to vastly overestimate the amount of non-thermal emission. If no more than 95% of the initial total jet power is radiated away by the plasma travels as it travels along the length of the jet, we can place a lower bound on the magnetisation of the jet plasma at the base of the jet. For typical powerful jets, we find that the plasma at the jet base is required to be highly magnetised, with at least 10,000 times more energy contained in magnetic fields than in non-thermal leptons. Using a simple power-law model of magnetic reconnection, motivated by simulations of collisionless reconnection, we determine the allowed range of the large-scale average reconnection rate along the jet, by restricting the total radiative energy losses incurred and the distance at which the jet first comes into equipartition. We calculate analytic expressions for the cumulative radiative energy losses due to synchrotron and inverse-Compton emission along jets, and derive analytic formulae for the constraint on the initial magnetisation.
21 pages, 7 figures, accepted for publication in MNRAS
References in corpus (12)
- Probing the Inner Jet of the Quasar PKS 1510-089 with Multi-waveband Monitoring during Strong Gamma-ray Activity
- Doppler factors, Lorentz factors and viewing angles for quasars, BL Lacertae objects and radio galaxies
- Jet Launching Structure Resolved Near the Supermassive Black Hole in M87
- Magnetic acceleration of ultra-relativistic jets in gamma-ray burst sources
- Magnetic acceleration of relativistic AGN jets
- Cosmic X-ray Surveys of Distant Active Galaxies: The Demographics, Physics, and Ecology of Growing Supermassive Black Holes
- Relativistic Jets Shine through Shocks or Magnetic Reconnection?
- A Universal Scaling for the Energetics of Relativistic Jets From Black Hole Systems
- The radio-ultraviolet spectral energy distribution of the jet in 3C273
- Magnetization degree at the jet base of M87 derived from the event horizon telescope data: Testing magnetically driven jet paradigm
- Synchrotron and inverse-Compton emission from blazar jets I: a uniform conical jet model
- A synchrotron self-Compton model with low energy electron cut-off for the blazar S5 0716+714
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- The Origin of Matter at the Base of Relativistic Jets in Active Galactic Nuclei