Derivation of the physical parameters of the jet in S5 0836+710 from stability analysis
arXiv:1904.02030 · doi:10.1051/0004-6361/201935119
Abstract
A number of extragalactic jets show periodic structures at different scales that can be associated with growing instabilities. The wavelengths of the developing instability modes and their ratios depend on the flow parameters, so the study of those structures can shed light on jet physics at the scales involved. In this work, we use the fits to the jet ridgeline obtained from different observations of S5 B0836710 and apply stability analysis of relativistic, sheared flows to derive an estimate of the physical parameters of the jet. Based on the assumption that the observed structures are generated by growing Kelvin-Helmholtz (KH) instability modes, we have run numerical calculations of stability of a relativistic, sheared jet over a range of different jet parameters. We have spanned several orders of magnitude in jet-to-ambient medium density ratio, and jet internal energy, and checked different values of the Lorentz factor and shear layer width. This represents an independent method to obtain estimates of the physical parameters of a jet. By comparing the fastest growing wavelengths of each relevant mode given by the calculations with the observed wavelengths reported in the literature, we have derived independent estimates of the jet Lorentz factor, specific internal energy, jet-to-ambient medium density ratio and Mach number. We obtain a jet Lorentz factor , specific internal energy of , jet-to-ambient medium density ratio of , and an internal (classical) jet Mach number of . We also find that the wavelength ratios are better recovered by a transversal structure with a width of of the jet radius. This method represents a powerful tool to derive the jet parameters in all jets showing helical patterns with different wavelengths.
Accepted for publication in A&A, 15 pages, 12 figures
References in corpus (11)
- Stability of Relativistic Jets from Rotating, Accreting Black Holes via Fully Three-Dimensional Magnetohydrodynamic Simulations
- Kinematics of the jet in M87 on scales of 100 -- 1000 Schwarzschild radii
- 3D Relativistic Magnetohydrodynamic Simulations of Magnetized Spine-Sheath Relativistic Jets
- 3D Relativistic Magnetohydrodynamic Simulations of Current-Driven Instability. I. Instability of a static column
- MOJAVE XII: Acceleration and Collimation of Blazar Jets on Parsec Scales
- Anatomy of helical relativistic jets: The case of S5 0836+710
- Structure and flux variability in the VLBI jet of BL Lacertae during the WEBT campaigns (1995--2004)
- The internal structure of overpressured, magnetized, relativistic jets
- Studies of the Jet in BL Lacertae. II. Superluminal Alfvén Waves
- Resonant Kelvin-Helmholtz modes in sheared relativistic flows
- Physical properties of the jet in 0836+710 revealed by its transversal structure
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- Dual-high-frequency VLBI study of blazar-jet brightness-temperature gradients and collimation profiles
- Turbulence and Particle Acceleration in Shearing Flows
- Jet-Feedback on kpc scales: a review
- Unveiling the Bent Jet Structure and Polarization of OJ 287 at 1.7 GHz with Space VLBI
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