Curved jet motion. I. Orbiting and precessing jets
arXiv:2205.08498 · doi:10.3847/1538-4357/ac7145
Abstract
Astrophysical jets are often observed as bent or curved structures. We also know that the different jet sources may be binary in nature, which may lead to a regular, periodic motion of the jet nozzle, an orbital motion or precession. Here, we present the results of 2D (M)HD simulations in order to investigate how a precessing or orbiting jet nozzle affects the propagation of a high-speed jet. We have performed a parameter study of systems with different precession angles, orbital periods or separations, and different magnetic field strengths. We find that these kinds of nozzles lead to curved jet propagation which is determined by the main parameters that define the jet nozzle. We find C-shaped jets from orbiting nozzles and S-shaped jets from precessing nozzles. Over long time and long distances, the initially curved jet motion bores a broad channel into the ambient gas that is filled with high-speed jet material which lateral motion is damped, however. A strong (longitudinal) magnetic field can damp the jet curvature that is enforced by either precession of orbital motion of the jet sources. We have investigated the force balance across the jet and ambient medium and found that the lateral magnetic pressure and gas pressure gradients are almost balanced, but that a lack of gas pressure on the concave side of the curvature is leading to the lateral motion. Magnetic tension does not play a significant role. Our results are obtained in code units, but we provide scaling relations such that our results may be applied to young stars, micro-quasars, symbiotic stars or AGN.
20 pp, 14 figs; accepted by ApJ
References in corpus (23)
- Theory of Star Formation
- PLUTO: a Numerical Code for Computational Astrophysics
- MHD simulations of jet acceleration from Keplerian accretion disks: the effects of disk resistivity
- Misaligned Protoplanetary Disks in a Young Binary System
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- A candidate sub-parsec binary black hole in the Seyfert galaxy NGC 7674
- Superluminal non-ballistic jet swing in the quasar NRAO 150 revealed by mm-VLBI
- First image of the L1157 molecular jet by the CALYPSO IRAM-PdBI survey
- Jet Motion, Internal Working Surfaces, and Nested Shells in the Protostellar System HH 212
- Can Protostellar Jets Drive Supersonic Turbulence in Molecular Clouds?
- Extragalactic jets with helical magnetic fields: relativistic MHD simulations
- Modelling MHD accretion-ejection - from the launching area to propagation scales
- Binary system and jet precession and expansion in G35.20-0.74N
- Modelling MHD accretion-ejection - episodic ejections of jets triggered by a mean-field disk dynamo
- Origin of Misalignments: Protostellar Jet, Outflow, Circumstellar Disc, and Magnetic Field
- A ring accelerator? Unusual jet dynamics in the IceCube candidate PKS 1502+106
- Reverse Rotation of the Accretion Disk in RW Aur A: Observations and a Physical Model
- Launching the asymmetric bipolar jet of DO Tau
- Near-IR imaging towards a puzzling YSO precessing jet
- The precessing jets of classical nova YZ Reticuli
- High-resolution images of two wiggling stellar jets, MHO 1502 and MHO 2147, obtained with GSAOI+GeMS
- Jet-powered Outflows in Supermassive Black Hole Binary Candidate SDSS J1048+0055
- The physics of the MHD disk-jet transition in binary systems: jetted spiral walls launched from disk spiral arms