Tension of toroidal magnetic field in reconnection plasmoids and relativistic jets
arXiv:2502.14954 · doi:10.1051/0004-6361/202553662
Abstract
Toroidal magnetic field is a key ingredient of relativistic jets launched by certain accreting astrophysical black holes, and of plasmoids emerging from the tearing instability during magnetic reconnection, a candidate dissipation mechanism in jets. Tension of toroidal field is an anisotropic force that can compress local energy and momentum densities. We investigate this effect in plasmoids produced during relativistic reconnection initiated from a Harris layer by means of kinetic particle-in-cell (PIC) numerical simulations, varying the system size (including 3D cases), magnetisation, or guide field. We find that: (1) plasmoid cores are dominated by plasma energy density for guide fields up to B_z ~ B_0; (2) relaxed 'monster' plasmoids compress plasma energy density only modestly (by factor ~3 above the initial level for drifting particle population); (3) energy density compressions by factors >~10 are achieved during plasmoid mergers, especially with the emergence of secondary plasmoids. This kinetic-scale effect can be combined with a global focusing of the jet Poynting flux along the quasi-cylindrical bunched spine (a proposed jet layer adjacent to the cylindrical core) due to poloidal line bunching (a prolonged effect of tension of the jet toroidal field) to enhance the luminosity of rapid radiation flares from blazars. The case of M87 as a misaligned blazar is discussed.
A&A accepted, 2.5 MB, 13 pages, 7 figures
References in corpus (27)
- First M87 Event Horizon Telescope Results. VI. The Shadow and Mass of the Central Black Hole
- Instability of current sheets and formation of plasmoid chains
- Fast TeV variability in blazars: jets in a jet
- Magnetic acceleration of ultra-relativistic jets in gamma-ray burst sources
- Magnetic acceleration of relativistic AGN jets
- Relativistic Jets Shine through Shocks or Magnetic Reconnection?
- Black hole flares: ejection of accreted magnetic flux through 3D plasmoid-mediated reconnection
- Blazar flares powered by plasmoids in relativistic reconnection
- Superluminal Radio Features in the M87 Jet and the Site of Flaring TeV Gamma-ray Emission
- A ring-like accretion structure in M87 connecting its black hole and jet
- Magnetohydrodynamic Simulations of Active Galactic Nucleus Disks and Jets
- Constraining the Location of Gamma-Ray Flares in Luminous Blazars
- Radiative reconnection-powered TeV flares from the black hole magnetosphere in M87
- Secondary Energization in Compressing Plasmoids during Magnetic Reconnection
- Pitch Angle Anisotropy Controls Particle Acceleration and Cooling in Radiative Relativistic Plasma Turbulence
- High-energy synchrotron flares powered by strongly radiative relativistic magnetic reconnection: 2D and 3D PIC simulations
- M87: a cosmic laboratory for deciphering black hole accretion and jet formation
- Ultrafast Variability in AGN Jets: Intermittency and Lighthouse Effect
- Radiative kinetic simulations of steady-state relativistic plasmoid magnetic reconnection
- Kinetic Simulations of Instabilities and Particle Acceleration in Cylindrical Magnetized Relativistic Jets
- Chaotic magnetic disconnections trigger flux eruptions in accretion flows channeled onto magnetically saturated Kerr black holes
- On the Internal Structure of Relativistic Jets with Zero Velocity Along the Axis
- Super-Resolved Image of M87 Observed with East Asian VLBI Network
- Suborbital Fermi/LAT Analysis of the Brightest Gamma-Ray Flare of Blazar 3C 454.3
- On the M87 jet structure near the central engine
- The Details of Limb Brightening Reveal the Structure of the Base of the Jet in M\,87 for the First Time
- The cylindrical jet base of M87 within 100 of the central engine