A Magnetohydrodynamic Boost for Relativistic Jets
Yosuke Mizuno (NSSTC/NASA-MSFC), Philip Hardee (UA), Dieter H., Hartmann (Clemson Univ.), Ken-Ichi Nishikawa (NSSTC/UAH), Bing Zhang (UNLV)

TL;DR
This study uses relativistic magnetohydrodynamic simulations to demonstrate that magnetic fields, depending on their orientation, significantly enhance the acceleration of relativistic jets beyond pure hydrodynamic effects.
Contribution
It introduces the impact of magnetic field orientation on jet acceleration, extending previous hydrodynamic models with new simulation results showing increased Lorentz factors.
Findings
Magnetic fields increase jet acceleration efficiency.
Poloidal magnetic fields produce stronger shocks and higher Lorentz factors.
Toroidal magnetic fields also enhance jet acceleration, but less than poloidal fields.
Abstract
We performed relativistic magnetohydrodynamic simulations of the hydrodynamic boosting mechanism for relativistic jets explored by Aloy & Rezzolla (2006) using the RAISHIN code. Simulation results show that the presence of a magnetic field changes the properties of the shock interface between the tenuous, overpressured jet () flowing tangentially to a dense external medium. Magnetic fields can lead to more efficient acceleration of the jet, in comparison to the pure-hydrodynamic case. A ``poloidal'' magnetic field (), tangent to the interface and parallel to the jet flow, produces both a stronger outward moving shock and a stronger inward moving rarefaction wave. This leads to a large velocity component normal to the interface in addition to acceleration tangent to the interface, and the jet is thus accelerated to larger Lorentz factors than those obtained in the…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · High-Energy Particle Collisions Research · Gamma-ray bursts and supernovae
