TY - JOUR
T1 - Microscopic processes in global relativistic jets containing helical magnetic fields
T2 - Dependence on jet radius
AU - Nishikawa, Ken Ichi
AU - Mizuno, Yosuke
AU - Gómez, Jose L.
AU - Duţan, Ioana
AU - Meli, Athina
AU - White, Charley
AU - Niemiec, Jacek
AU - Kobzar, Oleh
AU - Pohl, Martin
AU - Pe'er, Asaf
AU - Frederiksen, Jacob Trier
AU - Nordlund, Åke
AU - Sol, Helene
AU - Hardee, Philip E.
AU - Hartmann, Dieter H.
N1 - Publisher Copyright: © 2017 by the author.
PY - 2017/9/26
Y1 - 2017/9/26
N2 - In this study, we investigate the interaction of jets with their environment at a microscopic level, which is a key open question in the study of relativistic jets. Using small simulation systems during past research, we initially studied the evolution of both electron-proton and electron-positron relativistic jets containing helical magnetic fields, by focusing on their interactions with an ambient plasma. Here, using larger jet radii, we have performed simulations of global jets containing helical magnetic fields in order to examine how helical magnetic fields affect kinetic instabilities, such as the Weibel instability, the kinetic Kelvin-Helmholtz instability (kKHI) and the mushroom instability (MI). We found that the evolution of global jets strongly depends on the size of the jet radius. For example, phase bunching of jet electrons, in particular in the electron-proton jet, is mixed with a larger jet radius as a result of the more complicated structures of magnetic fields with excited kinetic instabilities. In our simulation, these kinetic instabilities led to new types of instabilities in global jets. In the electron-proton jet simulation, a modified recollimation occurred, and jet electrons were strongly perturbed. In the electron-positron jet simulation, mixed kinetic instabilities occurred early, followed by a turbulence-like structure. Simulations using much larger (and longer) systems are required in order to further thoroughly investigate the evolution of global jets containing helical magnetic fields.
AB - In this study, we investigate the interaction of jets with their environment at a microscopic level, which is a key open question in the study of relativistic jets. Using small simulation systems during past research, we initially studied the evolution of both electron-proton and electron-positron relativistic jets containing helical magnetic fields, by focusing on their interactions with an ambient plasma. Here, using larger jet radii, we have performed simulations of global jets containing helical magnetic fields in order to examine how helical magnetic fields affect kinetic instabilities, such as the Weibel instability, the kinetic Kelvin-Helmholtz instability (kKHI) and the mushroom instability (MI). We found that the evolution of global jets strongly depends on the size of the jet radius. For example, phase bunching of jet electrons, in particular in the electron-proton jet, is mixed with a larger jet radius as a result of the more complicated structures of magnetic fields with excited kinetic instabilities. In our simulation, these kinetic instabilities led to new types of instabilities in global jets. In the electron-proton jet simulation, a modified recollimation occurred, and jet electrons were strongly perturbed. In the electron-positron jet simulation, mixed kinetic instabilities occurred early, followed by a turbulence-like structure. Simulations using much larger (and longer) systems are required in order to further thoroughly investigate the evolution of global jets containing helical magnetic fields.
KW - Global jets
KW - Helical magnetic fields
KW - Kinetic instabilities
KW - Kink-like instability
KW - Particle-in-cell simulations
KW - Polarized radiation
KW - Recollimation shocks
KW - Relativistic jets
UR - http://www.scopus.com/inward/record.url?scp=85030856847&partnerID=8YFLogxK
U2 - 10.3390/galaxies5040058
DO - 10.3390/galaxies5040058
M3 - مقالة
SN - 2075-4434
VL - 5
JO - Galaxies
JF - Galaxies
IS - 4
M1 - 58
ER -