Particle energization in relativistic plasma turbulence: solenoidal versus compressive driving
arXiv:2106.00743 · doi:10.3847/1538-4357/ac222e
Abstract
Many high-energy astrophysical systems contain magnetized collisionless plasmas with relativistic particles, in which turbulence can be driven by an arbitrary mixture of solenoidal and compressive motions. For example, turbulence in hot accretion flows may be driven solenoidally by the magnetorotational instability or compressively by spiral shock waves. It is important to understand the role of the driving mechanism on kinetic turbulence and the associated particle energization. In this work, we compare particle-in-cell simulations of solenoidally driven turbulence with similar simulations of compressively driven turbulence. We focus on plasma that has an initial beta of unity, relativistically hot electrons, and varying ion temperature. Apart from strong large-scale density fluctuations in the compressive case, the turbulence statistics are similar for both drives, and the bulk plasma is described reasonably well by an isothermal equation of state. We find that nonthermal particle acceleration is more efficient when turbulence is driven compressively. In the case of relativistically hot ions, both driving mechanisms ultimately lead to similar power-law particle energy distributions, but over a different duration. In the case of non-relativistic ions, there is significant nonthermal particle acceleration only for compressive driving. Additionally, we find that the electron-to-ion heating ratio is less than unity for both drives, but takes a smaller value for compressive driving. We demonstrate that this additional ion energization is associated with the collisionless damping of large-scale compressive modes via perpendicular electric fields.
29 pages, 28 figures, accepted for publication in ApJ
References in corpus (24)
- First M87 Event Horizon Telescope Results. IV. Imaging the Central Supermassive Black Hole
- First M87 Event Horizon Telescope Results. V. Physical Origin of the Asymmetric Ring
- The Internal-Collision-Induced Magnetic Reconnection and Turbulence (ICMART) Model of Gamma-Ray Bursts
- First M87 Event Horizon Telescope Results. VIII. Magnetic Field Structure near The Event Horizon
- Particle acceleration in relativistic collisionless shocks: Fermi process at last?
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- First M87 Event Horizon Telescope Results. VII. Polarization of the Ring
- Compressible Turbulence in Galaxy Clusters: Physics and Stochastic Particle Re-acceleration
- Two-scale structure of the electron dissipation region during collisionless magnetic reconnection
- Magnetic field amplification in turbulent astrophysical plasmas
- Kinetic turbulence in relativistic plasma: from thermal bath to non-thermal continuum
- Parallel electric fields are inefficient drivers of energetic electrons in magnetic reconnection
- Magnetorotational Turbulence and Dynamo in a Collisionless Plasma
- Collisionless Reconnection in Magnetohydrodynamic and Kinetic Turbulence
- Hybrid-Kinetic Simulations of Ion Heating in Alfvénic Turbulence
- Measuring Collisionless Damping in Heliospheric Plasmas using Field-Particle Correlations
- The Event Horizon Telescope: exploring strong gravity and accretion physics
- Angular Momentum Transport and Particle Acceleration during Magnetorotational Instability in a Kinetic Accretion Disk
- Cosmic Ray Origins: An Introduction
- Particle acceleration in strong MHD turbulence
- Energy Dissipation in Magnetohydrodynamic Turbulence: Coherent Structures or "Nanoflares"?
- Diagnosing collisionless energy transfer using field-particle correlations: Alfven-Ion Cyclotron Turbulence
- Compressible Relativistic Magnetohydrodynamic Turbulence in Magnetically-Dominated Plasmas And Implications for A Strong-Coupling Regime
- Strong Coupling of Alfvén and Fast Modes in Compressible Relativistic Magnetohydrodynamic Turbulence in Magnetically-Dominated Plasmas
Cited by in corpus (17)
- Cosmic ray transport in large-amplitude turbulence with small-scale field reversals
- First-principles Fermi acceleration in magnetized turbulence
- Radiative Particle-in-Cell Simulations of Turbulent Comptonization in Magnetized Black-Hole Coronae
- Microphysical Plasma Relations from Special-relativistic Turbulence
- Non-resonant particle acceleration in strong turbulence: comparison to kinetic and MHD simulations
- Nonlinear aspects of stochastic particle acceleration
- Generalized entropy production in collisionless plasma flows and turbulence
- Energy partition between Alfvénic and compressive fluctuations in magnetorotational turbulence with near-azimuthal mean magnetic field
- Leaking Outside the Box: Kinetic Turbulence with Cosmic-Ray Escape
- Electron Heating in the Trans-Relativistic Perpendicular Shocks of Tilted Accretion Flows
- High-energy Emission from Turbulent Electron-ion Coronae of Accreting Black Holes
- First-principles measurement of ion and electron energization in collisionless accretion flow
- Yet Another Modification of Relativistic Magnetohydrodynamic Waves: Electron Thermal Inertia
- On The Nonthermal Power Laws In Magnetized Turbulent Plasmas
- Nature of Transonic Sub-Alfvénic Turbulence and Density Fluctuations in the Near-Sun Solar Wind: Insights from Magnetohydrodynamic Simulations and Nearly-Incompressible Models
- Nonthermal particle acceleration from maximum entropy in collisionless plasmas
- Heating of Magnetically Dominated Plasma by Alfvén-Wave Turbulence