Nonlinear energy transfer and current sheet development in localized Alfven wavepacket collisions in the strong turbulence limit
arXiv:1705.07046 · doi:10.1017/S0022377817001003
Abstract
In space and astrophysical plasmas, turbulence is responsible for transferring energy from large scales driven by violent events or instabilities, to smaller scales where turbulent energy is ultimately converted into plasma heat by dissipative mechanisms. The nonlinear interaction between counterpropagating Alfven waves, denoted Alfven wave collisions, drives this turbulent energy cascade, as recognized by early work with incompressible magnetohydrodynamic (MHD) equations. Recent work employing analytical calculations and nonlinear gyrokinetic simulations of Alfven wave collisions in an idealized periodic initial state have demonstrated the key properties that strong Alfven wave collisions mediate effectively the transfer of energy to smaller perpendicular scales and self-consistently generate current sheets. For the more realistic case of the collision between two initially separated Alfven wavepackets, we use a nonlinear gyrokinetic simulation to show here that these key properties persist: strong Alfven wavepacket collisions indeed facilitate the perpendicular cascade of energy and give rise to current sheets. Furthermore, the evolution shows that nonlinear interactions occur only while the wavepackets overlap, followed by a clean separation of the wavepackets with straight uniform magnetic fields and the cessation of nonlinear evolution in between collisions, even in the gyrokinetic simulation presented here which resolves dispersive and kinetic effects beyond the reach of the MHD theory.
19 pages, 7 figures
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- Role of reconnection in inertial kinetic-Alfven turbulence
- The Importance of Electron Landau Damping for the Dissipation of Turbulent Energy in Terrestrial Magnetosheath Plasma
- Nonlinear energy transfer and current sheet development in localized Alfven wavepacket collisions in the strong turbulence limit
- The Velocity-Space Signature of Transit-Time Damping
- The Alfvenic nature of energy transfer mediation in localized, strongly nonlinear Alfven wavepacket collisions
- Turbulent regimes in collisions of 3D Alfvén-wave packets
- Machine-Learning Characterization of Intermittency in Relativistic Pair Plasma Turbulence: Single and Double Sheet Structures
- Heating of Magnetically Dominated Plasma by Alfvén-Wave Turbulence
- Transport of electrons in tangled magnetic fields
- Initiation of Alfvénic turbulence by Alfven wave collisions: A numerical study