Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence IV: Laboratory Experiment
arXiv:1306.1130 · doi:10.1063/1.4813242
Abstract
Turbulence is a phenomenon found throughout space and astrophysical plasmas. It plays an important role in solar coronal heating, acceleration of the solar wind, and heating of the interstellar medium. Turbulence in these regimes is dominated by Alfven waves. Most turbulence theories have been established using ideal plasma models, such as incompressible MHD. However, there has been no experimental evidence to support the use of such models for weakly to moderately collisional plasmas which are relevant to various space and astrophysical plasma environments. We present the first experiment to measure the nonlinear interaction between two counterpropagating Alfven waves, which is the building block for astrophysical turbulence theories. We present here four distinct tests that demonstrate conclusively that we have indeed measured the daughter Alfven wave generated nonlinearly by a collision between counterpropagating Alfven waves.
9 pages, 7 figures (12 panels), accepted for publication in Physics of Plasmas
References in corpus (5)
- Small Scale Energy Cascade of the Solar Wind Turbulence
- Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence I: Asymptotic Solution
- Toward Astrophysical Turbulence in the Laboratory
- Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence II: Numerical Solution
- Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence III: Theory for Experimental Design
Cited by in corpus (18)
- Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence I: Asymptotic Solution
- Predicted Impacts of Proton Temperature Anisotropy on Solar Wind Turbulence
- A Dynamical Model of Plasma Turbulence in the Solar Wind
- Critical Balance and the Physics of MHD Turbulence
- Laboratory Space Physics: Investigating the Physics of Space Plasmas in the Laboratory
- Spatially Localized Particle Energization by Landau Damping in Current Sheets Produced by Strong Alfven Wave Collisions
- The Inherently Three-Dimensional Nature of Magnetized Plasma Turbulence
- Nonlinear energy transfer and current sheet development in localized Alfven wavepacket collisions in the strong turbulence limit
- Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence III: Theory for Experimental Design
- Weak Alfvénic turbulence in relativistic plasmas. Part 1. Dynamical equations and basic dynamics of interacting resonant triads
- The Velocity-Space Signature of Transit-Time Damping
- The Alfvenic nature of energy transfer mediation in localized, strongly nonlinear Alfven wavepacket collisions
- Star-Planet Interaction: Wave Structures and Wing-Wing Interaction
- The Development of Magnetic Field Line Wander by Plasma Turbulence
- Experimental study of Alfvén wave reflection from an Alfvén-speed gradient relevant to the solar coronal holes
- Analysis of Magnetic Fields in Inertial Alfven Wave Collisions
- Initiation of Alfvénic turbulence by Alfven wave collisions: A numerical study
- Transport of electrons in tangled magnetic fields