Alfven Wave Collisions, The Fundamental Building Block of Plasma Turbulence I: Asymptotic Solution
Gregory G. Howes, Kevin D. Nielson

TL;DR
This paper derives an asymptotic analytical solution for the nonlinear interaction of counterpropagating Alfven waves, revealing the fundamental process underlying plasma turbulence energy transfer without a parallel cascade.
Contribution
It presents the first asymptotic analytical solution for Alfven wave collisions, clarifying the nonlinear energy transfer mechanism in plasma turbulence.
Findings
Secondary magnetic fluctuations are generated without parallel variation.
Tertiary Alfven waves grow linearly with time due to resonant interactions.
No parallel cascade occurs in the energy transfer process.
Abstract
The nonlinear interaction between counterpropagating Alfven waves is the physical mechanism underlying the cascade of energy to small scales in astrophysical plasma turbulence. Beginning with the equations for incompressible MHD, an asymptotic analytical solution for the nonlinear evolution of these Alfven wave collisions is derived in the weakly nonlinear limit. The resulting qualitative picture of nonlinear energy transfer due to this mechanism involves two steps: first, the primary counterpropagating Alfven waves interact to generate an inherently nonlinear, purely magnetic secondary fluctuation with no parallel variation; second, the two primary waves each interact with this secondary fluctuation to transfer energy secularly to two tertiary Alfven waves. These tertiary modes are linear Alfven waves with the same parallel wavenumber as the primary waves, indicating the lack of a…
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