4.7 Article

Understanding Uniturbulence: Self-cascade of MHD Waves in the Presence of Inhomogeneities

Journal

ASTROPHYSICAL JOURNAL
Volume 882, Issue 1, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.3847/1538-4357/ab357c

Keywords

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Funding

  1. KU Leuven [GOA-2015-014]
  2. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program [724326]

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It is widely accepted in the MHD turbulence community that the nonlinear cascade of wave energy requires counter propagating Alfvenic wave packets, along some mean magnetic field. This fact is an obvious outcome of the MHD equations under the assumptions of incompressibility and homogeneity. Despite attempts to relax these assumptions in the context of MHD turbulence, the central idea of turbulence generation persists. However, once the assumptions of incompressiblity and homogeneity break down, the generally accepted picture of turbulent cascade generation is not universal. In this paper, we show that perpendicular inhomogeneities (across the mean magnetic field) lead to propagating wave solutions that are necessarily described by co-propagating Elsasser fields, already in the incompressible case. One simple example of these wave solutions is the surface Alfven wave on a planar discontinuity across the magnetic field. We show through numerical simulations how the nonlinear self deformation of these unidirectionally propagating waves leads to a cascade of wave energy across the magnetic field. The existence of this type of unidirectional cascade might have an additional strong effect on the turbulent dissipation rate of dominantly outward-propagating Alfvenic waves in structured plasma, as in the solar corona and solar wind.

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