The interaction of turbulence, magnetic islands and zonal fields in fluid plasma models with cubic non-linearities
Daniele Villa, Nicolas Dubuit, Olivier Agullo, Xavier Garbet

TL;DR
This paper investigates how turbulence, magnetic islands, and large-scale structures interact in fluid plasma models with cubic nonlinearities, revealing their roles in magnetic island formation, growth, and impact on pressure profiles.
Contribution
It demonstrates the widespread occurrence of magnetic islands driven by turbulence and elucidates the interactions among turbulence, magnetic islands, zonal flows, and currents in fluid plasma models.
Findings
Magnetic islands are common across various conditions.
Zonal current growth is linearly related to magnetic island growth.
Zonal flow shears influence island radial extension.
Abstract
It is shown that magnetic islands generated by pressure-gradient-driven turbulence are common across a wide range of conditions. The interaction among turbulence, magnetic island and other large scale structures (the zonal flow and the zonal current), largely determines the dynamics of the system. Turbulence takes a background role, providing energy to the large-scale structures, without influencing their evolution directly. The growth of the zonal current is linearly related to that of the magnetic island, while the zonal flow has a strongly sheared region where the island has its maximum radial extension. The zonal current is found to slow down the formation of large-scale magnetic islands, while the zonal flow is needed to have the system move its energy to larger and larger scales. The driving instability in the system is the fluid Kinetic Ballooning Mode (KBM) instability at high…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Magnetic confinement fusion research · Ionosphere and magnetosphere dynamics
