The dynamics of the two-dimensional (2D) state in driven three-dimensional (3D) incompressible magnetohydrodynamic turbulence is investigated through high-resolution direct numerical simulations and in the presence of an external magnetic field at various intensities. For such a flow the 2D state (or slow mode) and the 3D modes correspond, respectively, to spectral fluctuations in the plane k∥=0 and in the area k∥>0. It is shown that if initially the 2D state is set to zero it becomes nonnegligible in few turnover times, particularly when the external magnetic field is strong. The maintenance of a large-scale driving leads to a break for the energy spectra of 3D modes; when the driving is stopped, the previous break is removed and a decay phase emerges with Alfvénic fluctuations. For a strong external magnetic field the energy at large perpendicular scales lies mainly in the 2D state, and in all situations a pinning effect is observed at small scales. © 2011 American Physical Society.
CITATION STYLE
Bigot, B., & Galtier, S. (2011). Two-dimensional state in driven magnetohydrodynamic turbulence. Physical Review E - Statistical, Nonlinear, and Soft Matter Physics, 83(2). https://doi.org/10.1103/PhysRevE.83.026405
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