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Global-scale equatorial Rossby waves as an essential component of solar internal dynamics
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The Sun's complex dynamics is controlled by buoyancy and rotation in the convection zone and by magnetic forces in the atmosphere and corona. While small-scale solar convection is well understood, the dynamics of large-scale flows in the solar convection zone is not explained by theory or simulations. Waves of vorticity due to the Coriolis force, known as Rossby waves, are expected to remove energy out of convection at the largest scales. Here we unambiguously detect and characterize retrograde-propagating vorticity waves in the shallow subsurface layers of the Sun at angular wavenumbers below fifteen, with the dispersion relation of textbook sectoral Rossby waves. The waves have lifetimes of several months, well-defined mode frequencies below 200 nHz in a co-rotating frame, and eigenfunctions of vorticity that peak at the equator. Rossby waves have nearly as much vorticity as the convection at the same scales, thus they are an essential component of solar dynamics. We find a transition from turbulence-like to wave-like dynamics around the Rhines scale of angular wavenumber of twenty; this might provide an explanation for the puzzling deficit of kinetic energy at the largest spatial scales.
Forward citations
Cited by 2 Pith papers
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Numerical simulations of oscillations for axisymmetric solar backgrounds with differential rotation and gravity
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Properties of solar Rossby waves from normal mode coupling and characterizing its systematics
A 20-year normal-mode coupling analysis of MDI and HMI data characterizes solar Rossby mode frequencies, linewidths, and amplitudes, and validates a spatial leakage correction.
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