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Updated: Dec 19, 2025

Scattering And Absorption of Light in Planetary Regoliths
Published on: July 1, 2019
Deep rotating convection generates the polar hexagon on Saturn
Rakesh K Yadav1, Jeremy Bloxham2
1Department of Earth and Planetary Sciences, Harvard University, Cambridge, MA 02138 rakesh_yadav@fas.harvard.edu.
Abstract:
Numerous land- and space-based observations have established that Saturn has a persistent hexagonal flow pattern near its north pole. While observations abound, the physics behind its formation is still uncertain. Although several phenomenological models have been able to reproduce this feature, a self-consistent model for how such a large-scale polygonal jet forms in the highly turbulent atmosphere of Saturn is lacking. Here, we present a three-dimensional (3D) fully nonlinear anelastic simulation of deep thermal convection in the outer layers of gas giant planets that spontaneously generates giant polar cyclones, fierce alternating zonal flows, and a high-latitude eastward jet with a polygonal pattern. The analysis of the simulation suggests that self-organized turbulence in the form of giant vortices pinches the eastward jet, forming polygonal shapes. We argue that a similar mechanism is responsible for exciting Saturn's hexagonal flow pattern.
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