Dynamical constraints on the vertical structure of Jupiter’s polar cyclones

N Nimrod Gavriel (Department of Earth and Planetary Sciences) Y Yohai Kaspi (Department of Earth and Planetary Sciences)

Abstract

Jupiter’s poles feature striking polygons of cyclones that drift westward over time, a motion governed by β -drift (vortex motion caused by the latitudinal variation of the Coriolis force). This study investigates how β -drift and the resulting westward motion depend on the depth of these cyclones. Counterintuitively, shallower cyclones drift more slowly, a consequence of stronger vortex stretching. By employing a 2D quasi-geostrophic model of Jupiter’s polar regions, we constrain the cyclones’ deformation radius, a key parameter that serves as a proxy for their vertical extent, required to replicate the observed westward drift. We then explore possible vertical structures and the static stability of the poles by solving the eigenvalue problem that links the 2D model to a 3D framework, matching the constrained deformation radius. These findings provide a foundation for interpreting upcoming Juno microwave measurements of Jupiter’s north pole, offering insights into the static stability and vertical structure of the polar cyclones. Thus, by leveraging long-term motion as a constraint on vertical dynamics, this work sets the stage for advancing our understanding of the formation and evolution of Jupiter’s enigmatic polar cyclones.

Article Details

Volume / Issue Vol. 122, Issue 44
Published November 04, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (2)

N

Nimrod Gavriel

Department of Earth and Planetary Sciences

Y

Yohai Kaspi

Department of Earth and Planetary Sciences