EPSC Abstracts
Vol. 19, EPSC2026-651, 2026, updated on 02 Jul 2026
https://doi.org/10.5194/epsc2026-651
Europlanet Science Congress 2026
© Author(s) 2026. This work is distributed under
the Creative Commons Attribution 4.0 License.
Oral | Monday, 07 Sep, 09:36–09:48 (CEST)| Room Jupiter (Jazz 1 & 2)
Evidence for Tilted Columnar Cells Driving Jupiter's Equatorial Jets
Nimrod Gavriel1,2, Keren Duer-Milner3,4, Eli Galanti1, Fabiano A. Oyafuso5, Cheng Li6, Steven M. Levin5, Scott J. Bolton7, and Yohai Kaspi1
Nimrod Gavriel et al.
  • 1Weizmann Institute of Science, Earth and Planetary Sciences, Rehovot, Israel
  • 2Department of Earth and Planetary Science, University of California, Berkeley, CA, USA (nimrod.gavriel@berkeley.edu)
  • 3Leiden Observatory, Leiden University, Leiden, the Netherlands
  • 4SRON Netherlands Institute for Space Research, Leiden, the Netherlands
  • 5NASA Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA, USA
  • 6Department of Climate and Space Sciences and Engineering, University of Michigan, Ann Arbor, MI, USA
  • 7Southwest Research Institute, San Antonio, TX, USA

In rapidly rotating planets, convection driven by residual heat from planetary formation is predicted to organize into columnar circulations aligned with the rotation axis. Such motions have long been proposed to play a central role in giant-planet dynamics, including the maintenance of Jupiter's equatorial superrotation and adjacent westward jets, but their expected depth makes them difficult to observe directly. We analyze microwave brightness-temperature measurements from the Juno Microwave Radiometer (MWR), using multiple channels that probe atmospheric layers down to approximately 100 bar in Jupiter's equatorial region. The data reveal coherent hemispheric asymmetries and characteristic spatial scales consistent with expectations from rapidly rotating deep convection. Comparisons with deep convection simulations reproduce similar signatures and support the interpretation. Cross-depth correlations further suggest axially extended, tilted convective structures. Together, these results provide observational constraints on the geometry and spacing of Jupiter's deep convective motions and their connection to the planet's large-scale atmospheric circulation.

How to cite: Gavriel, N., Duer-Milner, K., Galanti, E., Oyafuso, F. A., Li, C., Levin, S. M., Bolton, S. J., and Kaspi, Y.: Evidence for Tilted Columnar Cells Driving Jupiter's Equatorial Jets, Europlanet Science Congress 2026, The Hague, The Netherlands, 7–11 Sep 2026, EPSC2026-651, https://doi.org/10.5194/epsc2026-651, 2026.