posted on 2021-12-01, 10:40authored byKeren Duer, Nimrod Gavriel, Eli Galanti, Yohai Kaspi, Leigh N Fletcher, Tristan Guillot, Scott J Bolton, Steven M Levin, Sushil K Atreya, Davide Grassi, Andrew P Ingersoll, Cheng Li, Liming Li, Jonathan I Lunine, Glenn S Orton, Fabiano A Oyafuso, J Hunter Waite
Jupiter's atmosphere is dominated by multiple jet streams which are strongly tied to its 3D atmospheric circulation. Lacking a rigid bottom boundary, several models exist for how the meridional circulation extends into the planetary interior. Here, we show, collecting evidence from multiple instruments of the Juno mission, the existence of midlatitudinal meridional circulation cells which are driven by turbulence, similar to the Ferrel cells on Earth. Different than Earth, which contains only one such cell in each hemisphere, the larger, faster rotating Jupiter can incorporate multiple cells. The cells form regions of upwelling and downwelling, which we show are clearly evident in Juno's microwave data between latitudes urn:x-wiley:00948276:media:grl63251:grl63251-math-0001 and urn:x-wiley:00948276:media:grl63251:grl63251-math-0002. The existence of these cells is confirmed by reproducing the ammonia observations using a simplistic model. This study solves a long-standing puzzle regarding the nature of Jupiter's subcloud dynamics and provides evidence for eight cells in each Jovian hemisphere.
Plain Language Summary
The cloud layer of Jupiter is divided into dark and bright bands that are shaped by strong east-west winds. Such winds in planetary atmospheres are thought to be tied with a meridional circulation. The Juno mission collected measurements of Jupiter's atmosphere at various wavelengths, which penetrate the cloud cover. Here, we provide evidence, using the Juno data, of eight deep Jovian circulation cells in each hemisphere encompassing the east-west winds, gaining energy from atmospheric waves, and extending at least to a depth of hundreds of kilometers. Different than Earth, which has only one analogous cell in each hemisphere, known as a Ferrel cell, Jupiter can contain more cells due to its larger size and faster spin. To support the presented evidence, we modeled how ammonia gas would spread under the influence of such cells and compared it to the Juno measurements. The presented results shed light on the unseen flow structure beneath Jupiter's clouds.
History
Citation
Geophysical Research Letters, 48 (23), 2021, e2021GL095651. https://doi.org/10.1029/2021GL095651
This article is a companion to Ingersoll et al. (2021), https://doi.org/10.1029/2021GL095756.
Keren Duer and Nimrod Gavriel contributed equally to this work.