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Details

Autor(en) / Beteiligte
Titel
Observations and numerical modelling of a convective disturbance in a large-scale cyclone in Jupiter’s South Temperate Belt
Ist Teil von
  • Icarus (New York, N.Y. 1962), 2020-01, Vol.336, p.113475, Article 113475
Ort / Verlag
Elsevier Inc
Erscheinungsjahr
2020
Link zum Volltext
Quelle
Elsevier ScienceDirect Journals Complete
Beschreibungen/Notizen
  • Moist convective storms in Jupiter develop frequently and can trigger atmospheric activity of different scales, from localized storms to planetary-scale disturbances including convective activity confined inside a larger meteorological system. In February 2018 a series of convective storms erupted in Jupiter’s South Temperate Belt (STB) (planetocentric latitudes from −23° to −29.5°). This occurred inside an elongated cyclonic region known popularly as the STB Ghost, close to the large anticyclone Oval BA, resulting in the clouds from the storms being confined to the cyclone. The initial storms lasted only a few days but they generated abundant enduring turbulence. They also produced dark features, possibly partially devoid of clouds, that circulated around the cyclone over the first week. The subsequent activity developed over months and resulted in two main structures, one of them closely interacting with Oval BA and the other one being expelled to the west. Here we present a study of this meteorological activity based on daily observations provided by the amateur community, complemented by observations obtained from PlanetCam UPV/EHU at Calar Alto Observatory, the Hubble Space Telescope and by JunoCam on the Juno spacecraft. We also perform numerical simulations with the EPIC General Circulation Model to reproduce the phenomenology observed. The successful simulations require a complex interplay between the Ghost, the convective eruptions and Oval, and they demonstrate that water moist convection was the source of the initial storms. A simple scale comparison with other moist convective storms that can be observed in the planet in visible and methane absorption band images strongly suggests that most of these storms are powered by water condensation instead of ammonia. •Convective disturbance inside a cyclone in Jupiter during 2018 with 3 cores.•The disturbance fully perturbed the cyclone for months.•High-frequency observations combining amateur, PlanetCam, HST and JunoCam images.•Complex interaction between the cyclone, Oval BA and the convective storms.•Nonlinear simulations show that water moist convection was the source of energy.
Sprache
Englisch
Identifikatoren
ISSN: 0019-1035
eISSN: 1090-2643
DOI: 10.1016/j.icarus.2019.113475
Titel-ID: cdi_crossref_primary_10_1016_j_icarus_2019_113475
Format
Schlagworte
Atmospheres, Dynamics, Jupiter

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