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dc.contributor.authorSánchez Lavega, Agustín
dc.contributor.authorGarcía Melendo, Enrique José
dc.contributor.authordel Rio Gaztelurrutia, Teresa
dc.contributor.authorHueso, Ricardo
dc.contributor.authorSimon, Amy
dc.contributor.authorWong, Michael
dc.contributor.authorAhrens Velásquez, Kevin
dc.contributor.authorSoria Guerrero, Manel
dc.contributor.authorBarry, Trevor
dc.contributor.authorGo, Christopher
dc.contributor.authorFoster, Clyde
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament de Física
dc.date.accessioned2021-05-18T12:32:23Z
dc.date.available2021-10-27T00:28:29Z
dc.date.issued2021-04-26
dc.identifier.citationSánchez, A. [et al.]. Interaction of Saturn's Hexagon with convective storms. "Geophysical research letters", 26 Abril 2021, vol. 48, núm. 8, p. e2021GL092461/1-e2021GL092461/16.
dc.identifier.issn0094-8276
dc.identifier.urihttp://hdl.handle.net/2117/345836
dc.description.abstractIn March 2020 a convective storm erupted at planetographic latitude 76°N in the southern flank of Saturn’s long-lived hexagonal wave. The storm reached a zonal size of 4,500 km and developed a tail extending zonally 33,000 km. Two new short-lived storms erupted in May in the hexagon edge. These storms formed after the convective storms that took place in 2018 in nearby latitudes. There were no noticeable changes in the zonal profile of Saturn's polar winds in 2018-2020. Measurements of the longitude position of the vertices of the hexagon throughout this period yield a value for its period of rotation equal to that of System III of radio-rotation measured at the time of Voyagers. We report changes in the hexagon clouds related to the activity of the storms. Our study reinforces the idea that Saturn’s hexagon is a well rooted structure with a possible direct relationship with the bulk rotation of the planet.
dc.description.sponsorshipThis work has been supported by the Spanish project AYA2015-65041-P and PID2019-109467GB444 I00 (MINECO/FEDER, UE) and Grupos Gobierno Vasco IT1366-19. EGM is Serra Hunter Fellow atUPC. This work has used data acquired from the NASA/ESA HST Space Telescope, which is operated by the Association of Universities for Research in Astronomy, Inc., under NASA contract NAS 5-26555. These HST observations are associated with program GO/DD 15262. EGM, MS, KAV and ASL thankfully acknowledge the computer resources at Mare Nostrum and the technical support provided by Barcelona Supercomputing Center (AECT-2019-2-0006). We thank all the observers who have contributed with their images to the monitoring of the atmospheric activity on Saturn during the years 2019 and 2020 and whose list and images can be found in the ALPO452 Japan and PVOL databases. Part of the amateur observations analyzed were obtained through a collaboration with Europlanet 2024 RI. Europlanet 2024 RI has received funding from the European Union’s Horizon 2020 research and innovation program under grant agreement No 871149.
dc.language.isoeng
dc.subjectÀrees temàtiques de la UPC::Física
dc.subject.lcshSaturn (Planet)
dc.subject.lcshStorms
dc.titleInteraction of Saturn’s Hexagon with convective storms
dc.typeArticle
dc.subject.lemacSaturn (Planeta)
dc.subject.lemacTempestes
dc.contributor.groupUniversitat Politècnica de Catalunya. TUAREG - Turbulence and Aerodynamics in Mechanical and Aerospace Engineering Research Group
dc.identifier.doi10.1029/2021GL092461
dc.description.peerreviewedPeer Reviewed
dc.relation.publisherversionhttps://agupubs.onlinelibrary.wiley.com/doi/abs/10.1029/2021GL092461
dc.rights.accessOpen Access
local.identifier.drac30958983
dc.description.versionPostprint (author's final draft)
local.citation.authorSánchez, A.; Garcia-Melendo, E.; Del Río , T.; Hueso, R.; Simon, A.; Wong, M.; Ahrens-Velasquez, K.; Soria, M.; Barry, T.; Go, C.; Foster, C.
local.citation.publicationNameGeophysical research letters
local.citation.volume48
local.citation.number8
local.citation.startingPagee2021GL092461/1
local.citation.endingPagee2021GL092461/16


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