Autumnal equinox shift in Arctic surface energy budget: Beaufort‐Chukchi Seas case study

dc.contributor.author Carrigg, Joseph
dc.contributor.author Yu, Lisan
dc.contributor.author Menezes, Viviane V.
dc.contributor.author Chen, Yanxu
dc.date.accessioned 2024-12-24T17:09:59Z
dc.date.available 2024-12-24T17:09:59Z
dc.date.issued 2024-05-27
dc.description Author Posting. © American Geophysical Union, 2024. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Carrigg, J., Yu, L., Menezes, V., & Chen, Y. (2024). Autumnal equinox shift in Arctic surface energy budget: Beaufort‐Chukchi Seas case study. Journal of Geophysical Research: Oceans, 129(5), e2023JC020788, https://doi.org/10.1029/2023jc020788.
dc.description.abstract This study examines the annual cycle of the Surface Energy Budget (SEB) in the Beaufort-Chukchi seas, focusing on the autumn transition. Shipboard measurements from NASA's Salinity and Stratification at the Sea Ice Edge (SASSIE) experiment (8 September–2 October 2022) and satellite flux analysis for the entire 2022 were utilized to provide a comprehensive perspective of the SEB's seasonal dynamics. An important finding is the alignment of SEB’s autumnal transition with the September 22 equinox, marking the onset of prolonged Arctic darkness. This transition involved a shift from the summertime radiative heating to cooling conditions, characterized by outgoing longwave radiation surpassing incoming solar radiation and a notable increase in synoptic turbulent latent and sensible heat flux variability. The increased turbulent heat fluxes after the equinox were associated with increased occurrences of short-duration cold air outbreaks. These outbreaks seem to originate from cold mesoscale surface winds transitioning from cooling landmasses or ice caps to the warmer seas, driven by differential cooling rates between land/ice and ocean as solar irradiance declined. Turbulent heat losses, outpacing longwave emission by more than fivefold, accelerated ocean surface cooling in the subsequent 2 months, leading to the complete freeze-up of the Beaufort-Chukchi seas by late November. These findings underscore the substantial influence of astronomical seasons on the SEB, emphasizing their crucial role in Arctic climate dynamics.
dc.description.sponsorship JC would like to acknowledge the WHOI Summer Student Fellowship for its support of this summer research project. LY extends sincere thanks to the NOAA Climate Program Office (Grant NA20OAR4310370) and the NASA Ocean Vector Wind Science Team (OVWST) program (Grant 80NSSC23K0981) for funding support related to Arctic surface fluxes and winds research. Additionally, LY acknowledges the NASA Making Earth System Data Records for Use in Research Environments (MEaSUREs) program (Grant 80NSSC18M0079) and the NOAA Ocean Monitoring and Observing (GOMO) program (Grant NA19OAR4320074) for funding support to the development of OAFlux2 flux products. VVM was supported by the NASA SASSIE project (Grant 80NSSC21K0832).
dc.identifier.citation Carrigg, J., Yu, L., Menezes, V., & Chen, Y. (2024). Autumnal equinox shift in Arctic surface energy budget: Beaufort‐Chukchi Seas case study. Journal of Geophysical Research: Oceans, 129(5), e2023JC020788.
dc.identifier.doi 10.1029/2023jc020788
dc.identifier.uri https://hdl.handle.net/1912/71104
dc.publisher American Geophysical Union
dc.relation.uri https://doi.org/10.1029/2023jc020788
dc.subject Arctic Ocean
dc.subject Beaufort-Chukchi seas
dc.subject Surface energy budget
dc.subject Energy autumn transition
dc.subject Autumnal equinox
dc.subject Cold air outbreaks
dc.title Autumnal equinox shift in Arctic surface energy budget: Beaufort‐Chukchi Seas case study
dc.type Article
dspace.entity.type Publication
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