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Untangling the importance of dynamic and thermodynamic drivers for wet and dry spells across the Tropical Andes

Bibliographic Data

ID15548801
AuthorsCornelia Klein (0000-0001-6686-0458, Universität Innsbruck, corresponding author), Lorenz Hänchen (0000-0002-8507-6543, Universität Innsbruck), Emily Potter (0000-0002-4171-3002), Emily R Potter (0000-0001-5273-1292, Universität Innsbruck), Clémentine Junquas (0000-0003-1542-5602, Centre National de la Recherche Scientifique), Bethan L Harris (0000-0002-0166-6256, UK Centre for Ecology & Hydrology), Fabien Maussion (0000-0002-3211-506X, Universität Innsbruck)
Year2023
Volume18
Issue3
Pages034002-034002
Publication date2023-02-13
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/acb72b
OpenAlexW4320492968
LanguageEN
References cited32

Andean vegetation and agriculture depend on the patterns of rainfall during the South American monsoon. However, our understanding on the importance of dynamic (upper-level wind circulation) as compared to thermodynamic (Amazon basin moisture) drivers for Andes rainfall remains limited. This study examines the effect of these drivers on 3–7 day wet and dry spells across the Tropical Andes and assesses resulting impacts on vegetation. Using reanalysis and remote sensing data from 1985–2018, we find that both dynamic and thermodynamic drivers play a role in determining the rainfall patterns. Notably, we show that the upper-level wind is an important driver of rainfall across the entire Tropical Andes mountain range, but not in the Amazon lowlands, suggesting a crucial role of topography in this relationship. From thermodynamic perspective, we find wet spell conditions to be associated with increased moisture along the Andes’ eastern foothills accompanied by a strengthened South American low-level jet, with moisture lifted into the Andes via topography and convection for all considered regions. Our results suggest that while changes in Amazon basin moisture dominate rainfall changes on daily time scales associated with three day spells, upper-level dynamics play a more important role on the synoptic time scale of 5–7 day spells. Considering impacts on the ground, we find that only 5–7 day spells in the semi-arid Andes have a prolonged effect on vegetation. Our study emphasizes the need to consider both dynamic and thermodynamic drivers when estimating rainfall changes in the Tropical Andes, including in the context of future climate projections

Amazon rainforest · Amazonian · Arid · Climate change · Climatology · Foothills · Geography · Tropical vegetation · Tropics · Vegetation (pathology · Climate variability and models · Environmental Science · Meteorological Phenomena and Simulations · Plant Water Relations and Carbon Dynamics · Ecology · Geology

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Citation velocityhistorical
Highly citedNo

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