Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave
Abstract A heatwave in Siberia starting in January 2020, initiated by a wave 5 pattern in the jet stream, caused the surface air temperature to reach 38°C in June with important impacts on ecosystems and water resources. Here we show that this dynamical setup started a chain of events leading to thi...
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Format: | Article |
Language: | English |
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Wiley
2022-12-01
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Series: | AGU Advances |
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Online Access: | https://doi.org/10.1029/2021AV000619 |
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author | L. Gloege K. Kornhuber O. Skulovich I. Pal S. Zhou P. Ciais P. Gentine |
author_facet | L. Gloege K. Kornhuber O. Skulovich I. Pal S. Zhou P. Ciais P. Gentine |
author_sort | L. Gloege |
collection | DOAJ |
description | Abstract A heatwave in Siberia starting in January 2020, initiated by a wave 5 pattern in the jet stream, caused the surface air temperature to reach 38°C in June with important impacts on ecosystems and water resources. Here we show that this dynamical setup started a chain of events leading to this long‐lasting and unusual event: positive temperature anomalies over Siberia caused early snowmelt, leading to substantial earlier vegetation greening accompanied by decreased soil moisture and browning in the summer. This soil moisture depletion and vegetation browning, in turn, increased the impact of the heatwave on the atmosphere through a land‐atmosphere feedback. This line of evidence suggests that large‐scale dynamics and land‐atmosphere interactions both contributed to the magnitude and persistence of this record‐breaking heatwave, in addition to the background global warming impact on mean temperature. Here, we describe a carry‐over effect in Siberia from a spring positive temperature anomaly into summer dryness and browning, with retroaction into the atmosphere. With the Arctic warming twice as fast as the global average, this event foreshadows the future of northern latitude continents and emphasizes the importance of both atmospheric dynamics and land‐atmosphere interactions in the future as the climate changes. More frequent similar events could have major consequences on the carbon cycle in these carbon‐rich northern latitude regions. |
first_indexed | 2024-04-11T05:00:32Z |
format | Article |
id | doaj.art-08cebb7abddb4d7d8aa63898f930e602 |
institution | Directory Open Access Journal |
issn | 2576-604X |
language | English |
last_indexed | 2024-04-11T05:00:32Z |
publishDate | 2022-12-01 |
publisher | Wiley |
record_format | Article |
series | AGU Advances |
spelling | doaj.art-08cebb7abddb4d7d8aa63898f930e6022022-12-26T00:32:38ZengWileyAGU Advances2576-604X2022-12-0136n/an/a10.1029/2021AV000619Land‐Atmosphere Cascade Fueled the 2020 Siberian HeatwaveL. Gloege0K. Kornhuber1O. Skulovich2I. Pal3S. Zhou4P. Ciais5P. Gentine6Columbia University NY New York USAThe Earth Institute Columbia University NY New York USAColumbia University NY New York USAThe Earth Institute Columbia University NY New York USAColumbia University NY New York USALaboratoire des Sciences du Climat et de l’Environnement Saclay FranceColumbia University NY New York USAAbstract A heatwave in Siberia starting in January 2020, initiated by a wave 5 pattern in the jet stream, caused the surface air temperature to reach 38°C in June with important impacts on ecosystems and water resources. Here we show that this dynamical setup started a chain of events leading to this long‐lasting and unusual event: positive temperature anomalies over Siberia caused early snowmelt, leading to substantial earlier vegetation greening accompanied by decreased soil moisture and browning in the summer. This soil moisture depletion and vegetation browning, in turn, increased the impact of the heatwave on the atmosphere through a land‐atmosphere feedback. This line of evidence suggests that large‐scale dynamics and land‐atmosphere interactions both contributed to the magnitude and persistence of this record‐breaking heatwave, in addition to the background global warming impact on mean temperature. Here, we describe a carry‐over effect in Siberia from a spring positive temperature anomaly into summer dryness and browning, with retroaction into the atmosphere. With the Arctic warming twice as fast as the global average, this event foreshadows the future of northern latitude continents and emphasizes the importance of both atmospheric dynamics and land‐atmosphere interactions in the future as the climate changes. More frequent similar events could have major consequences on the carbon cycle in these carbon‐rich northern latitude regions.https://doi.org/10.1029/2021AV000619heatwavesoil moisturesnow coverleaf area indexcarbon cycle |
spellingShingle | L. Gloege K. Kornhuber O. Skulovich I. Pal S. Zhou P. Ciais P. Gentine Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave AGU Advances heatwave soil moisture snow cover leaf area index carbon cycle |
title | Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave |
title_full | Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave |
title_fullStr | Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave |
title_full_unstemmed | Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave |
title_short | Land‐Atmosphere Cascade Fueled the 2020 Siberian Heatwave |
title_sort | land atmosphere cascade fueled the 2020 siberian heatwave |
topic | heatwave soil moisture snow cover leaf area index carbon cycle |
url | https://doi.org/10.1029/2021AV000619 |
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