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Extremely wet summer events enhance permafrost thaw for multiple years in Siberian tundra
by
Hamm, Alexandra
, Karsanaev, Sergey V.
, Magnússon, Rúna Í.
, Kleijn, David
, Frampton, Andrew
, Heijmans, Monique M. P. D.
, Limpens, Juul
, Maximov, Trofim C.
in
704/106/125
/ 704/106/694
/ 704/242
/ Air temperature
/ Arctic Regions
/ Carbon
/ Climate
/ Climate change
/ Frozen ground
/ Global warming
/ Greenhouse effect
/ Greenhouse gases
/ Humanities and Social Sciences
/ Hydrology
/ multidisciplinary
/ Permafrost
/ Permafrost thaws
/ Positive feedback
/ Rainfall
/ Science
/ Science (multidisciplinary)
/ Seasons
/ Soil
/ Summer
/ Taiga & tundra
/ Thawing
/ Tundra
2022
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Extremely wet summer events enhance permafrost thaw for multiple years in Siberian tundra
by
Hamm, Alexandra
, Karsanaev, Sergey V.
, Magnússon, Rúna Í.
, Kleijn, David
, Frampton, Andrew
, Heijmans, Monique M. P. D.
, Limpens, Juul
, Maximov, Trofim C.
in
704/106/125
/ 704/106/694
/ 704/242
/ Air temperature
/ Arctic Regions
/ Carbon
/ Climate
/ Climate change
/ Frozen ground
/ Global warming
/ Greenhouse effect
/ Greenhouse gases
/ Humanities and Social Sciences
/ Hydrology
/ multidisciplinary
/ Permafrost
/ Permafrost thaws
/ Positive feedback
/ Rainfall
/ Science
/ Science (multidisciplinary)
/ Seasons
/ Soil
/ Summer
/ Taiga & tundra
/ Thawing
/ Tundra
2022
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Extremely wet summer events enhance permafrost thaw for multiple years in Siberian tundra
by
Hamm, Alexandra
, Karsanaev, Sergey V.
, Magnússon, Rúna Í.
, Kleijn, David
, Frampton, Andrew
, Heijmans, Monique M. P. D.
, Limpens, Juul
, Maximov, Trofim C.
in
704/106/125
/ 704/106/694
/ 704/242
/ Air temperature
/ Arctic Regions
/ Carbon
/ Climate
/ Climate change
/ Frozen ground
/ Global warming
/ Greenhouse effect
/ Greenhouse gases
/ Humanities and Social Sciences
/ Hydrology
/ multidisciplinary
/ Permafrost
/ Permafrost thaws
/ Positive feedback
/ Rainfall
/ Science
/ Science (multidisciplinary)
/ Seasons
/ Soil
/ Summer
/ Taiga & tundra
/ Thawing
/ Tundra
2022
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Extremely wet summer events enhance permafrost thaw for multiple years in Siberian tundra
Journal Article
Extremely wet summer events enhance permafrost thaw for multiple years in Siberian tundra
2022
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Overview
Permafrost thaw can accelerate climate warming by releasing carbon from previously frozen soil in the form of greenhouse gases. Rainfall extremes have been proposed to increase permafrost thaw, but the magnitude and duration of this effect are poorly understood. Here we present empirical evidence showing that one extremely wet summer (+100 mm; 120% increase relative to average June–August rainfall) enhanced thaw depth by up to 35% in a controlled irrigation experiment in an ice-rich Siberian tundra site. The effect persisted over two subsequent summers, demonstrating a carry-over effect of extremely wet summers. Using soil thermal hydrological modelling, we show that rainfall extremes delayed autumn freeze-up and rainfall-induced increases in thaw were most pronounced for warm summers with mid-summer precipitation rainfall extremes. Our results suggest that, with rainfall and temperature both increasing in the Arctic, permafrost will likely degrade and disappear faster than is currently anticipated based on rising air temperatures alone.
Thawing permafrost releases carbon that serves as a positive feedback on climate warming. Here the authors experimentally demonstrate that rainfall extremes in the Siberian tundra increase permafrost thaw for multiple years, especially if rainfall coincides with warm periods.
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