Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau

Abstract Predicted intensified climate warming will likely alter the ecosystem net carbon (C) uptake of the Qinghai–Tibetan Plateau (QTP). Variations in C sink–source responses to climate warming have been linked to water availability; however, the mechanisms by which net C uptake responds to soil w...

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Main Authors: Wei, J. (Junqi), Li, X. (Xiaoyan), Liu, L. (Lei), Christensen, T. R. (Torben Røjle), Jiang, Z. (Zhiyun), Ma, Y. (Yujun), Wu, X. (Xiuchen), Yao, H. (Hongyun), López-Blanco, E. (Efrén)
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2022
Subjects:
Online Access:http://urn.fi/urn:nbn:fi-fe2022051736236
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spelling ftunivoulu:oai:oulu.fi:nbnfi-fe2022051736236 2023-07-30T04:06:20+02:00 Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau Wei, J. (Junqi) Li, X. (Xiaoyan) Liu, L. (Lei) Christensen, T. R. (Torben Røjle) Jiang, Z. (Zhiyun) Ma, Y. (Yujun) Wu, X. (Xiuchen) Yao, H. (Hongyun) López-Blanco, E. (Efrén) 2022 application/pdf http://urn.fi/urn:nbn:fi-fe2022051736236 eng eng Copernicus Publications info:eu-repo/semantics/openAccess © Author(s) 2022. This work is distributed under the Creative Commons Attribution 4.0 License. https://creativecommons.org/licenses/by/4.0/ info:eu-repo/semantics/article info:eu-repo/semantics/publishedVersion 2022 ftunivoulu 2023-07-08T19:59:22Z Abstract Predicted intensified climate warming will likely alter the ecosystem net carbon (C) uptake of the Qinghai–Tibetan Plateau (QTP). Variations in C sink–source responses to climate warming have been linked to water availability; however, the mechanisms by which net C uptake responds to soil water content in saturated swamp meadow ecosystems remain unclear. To explore how soil moisture and other environmental drivers modulate net C uptake in the QTP, field measurements were conducted using the eddy covariance technique in 2014, 2015, 2017, and 2018. The alpine swamp meadow presented in this study was a persistent and strong C sink of CO₂ (−168.0 ± 62.5 g C m⁻² yr⁻¹, average ± standard deviation) across the entire 4-year study period. A random forest machine-learning analysis suggested that the diurnal and seasonal variations of net ecosystem exchange (NEE) and gross primary productivity (GPP) were regulated by temperature and net radiation. Ecosystem respiration (Re), however, was found mainly regulated by the variability of soil water content (SWC) at different temporal aggregations, followed by temperature, the second contributing driver. We further explored how Re is controlled by nearly saturated soil moisture and temperature comparing two different periods featuring almost identical temperatures and significant differences on SWC and vice versa. Our data suggest that, despite the relatively abundant water supply, periods with a substantial decrease in SWC or increase in temperature produced higher Re and therefore weakened the C sink strength. Our results reveal that nearly saturated soil conditions during the growing seasons can help maintain lower ecosystem respiration rates and thus enhance the overall C sequestration capacity in this alpine swamp meadow. We argue that soil respiration and subsequent ecosystem C sink magnitude in alpine swamp meadows could likely be affected by future changes in soil hydrological conditions caused by permafrost degradation or accelerated thawing–freezing cycling ... Article in Journal/Newspaper permafrost Jultika - University of Oulu repository
institution Open Polar
collection Jultika - University of Oulu repository
op_collection_id ftunivoulu
language English
description Abstract Predicted intensified climate warming will likely alter the ecosystem net carbon (C) uptake of the Qinghai–Tibetan Plateau (QTP). Variations in C sink–source responses to climate warming have been linked to water availability; however, the mechanisms by which net C uptake responds to soil water content in saturated swamp meadow ecosystems remain unclear. To explore how soil moisture and other environmental drivers modulate net C uptake in the QTP, field measurements were conducted using the eddy covariance technique in 2014, 2015, 2017, and 2018. The alpine swamp meadow presented in this study was a persistent and strong C sink of CO₂ (−168.0 ± 62.5 g C m⁻² yr⁻¹, average ± standard deviation) across the entire 4-year study period. A random forest machine-learning analysis suggested that the diurnal and seasonal variations of net ecosystem exchange (NEE) and gross primary productivity (GPP) were regulated by temperature and net radiation. Ecosystem respiration (Re), however, was found mainly regulated by the variability of soil water content (SWC) at different temporal aggregations, followed by temperature, the second contributing driver. We further explored how Re is controlled by nearly saturated soil moisture and temperature comparing two different periods featuring almost identical temperatures and significant differences on SWC and vice versa. Our data suggest that, despite the relatively abundant water supply, periods with a substantial decrease in SWC or increase in temperature produced higher Re and therefore weakened the C sink strength. Our results reveal that nearly saturated soil conditions during the growing seasons can help maintain lower ecosystem respiration rates and thus enhance the overall C sequestration capacity in this alpine swamp meadow. We argue that soil respiration and subsequent ecosystem C sink magnitude in alpine swamp meadows could likely be affected by future changes in soil hydrological conditions caused by permafrost degradation or accelerated thawing–freezing cycling ...
format Article in Journal/Newspaper
author Wei, J. (Junqi)
Li, X. (Xiaoyan)
Liu, L. (Lei)
Christensen, T. R. (Torben Røjle)
Jiang, Z. (Zhiyun)
Ma, Y. (Yujun)
Wu, X. (Xiuchen)
Yao, H. (Hongyun)
López-Blanco, E. (Efrén)
spellingShingle Wei, J. (Junqi)
Li, X. (Xiaoyan)
Liu, L. (Lei)
Christensen, T. R. (Torben Røjle)
Jiang, Z. (Zhiyun)
Ma, Y. (Yujun)
Wu, X. (Xiuchen)
Yao, H. (Hongyun)
López-Blanco, E. (Efrén)
Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
author_facet Wei, J. (Junqi)
Li, X. (Xiaoyan)
Liu, L. (Lei)
Christensen, T. R. (Torben Røjle)
Jiang, Z. (Zhiyun)
Ma, Y. (Yujun)
Wu, X. (Xiuchen)
Yao, H. (Hongyun)
López-Blanco, E. (Efrén)
author_sort Wei, J. (Junqi)
title Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
title_short Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
title_full Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
title_fullStr Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
title_full_unstemmed Radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern Qinghai–Tibetan Plateau
title_sort radiation, soil water content, and temperature effects on carbon cycling in an alpine swamp meadow of the northeastern qinghai–tibetan plateau
publisher Copernicus Publications
publishDate 2022
url http://urn.fi/urn:nbn:fi-fe2022051736236
genre permafrost
genre_facet permafrost
op_rights info:eu-repo/semantics/openAccess
© Author(s) 2022. This work is distributed under the Creative Commons Attribution 4.0 License.
https://creativecommons.org/licenses/by/4.0/
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