論文

査読有り
2020年6月

Increasing contribution of peatlands to boreal evapotranspiration in a warming climate

Nature Climate Change
  • Manuel Helbig
  • James Michael Waddington
  • Pavel Alekseychik
  • Brian D. Amiro
  • Mika Aurela
  • Alan G. Barr
  • T. Andrew Black
  • Peter D. Blanken
  • Sean K. Carey
  • Jiquan Chen
  • Jinshu Chi
  • Ankur R. Desai
  • Allison Dunn
  • Eugenie S. Euskirchen
  • Lawrence B. Flanagan
  • Inke Forbrich
  • Thomas Friborg
  • Achim Grelle
  • Silvie Harder
  • Michal Heliasz
  • Elyn R. Humphreys
  • Hiroki Ikawa
  • Pierre-Erik Isabelle
  • Hiroki Iwata
  • Rachhpal Jassal
  • Mika Korkiakoski
  • Juliya Kurbatova
  • Lars Kutzbach
  • Anders Lindroth
  • Mikaell Ottosson Löfvenius
  • Annalea Lohila
  • Ivan Mammarella
  • Philip Marsh
  • Trofim Maximov
  • Joe R. Melton
  • Paul A. Moore
  • Daniel F. Nadeau
  • Erin M. Nicholls
  • Mats B. Nilsson
  • Takeshi Ohta
  • Matthias Peichl
  • Richard M. Petrone
  • Roman Petrov
  • Anatoly Prokushkin
  • William L. Quinton
  • David E. Reed
  • Nigel T. Roulet
  • Benjamin R. K. Runkle
  • Oliver Sonnentag
  • Ian B. Strachan
  • Pierre Taillardat
  • Eeva-Stiina Tuittila
  • Juha-Pekka Tuovinen
  • Jessica Turner
  • Masahito Ueyama
  • Andrej Varlagin
  • Martin Wilmking
  • Steven C. Wofsy
  • Vyacheslav Zyrianov
  • 全て表示

10
6
開始ページ
555
終了ページ
560
記述言語
英語
掲載種別
研究論文(学術雑誌)
DOI
10.1038/s41558-020-0763-7
出版者・発行元
Springer Science and Business Media LLC

Climate warming increases evapotranspiration (ET) more in boreal peatlands than in forests. Observations show that peatland ET can exceed forest ET by up to 30%, indicating a stronger warming response in peatlands. Earth system models do not fully account for peatlands and hence may underestimate future boreal ET.The response of evapotranspiration (ET) to warming is of critical importance to the water and carbon cycle of the boreal biome, a mosaic of land cover types dominated by forests and peatlands. The effect of warming-induced vapour pressure deficit (VPD) increases on boreal ET remains poorly understood because peatlands are not specifically represented as plant functional types in Earth system models. Here we show that peatland ET increases more than forest ET with increasing VPD using observations from 95 eddy covariance tower sites. At high VPD of more than 2 kPa, peatland ET exceeds forest ET by up to 30%. Future (2091-2100) mid-growing season peatland ET is estimated to exceed forest ET by over 20% in about one-third of the boreal biome for RCP4.5 and about two-thirds for RCP8.5. Peatland-specific ET responses to VPD should therefore be included in Earth system models to avoid biases in water and carbon cycle projections.

リンク情報
DOI
https://doi.org/10.1038/s41558-020-0763-7
Web of Science
https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=JSTA_CEL&SrcApp=J_Gate_JST&DestLinkType=FullRecord&KeyUT=WOS:000531795100001&DestApp=WOS_CPL
URL
http://www.nature.com/articles/s41558-020-0763-7.pdf
URL
http://www.nature.com/articles/s41558-020-0763-7
ID情報
  • DOI : 10.1038/s41558-020-0763-7
  • ISSN : 1758-678X
  • eISSN : 1758-6798
  • Web of Science ID : WOS:000531795100001

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