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dc.contributor.authorQiu, Chunjing
dc.contributor.authorZhu, Dan
dc.contributor.authorCiais, Philippe
dc.contributor.authorGuenet, Bertrand
dc.contributor.authorKrinner, Gerhard
dc.contributor.authorPeng, Shushi
dc.contributor.authorAurela, Mika
dc.contributor.authorBernhofer, Christian
dc.contributor.authorBrümmer, Christian
dc.contributor.authorBret-Harte, Syndonia
dc.contributor.authorChu, Housen
dc.contributor.authorChen, Jiquan
dc.contributor.authorDesai, Ankur R.
dc.contributor.authorDušek, Jiří
dc.contributor.authorEuskirchen, Eugénie S.
dc.contributor.authorFortuniak, Krzysztof
dc.contributor.authorFlanagan, Lawrence B.
dc.contributor.authorFriborg, Thomas
dc.contributor.authorGrygoruk, Mateusz
dc.contributor.authorGogo, Sébastien
dc.contributor.authorGrünwald, Thomas
dc.contributor.authorHansen, Birger U.
dc.contributor.authorHoll, David
dc.contributor.authorHumphreys, Elyn
dc.contributor.authorHurkuck, Miriam
dc.contributor.authorKiely, Gerard
dc.contributor.authorKlatt, Janina
dc.contributor.authorKutzbach, Lars
dc.contributor.authorLargeron, Chloé
dc.contributor.authorLaggoun-Défarge, Fatima
dc.contributor.authorLund, Magnus
dc.contributor.authorLafleur, Peter M.
dc.contributor.authorLi, Xuefei
dc.contributor.authorMammarella, Ivan
dc.contributor.authorMerbold, Lutz
dc.contributor.authorNilsson, Mats B.
dc.contributor.authorOlejnik, Janusz
dc.contributor.authorOttosson-Löfvenius, Mikaell
dc.contributor.authorOechel, Walter C.
dc.contributor.authorParmentier, Frans-Jan W.
dc.contributor.authorPeichl, Matthias
dc.contributor.authorPirk, Norbert
dc.contributor.authorPeltola, Olli
dc.contributor.authorPawlak, Włodzimierz
dc.contributor.authorRasse, Daniel
dc.contributor.authorRinne, Janne
dc.contributor.authorShaver, Gaius R.
dc.contributor.authorSchmid, Hans Peter
dc.contributor.authorSottocornola, Matteo
dc.contributor.authorSteinbrecher, Rainer
dc.contributor.authorSachs, Torsten
dc.contributor.authorUrbaniak, Marek
dc.contributor.authorZona, Donatella
dc.contributor.authorZiemblinska, Klaudia
dc.date.accessioned2018-05-25T07:10:39Z
dc.date.available2018-05-25T07:10:39Z
dc.date.created2018-02-05T14:37:16Z
dc.date.issued2018-02-05
dc.identifier.citationGeoscientific Model Development. 2018, 11 (2), 497-519.nb_NO
dc.identifier.issn1991-959X
dc.identifier.urihttp://hdl.handle.net/11250/2499167
dc.description.abstractPeatlands store substantial amounts of carbon and are vulnerable to climate change. We present a modified version of the Organising Carbon and Hydrology In Dynamic Ecosystems (ORCHIDEE) land surface model for simulating the hydrology, surface energy, and CO2 fluxes of peatlands on daily to annual timescales. The model includes a separate soil tile in each 0.5° grid cell, defined from a global peatland map and identified with peat-specific soil hydraulic properties. Runoff from non-peat vegetation within a grid cell containing a fraction of peat is routed to this peat soil tile, which maintains shallow water tables. The water table position separates oxic from anoxic decomposition. The model was evaluated against eddy-covariance (EC) observations from 30 northern peatland sites, with the maximum rate of carboxylation (Vcmax) being optimized at each site. Regarding short-term day-to-day variations, the model performance was good for gross primary production (GPP) (r2 =  0.76; Nash–Sutcliffe modeling efficiency, MEF  =  0.76) and ecosystem respiration (ER, r2 =  0.78, MEF  =  0.75), with lesser accuracy for latent heat fluxes (LE, r2 =  0.42, MEF  =  0.14) and and net ecosystem CO2 exchange (NEE, r2 =  0.38, MEF  =  0.26). Seasonal variations in GPP, ER, NEE, and energy fluxes on monthly scales showed moderate to high r2 values (0.57–0.86). For spatial across-site gradients of annual mean GPP, ER, NEE, and LE, r2 values of 0.93, 0.89, 0.27, and 0.71 were achieved, respectively. Water table (WT) variation was not well predicted (r2 < 0.1), likely due to the uncertain water input to the peat from surrounding areas. However, the poor performance of WT simulation did not greatly affect predictions of ER and NEE. We found a significant relationship between optimized Vcmax and latitude (temperature), which better reflects the spatial gradients of annual NEE than using an average Vcmax value.nb_NO
dc.language.isoengnb_NO
dc.rightsNavngivelse 4.0 Internasjonal*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/deed.no*
dc.titleORCHIDEE-PEAT (revision 4596), a model for northern peatland CO2, water, and energy fluxes on daily to annual scalesnb_NO
dc.typeJournal articlenb_NO
dc.typePeer reviewednb_NO
dc.description.versionpublishedVersionnb_NO
dc.rights.holder© Author(s) 2018. This work is distributed under the Creative Commons Attribution 4.0 License.nb_NO
dc.subject.nsiVDP::Landbruks- og Fiskerifag: 900nb_NO
dc.source.pagenumber497-519nb_NO
dc.source.volume11nb_NO
dc.source.journalGeoscientific Model Developmentnb_NO
dc.source.issue2nb_NO
dc.identifier.doi10.5194/gmd-11-497-2018
dc.identifier.cristin1561999
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2


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