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dc.contributor.authorDavies-Barnard, T
dc.contributor.authorMeyerholt, J
dc.contributor.authorZaehle, S
dc.contributor.authorFriedlingstein, P
dc.contributor.authorBrovkin, V
dc.contributor.authorFan, Y
dc.contributor.authorFisher, RA
dc.contributor.authorJones, CD
dc.contributor.authorLee, H
dc.contributor.authorPeano, D
dc.contributor.authorSmith, B
dc.contributor.authorWårlind, D
dc.contributor.authorWiltshire, A
dc.date.accessioned2020-08-26T12:58:37Z
dc.date.issued2020-08-26
dc.description.abstractThe nitrogen cycle and its effect on carbon uptake in the terrestrial biosphere is a recent progression in earth system models. As with any new component of a model, it is important to understand the behaviour, strengths, and limitations of the various process representations. Here we assess and compare five land surface models with nitrogen cycles that are used as the terrestrial components of some of the earth system models in CMIP6. The land surface models were run offline with a common spin-up and forcing protocol. We use a historical control simulation and two perturbations to assess the models’ nitrogen-related performance: a simulation with atmospheric carbon dioxide increased by 200 ppm, and one with nitrogen deposition increased by 50 kgN ha-1 yr-1. There is generally greater variability in productivity response between models to increased nitrogen than to carbon dioxide. Across the five models the response to carbon dioxide globally was 5 to 20% and the response to nitrogen was 2 to 24%. The models are not evenly distributed within the ensemble range, with two of the models having low productivity response to nitrogen, and another one low response to elevated atmospheric carbon dioxide, compared to the other models. In all five models individual grid cells tend to exhibit bimodality, with either a strong response to increased nitrogen or atmospheric carbon dioxide, but rarely to both to an equal extent. However, this local effect does not scale to either the regional or global level. The global and tropical responses are generally more accurately modelled than boreal, tundra, or other high latitude areas compared to observations. These results are due to divergent choices in the representation of key nitrogen cycle processes. They show the need for more observational studies to enhance understanding of nitrogen cycle processes, especially nitrogen-use efficiency and biological nitrogen fixation.en_GB
dc.description.sponsorshipEuropean Union Horizon 2020en_GB
dc.description.sponsorshipEuropean Union Horizon 2020en_GB
dc.description.sponsorshipEuropean Union Horizon 2020en_GB
dc.description.sponsorshipNational Science Foundation (NSF)en_GB
dc.format.Rdataen_GB
dc.identifier.doi10.24378/exe.2624
dc.identifier.doi10.5194/bg-17-5129-2020
dc.identifier.grantnumber641816en_GB
dc.identifier.grantnumber647204en_GB
dc.identifier.grantnumber821003en_GB
dc.identifier.grantnumber1852977en_GB
dc.identifier.urihttp://hdl.handle.net/10871/122642
dc.language.isoenen_GB
dc.publisherUniversity of Exeteren_GB
dc.rightsCC BY 4.0en_GB
dc.titleNitrogen Cycling in CMIP6 Land Surface Models: Progress and Limitations (dataset)en_GB
dc.typeDataseten_GB
dc.date.available2020-08-26T12:58:37Z
dc.descriptionDatasets for making plots in the paper, for use in R.en_GB
dc.identifier.journalBiogeosciencesen_GB
dc.rights.urihttps://creativecommons.org/licenses/by/4.0en_GB
pubs.funder-ackownledgementYesen_GB
exeter.funder::European Commissionen_GB
rioxxterms.versionNAen_GB
rioxxterms.licenseref.startdate2020-08-26
rioxxterms.typeOtheren_GB
refterms.dateFOA2020-08-26T12:58:47Z


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