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dc.contributor.authorHuntingford, C
dc.contributor.authorOliver, RJ
dc.contributor.authorMercado, LM
dc.contributor.authorSitch, S
dc.date.accessioned2019-02-26T11:54:24Z
dc.date.issued2018-09-12
dc.description.abstractElevated levels of tropospheric ozone, O3, cause damage to terrestrial vegetation, affecting leaf stomatal functioning and reducing photosynthesis. Climatic impacts under future raised atmospheric greenhouse gas (GHG) concentrations will also impact on the net primary productivity (NPP) of vegetation, which might for instance alter viability of some crops. Together, ozone damage and climate change may adjust the current ability of terrestrial vegetation to offset a significant fraction of carbon dioxide (CO2) emissions. Climate impacts on the land surface are well studied, but arguably large-scale modelling of raised surface level O3effects is less advanced. To date most models representing ozone damage use either O3concentration or, more recently, flux-uptake-related reduction of stomatal opening, estimating suppressed land-atmosphere water and CO2fluxes. However there is evidence that, for some species, O3damage can also cause an inertial sluggishness of stomatal response to changing surface meteorological conditions. In some circumstances (e.g. droughts), this loss of stomata control can cause them to be more open than without ozone interference. To both aid model development and provide empiricists with a system on to which measurements can be mapped, we present a parameter-sparse framework specifically designed to capture sluggishness. This contains a single time-delay parameter τO3, characterizing the timescale for stomata to catch up with the level of opening they would have without damage. The larger the value of this parameter, the more sluggish the modelled stomatal response. Through variation of τO3, we find it is possible to have qualitatively similar responses to factorial experiments with and without raised O3, when comparing to reported measurement time series presented in the literature. This low-parameter approach lends itself to the inclusion of ozone-induced inertial effects being incorporated in the terrestrial vegetation component of Earth system models (ESMs).en_GB
dc.description.sponsorshipNERC-CEH National Capability Funden_GB
dc.description.sponsorshipNatural Environment Research Councilen_GB
dc.identifier.citationVol. 15 (17), pp. 5415 - 5422en_GB
dc.identifier.doi10.5194/bg-15-5415-2018
dc.identifier.grantnumberNE/N017951/1en_GB
dc.identifier.grantnumberNE/R001812/1en_GB
dc.identifier.urihttp://hdl.handle.net/10871/36069
dc.language.isoenen_GB
dc.publisherEuropean Geosciences Union (EGU)en_GB
dc.rights© Author(s) 2018. This work is distributed under the Creative Commons Attribution 4.0 License.en_GB
dc.titleTechnical note: A simple theoretical model framework to describe plant stomatal "sluggishness" in response to elevated ozone concentrationsen_GB
dc.typeArticleen_GB
dc.date.available2019-02-26T11:54:24Z
dc.identifier.issn1726-4170
dc.descriptionThis is the final version. Available from European Geosciences Union (EGU) via the DOI in this record.en_GB
dc.identifier.journalBiogeosciencesen_GB
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/en_GB
dcterms.dateAccepted2018-08-24
rioxxterms.versionVoRen_GB
rioxxterms.licenseref.startdate2018-08-24
rioxxterms.typeJournal Article/Reviewen_GB
refterms.dateFCD2019-02-26T11:45:12Z
refterms.versionFCDVoR
refterms.dateFOA2019-02-26T11:54:26Z


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© Author(s) 2018. This work is distributed under the Creative Commons Attribution 4.0 License.
Except where otherwise noted, this item's licence is described as © Author(s) 2018. This work is distributed under the Creative Commons Attribution 4.0 License.