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Quantifying the uncertainty introduced by internal climate variability in projections of Canadian crop production

Datos Bibliográficos

ID15549588
AutoresBudong Qian (0000-0001-5413-3114, Ottawa Research and Development Centre, autor de correspondencia), Qi Jing (0000-0001-9748-1661, Agriculture and Agri-Food Canada, autor de correspondencia), Ward Smith (0000-0001-7462-5247, Ottawa Research and Development Centre), Brian Grant (0000-0001-5928-0391, Agriculture and Agri-Food Canada), Alex J Cannon (0000-0002-8025-3790, Environment and Climate Change Canada), Xuebin Zhang (0000-0002-9012-8491, Environment and Climate Change Canada)
Año2020
Volumen15
Número7
Páginas074032-074032
Fecha de publicación2020-04-14
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ab88fc
OpenAlexW3016702807
IdiomaEN
Referencias citadas41

Internal climate variability (ICV) is one of the major sources of uncertainty in climate projections, yet it is seldom quantified for projections of crop production. Our study focuses on quantifying the uncertainty due to ICV in projections of crop productions in Canada. We utilize climate scenarios from two large ensembles (LEs, CanESM2-LE and CanRCM4-LE with 25 members each) as inputs to the crop models in the Decision Support System for Agrotechnology Transfer. We simulate crop yields for canola, maize and spring wheat under the future climates of four global warming levels. The coefficient of variation (CV) of the projected crop production across the LE members is used to quantify the uncertainty related to ICV and this is compared with the CVs generated using the 20 GCMs in the Coupled Model Intercomparison Project Phase 5 (CMIP5). Crop production in Canada could increase with global warming, e.g. spring wheat production could increase by up to 21% at the warming level of 3.0 °C. The projections often produce larger uncertainty associated with the GCMs than from ICV at all warming levels above 2.0 °C. The results from an asymptotic test for the equality of CVs show a significant difference in CVs of projections of canola production between CanESM2-LE/CanRCM4-LE and CMIP5 for the warming level of 3.0 °C. However, the test results do not indicate a significant difference among the ensembles at all four warming levels for maize and spring wheat. The uncertainty due to ICV is often comparable to that associated with GCMs at the warming level of 1.5 °C, e.g. a CV of 6.0 and 6.4% for CanESM2-LE and CanRCM4-LE and 6.6% for CMIP5 in the projections of spring wheat production. We conclude there is a need to account for uncertainty related to ICV in projections of Canadian crop production, especially at lower warming levels

Agriculture · Agronomy · Atmospheric sciences · Biology · Canola · Climate change · Climate model · Climatology · Coupled model intercomparison project · Crop · Crop production · Crop yield · Global warming · Production (economics · Agricultural risk and resilience · Climate change impacts on agriculture · Climate variability and models · Environmental Science · Ecology

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