A platform for research: civil engineering, architecture and urbanism
CO2 fertilization of crops offsets yield losses due to future surface ozone damage and climate change
Tropospheric ozone (O _3 ) is harmful to plant productivity and negatively impacts crop yields. O _3 concentrations are projected to decrease globally in the optimistic Representative Concentration Pathway of 2.6 W m ^–2 (RCP2.6) but increase globally following the high-emission scenario under the RCP8.5, with substantial implications for global food security. The damaging effect of O _3 on future crop yield is affected by CO _2 fertilization and climate change, and their interactions for RCP scenarios have yet to be quantified. In this study, we used the Joint UK Land Environment Simulator modified to include crops (JULES-crop) to quantify the impacts, and relative importance of present-day and future O _3 , CO _2 concentration and meteorology on crop production at the regional scale until 2100 following RCP2.6 and RCP8.5 scenarios. We focus on eight major crop-producing regions that cover the production of wheat, soybean, maize, and rice. Our results show that CO _2 alone has the largest effect on regional yields, followed by climate and O _3 . However, the CO _2 fertilization effect is offset by the negative impact of tropospheric O _3 in regions with high O _3 concentrations, such as South Asia and China. Simulated crop yields in 2050 were compared with Food and Agriculture Organisation (FAO) statistics to investigate the differences between a socioeconomic and a biophysical process-based approach. Results showed that FAO estimates are closer to our JULES-crop RCP8.5 scenario. This study demonstrates that air pollution could be the biggest threat to future food production and highlights an urgent policy need to mitigate the threat of climate change and O _3 pollution on food security.
CO2 fertilization of crops offsets yield losses due to future surface ozone damage and climate change
Tropospheric ozone (O _3 ) is harmful to plant productivity and negatively impacts crop yields. O _3 concentrations are projected to decrease globally in the optimistic Representative Concentration Pathway of 2.6 W m ^–2 (RCP2.6) but increase globally following the high-emission scenario under the RCP8.5, with substantial implications for global food security. The damaging effect of O _3 on future crop yield is affected by CO _2 fertilization and climate change, and their interactions for RCP scenarios have yet to be quantified. In this study, we used the Joint UK Land Environment Simulator modified to include crops (JULES-crop) to quantify the impacts, and relative importance of present-day and future O _3 , CO _2 concentration and meteorology on crop production at the regional scale until 2100 following RCP2.6 and RCP8.5 scenarios. We focus on eight major crop-producing regions that cover the production of wheat, soybean, maize, and rice. Our results show that CO _2 alone has the largest effect on regional yields, followed by climate and O _3 . However, the CO _2 fertilization effect is offset by the negative impact of tropospheric O _3 in regions with high O _3 concentrations, such as South Asia and China. Simulated crop yields in 2050 were compared with Food and Agriculture Organisation (FAO) statistics to investigate the differences between a socioeconomic and a biophysical process-based approach. Results showed that FAO estimates are closer to our JULES-crop RCP8.5 scenario. This study demonstrates that air pollution could be the biggest threat to future food production and highlights an urgent policy need to mitigate the threat of climate change and O _3 pollution on food security.
CO2 fertilization of crops offsets yield losses due to future surface ozone damage and climate change
Felix Leung (author) / Stephen Sitch (author) / Amos P K Tai (author) / Andrew J Wiltshire (author) / Jemma L Gornall (author) / Gerd A Folberth (author) / Nadine Unger (author)
2022
Article (Journal)
Electronic Resource
Unknown
Metadata by DOAJ is licensed under CC BY-SA 1.0
Calculating losses of crops in Denmark caused by high ozone levels
Springer Verlag | 2001
|Response of switchgrass yield to future climate change
IOP Institute of Physics | 2012
|Ozone, climate change and forests
Online Contents | 2012
|Changes in yield variability of major crops for 1981–2010 explained by climate change
DOAJ | 2016
|