Abstract
AbstractWe used the Meteorological Research Institute Earth System Model to investigate land precipitation and net primary production (NPP, proxy for agricultural production here) in terms of food and water security. In the preindustrial state, the largest decrease in Southeast Asian precipitation (> 20%) occurs along with the largest El Niño and positive phase of the Atlantic multidecadal oscillation, consistent with the 1876-78 Great Drought, leading to the largest decrease in NPP (~ 20%); >2 standard deviations, extreme dryness and crop failure. In relatively arid regions (e.g., India and northeastern Brazil), the largest decreases in precipitation and NPP reach ≥ 50%, particularly 80 ~ 90% in Deccan, India. In the 21st century warming projection (Shared Socioeconomic Pathways 5-8.5, the largest CO2 emission scenario), the interannual variability of precipitation and NPP in Monsoon Asia increase under the influence of enhanced El Niño-Southern Oscillation. Although the increased precipitation variability indicates more frequent severer droughts than in the preindustrial state, this severity does not influence NPP so much: the increased NPP variability is negligible compared to the significant increase in normal NPP by CO2 fertilization effect, which indicates usually rich harvests. Compared to a recent severe crop failure (− 25% in Japan in 1993), the simulated preindustrial drought-induced NPP decreases of ≥ 50% in parts of low latitudes are extraordinarily large enough to correspond to devastating crop failures. The model indicates that great famines before the 20th century were natural in origin, and that manmade factors, such as harsh taxes and hoarding and export of grain, made the famines more devastating.
Publisher
Springer Science and Business Media LLC
Reference29 articles.
1. Anderson TG, McKinnon KA, Pons D, Anchukaitis KJ (2023) How exceptional was the 2015–2019 central American drought? Geophys Res Lett 50. https://doi.org/10.1029/2023GL105391. e2023GL105391
2. Cai W, Borlace S, Lengaigne M, van Rensch P, Collins M, Vecchi G et al (2014) Increasing frequency of extreme El Niño events due to greenhouse warming. Nat Clim Change 4:111–116. https://doi.org/10.1038/nclimate2100
3. Christensen JH, Krishna Kumar K, Aldrian E, An S-I, Cavalcanti IFA, de Castro M et al (2013) Climate phenomena and their relevance for future regional climate change. In: Stocker TF et al (eds) Climate Change 2013: the physical science basis. Cambridge University Press, Cambridge, pp 1217–1308
4. Collins M, Knutti R, Arblaster J, Dufresne J-L, Fichefet T, Friedlingstein P et al (2013) Long-term climate change: projections, commitments and irreversibility. In: Stocker TF et al (eds) Climate Change 2013: the physical science basis. Cambridge University Press, Cambridge, pp 1029–1136
5. Cunningham SA, Kanzow T, Rayner D, Baringer MO, Johns WE, Marotzke J et al (2007) Temporal variability of the Atlantic meridional overturning circulation at 26.5°N. Science 317:935–938. https://doi.org/10.1126/science.1141304