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Higher CO2 concentrations increase extreme event risk in a 1.5 °C world

Authors :
Urs Beyerle
Richard J. Millar
Hideo Shiogama
Myles R. Allen
Tim Woollings
David J. Karoly
Dann Mitchell
Hugh S. Baker
Benoit P. Guillod
Sarah Sparrow
Source :
Baker, H S, Millar, R J, Karoly, D J, Beyerle, U, Guillod, B P, Mitchell, D, Shiogama, H, Sparrow, S, Woollings, T & Allen, M R 2018, ' Higher CO 2 concentrations increase extreme event risk in a 1.5 °c world ', Nature Climate Change, vol. 8, no. 7, pp. 604-608 . https://doi.org/10.1038/s41558-018-0190-1
Publication Year :
2018
Publisher :
Springer Science and Business Media LLC, 2018.

Abstract

The Paris Agreement1 aims to ‘pursue efforts to limit the temperature increase to 1.5 °C above pre-industrial levels.’ However, it has been suggested that temperature targets alone are insufficient to limit the risks associated with anthropogenic emissions2,3. Here, using an ensemble of model simulations, we show that atmospheric CO2 increase—an even more predictable consequence of emissions than global temperature increase—has a significant direct impact on Northern Hemisphere summer temperature, heat stress, and tropical precipitation extremes. Hence in an iterative climate mitigation regime aiming solely for a specific temperature goal, an unexpectedly low climate response may have corresponding ‘dangerous’ changes in extreme events. The direct impact of higher CO2 concentrations on climate extremes therefore substantially reduces the upper bound of the carbon budget, and highlights the need to explicitly limit atmospheric CO2 concentration when formulating allowable emissions. Thus, complementing global mean temperature goals with explicit limits on atmospheric CO2 concentrations in future climate policy would limit the adverse effects of high-impact weather extremes. A 1.5 °C temperature target can have varying atmospheric CO2 concentrations associated with it. GCM simulations reveal CO2 increases have a direct impact on climate extremes, highlighting the need for climate policy to complement temperature goals with CO2 targets.

Details

ISSN :
17586798 and 1758678X
Volume :
8
Database :
OpenAIRE
Journal :
Nature Climate Change
Accession number :
edsair.doi.dedup.....0f26b675d65bad72122db913c2e82430
Full Text :
https://doi.org/10.1038/s41558-018-0190-1