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Summer weather becomes more persistent in a 2 °C world

  • Peter Pfleiderer*
  • , Carl Friedrich Schleussner
  • , Kai Kornhuber
  • , Dim Coumou
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

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Abstract

Heat and rainfall extremes have intensified over the past few decades and this trend is projected to continue with future global warming1–3. A long persistence of extreme events often leads to societal impacts with warm-and-dry conditions severely affecting agriculture and consecutive days of heavy rainfall leading to flooding. Here we report systematic increases in the persistence of boreal summer weather in a multi-model analysis of a world 2 °C above pre-industrial compared to present-day climate. Averaged over the Northern Hemisphere mid-latitude land area, the probability of warm periods lasting longer than two weeks is projected to increase by 4% (2–6% full uncertainty range) after removing seasonal-mean warming. Compound dry–warm persistence increases at a similar magnitude on average but regionally up to 20% (11–42%) in eastern North America. The probability of at least seven consecutive days of strong precipitation increases by 26% (15–37%) for the mid-latitudes. We present evidence that weakening storm track activity contributes to the projected increase in warm and dry persistence. These changes in persistence are largely avoided when warming is limited to 1.5 °C. In conjunction with the projected intensification of heat and rainfall extremes, an increase in persistence can substantially worsen the effects of future weather extremes.

Original languageEnglish
Pages (from-to)666–671
Number of pages6
JournalNature Climate Change
Volume9
Issue number9
Early online date19 Aug 2019
DOIs
Publication statusPublished - Sept 2019

Funding

The authors would like to thank the HAPPI initiative and all participating modelling groups that have provided data. This research used science gateway resources of the National Energy Research Scientific Computing Center, a Science User Facility supported by the Office of Science of the US Department of Energy under contract no. DE-AC02-05CH11231. We thank the Met Office Hadley Centre for providing the HadGHCND dataset. We acknowledge the E-OBS dataset from the EU-FP6 project ENSEMBLES (http://ensembles-eu.metoffice.com) and the data providers in the ECA&D project (http://www.ecad.eu). P.P. and C.-F.S. acknowledge support by the German Federal Ministry of Education and Research (01LN1711A). K.K. is supported by the UK NERC, NCAS and NERC grant nos NE/P006779/1 and NE/N018001/1. This work was supported by the BMBF (grant no. 01LN1304A to D.C.) and the NWO (grant no. 016. Vidi.171011 to D.C.).

FundersFunder number
National Energy Research Scientific Computing Center
Office of Science
UK Research and Innovation
U.S. Department of EnergyDE-AC02-05CH11231
Nederlandse Organisatie voor Wetenschappelijk Onderzoek016
Bundesministerium für Bildung und Forschung01LN1304A, 01LN1711A
Nationaal Regieorgaan Praktijkgericht Onderzoek SIA016.Vidi.171011
National Centre for Atmospheric ScienceNE/P006779/1, NE/N018001/1
Natural Environment Research CouncilNE/M005909/1

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