Analysis of Compound Climate Extremes and Exposed Population in Africa Under Two Different Emission Scenarios

被引:103
作者
Weber, T. [1 ]
Bowyer, P. [1 ]
Rechid, D. [1 ]
Pfeifer, S. [1 ]
Raffaele, F. [2 ]
Remedio, A. R. [1 ]
Teichmann, C. [1 ]
Jacob, D. [1 ]
机构
[1] Helmholtz Zentrum Geesthacht, Climate Serv Ctr Germany GERICS, Hamburg, Germany
[2] Abdus Salam Int Ctr Theoret Phys, Trieste, Italy
关键词
compound climate extremes; population exposure; regional climate change; Africa; CORDEX-CORE; regional climate models; MODEL REMO; TEMPERATURE; EVENTS; RISK; RAINFALL; PRECIPITATION; VULNERABILITY; ENSEMBLE; REGIONS;
D O I
10.1029/2019EF001473
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
It is well established that Africa is particularly exposed to climate extremes including heat waves, droughts, and intense rainfall events. How exposed Africa is to the co-occurrence of these events is however virtually unknown. This study provides the first analysis of projected changes in the co-occurrence of five such compound climate extremes in Africa, under a low (RCP2.6) and high (RCP8.5) emissions scenario. These changes are combined with population projections for a low (SSP1) and high (SSP3) population growth scenario, in order to provide estimates of the number of people that may be exposed to such events at the end of the 21st century. We make use of an ensemble of regional climate projections from the Coordinated Output for Regional Evaluations (CORE) project embedded in the Coordinated Regional Climate Downscaling Experiment (CORDEX) framework. This ensemble comprises five different Earth System Model/Regional Climate Model (ESM/RCM) combinations with three different ESMs and two RCMs. We show that all five compound climate extremes will increase in frequency, with changes being greater under RCP8.5 than RCP2.6. Moreover, populations exposed to these changes are greater under RCP8.5/SSP3, than RCP2.6/SSP1, increasing by 47- and 12-fold, respectively, compared to the present-day. Regions of Africa that are particularly exposed are West Africa, Central-East Africa, and Northeast and Southeast Africa. Increased exposure is mainly driven by the interaction between climate and population growth, and the effect of population alone. This has important policy implications in relation to climate mitigation and adaptation. Plain Language Summary It is well known that Africa is exposed to a range of different climate hazards including droughts, heat waves, and extreme rainfall events, which cause major social and economic suffering. It is, however, largely unknown how exposed the African population is to the co-occurrence of such climate hazards. This is important because compound events will likely increase the suffering far and above that caused by individual climate hazards. In this study, we provide an analysis of potential changes in five different compound events, and the exposure of the African population to them, at the end of this century. Combining exposure to all compound events, the results show that compared to the present-day, the exposure of the African population may increase by 12- and 47-fold in the best- and worst-case scenarios, respectively. The spatial distribution of changes shows that West Africa and central and eastern regions of Africa may be particularly exposed. Increased exposure is mainly caused by the interaction between climate and population growth, and the effect of population alone. These results imply that any policy response designed to reduce exposure needs to address both climatic and socioeconomic factors. Key Points Five compound climate extremes are projected to be more frequent in Africa under both emission scenarios by the end of the century Populations in West Africa, Central-East Africa, and Northeast and Southeast Africa are projected to be particularly exposed Increased exposure is mainly driven by the interaction between climate and population growth, and the effect of population alone
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页数:19
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共 70 条
[1]   Global warming and changes in risk of concurrent climate extremes: Insights from the 2014 California drought [J].
AghaKouchak, Amir ;
Cheng, Linyin ;
Mazdiyasni, Omid ;
Farahmand, Alireza .
GEOPHYSICAL RESEARCH LETTERS, 2014, 41 (24) :8847-8852
[2]   Future drought risk in Africa: Integrating vulnerability, climate change, and population growth [J].
Ahmadalipour, Ali ;
Moradkhani, Hamid ;
Castelletti, Andrea ;
Magliocca, Nicholas .
SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 662 :672-686
[3]  
[Anonymous], **DATA OBJECT**
[4]   Climate change, population, and poverty: vulnerability and exposure to heat stress in countries bordering the Great Lakes of Africa [J].
Asefi-Najafabady, Salvi ;
Vandecar, Karen L. ;
Seimon, Anton ;
Lawrence, Peter ;
Lawrence, Deborah .
CLIMATIC CHANGE, 2018, 148 (04) :561-573
[5]   Temporally Compound Heat Wave Events and Global Warming: An Emerging Hazard [J].
Baldwin, Jane Wilson ;
Dessy, Jay Benjamin ;
Vecchi, Gabriel A. ;
Oppenheimer, Michael .
EARTHS FUTURE, 2019, 7 (04) :411-427
[6]  
Barros VR, 2014, CLIMATE CHANGE 2014: IMPACTS, ADAPTATION, AND VULNERABILITY, PT B: REGIONAL ASPECTS, P1133
[7]  
CDS, 2022, Copernicus Climate Change Service Climate Data Store (CDS)
[8]   Impacts of Climate Change on Health and Wellbeing in South Africa [J].
Chersich, Matthew F. ;
Wright, Caradee Y. ;
Venter, Francois ;
Rees, Helen ;
Scorgie, Fiona ;
Erasmus, Barend .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2018, 15 (09)
[9]   A new spatially distributed added value index for regional climate models: the EURO-CORDEX and the CORDEX-CORE highest resolution ensembles [J].
Ciarlo, James M. ;
Coppola, Erika ;
Fantini, Adriano ;
Giorgi, Filippo ;
Gao, XueJie ;
Tong, Yao ;
Glazer, Russell H. ;
Alavez, Jose Abraham Torres ;
Sines, Taleena ;
Pichelli, Emanuela ;
Raffaele, Francesca ;
Das, Sushant ;
Bukovsky, Melissa ;
Ashfaq, Moetasim ;
Im, Eun-Soon ;
Thanh Nguyen-Xuan ;
Teichmann, Claas ;
Remedio, Armelle ;
Remke, Thomas ;
Buelow, Katharina ;
Weber, Torsten ;
Buntemeyer, Lars ;
Sieck, Kevin ;
Rechid, Diana ;
Jacob, Daniela .
CLIMATE DYNAMICS, 2021, 57 (5-6) :1403-1424
[10]   Temperature and humidity based projections of a rapid rise in global heat stress exposure during the 21st century [J].
Coffel, Ethan D. ;
Horton, Radley M. ;
de Sherbinin, Alex .
ENVIRONMENTAL RESEARCH LETTERS, 2018, 13 (01)