The changing nature of hydroclimatic risks across South Africa

被引:0
作者
Adam Schlosser
Andrei Sokolov
Ken Strzepek
Tim Thomas
Xiang Gao
Channing Arndt
机构
[1] MIT,Joint Program On the Science and Policy of Global Change
[2] International Food Policy Research Institute (IFPRI),undefined
来源
Climatic Change | 2021年 / 168卷
关键词
Climate change; Risk; Precipitation; Temperature; Mitigation;
D O I
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中图分类号
学科分类号
摘要
We present results from large ensembles of projected twenty-first century changes in seasonal precipitation and near-surface air temperature for the nation of South Africa. These ensembles are a result of combining Monte Carlo projections from a human-Earth system model of intermediate complexity with pattern-scaled responses from climate models of the Coupled Model Intercomparison Project Phase 5 (CMIP5). These future ensemble scenarios consider a range of global actions to abate emissions through the twenty-first century. We evaluate distributions of surface-air temperature and precipitation change over three sub-national regions: western, central, and eastern South Africa. In all regions, we find that without any emissions or climate targets in place, there is a greater than 50% likelihood that mid-century temperatures will increase threefold over the current climate’s two-standard deviation range of variability. However, scenarios that consider more aggressive climate targets all but eliminate the risk of these salient temperature increases. A preponderance of risk toward decreased precipitation (3 to 4 times higher than increased) exists for western and central South Africa. Strong climate targets abate evolving regional hydroclimatic risks. Under a target to limit global climate warming to 1.5 °C by 2100, the risk of precipitation changes within South Africa toward the end of this century (2065–2074) is commensurate to the risk during the 2030s without any global climate target. Thus, these regional hydroclimate risks over South Africa could be delayed by 30 years and, in doing so, provide invaluable lead-time for national efforts to prepare, fortify, and/or adapt.
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  • [1] Adler RF(2018)The Global Precipitation Climatology Project (GPCP) monthly analysis (new Version 2.3) and a review of 2017 Global Precipitation Atmosphere 9 138-349
  • [2] Sapiano M(2019)Climate change and developing country growth: the cases of Malawi, Mozambique, and Zambia Clim Change 154 335-2763
  • [3] Huffman GJ(1998)The cold ocean–warm land pattern: model simulation and relevance to climate change detection J Climate 11 2743-634
  • [4] Wang J(2012)Uncertainties in simulating regional climate of Southern Africa: sensitivity to physical parameterizations using WRF Clim Dyn 38 613-48
  • [5] Gu G(2015)An uncertainty approach to assessment of climate change impacts on the Zambezi River Basin Clim Chang 130 35-3144
  • [6] Bolvin D(2012)A scaling approach to probabilistic assessment of regional climate change J Clim 25 3117-199
  • [7] Chiu L(1999)Surface air temperature and its variations over the last 150 years Rev Geophys 37 173-566
  • [8] Schneider U(2013)Robustness of pattern scaled climate change scenarios for adaptation decision support Clim Change 122 555-242
  • [9] Becker A(2003)Pattern scaling—an examination of the accuracy of the technique for describing future climates Clim Change 60 217-68
  • [10] Nelkin E(2014)The CRUTEM4 land-surface air temperature data set: construction, previous versions and dissemination via Google Earth Earth Syst Sci Data 6 61-3414