4.8 Review

Anthropogenic intensification of short-duration rainfall extremes

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NATURE REVIEWS EARTH & ENVIRONMENT
卷 2, 期 2, 页码 107-122

出版社

SPRINGERNATURE
DOI: 10.1038/s43017-020-00128-6

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资金

  1. European Research Council (INTENSE) [ERC-2013-CoG-617329]
  2. UK Natural Environment Research Council (FUTURE-STORMS) [NE/R01079X/1]
  3. Wolfson Foundation
  4. Royal Society through a Royal Society Wolfson Research Merit Award [WM140025]
  5. US National Science Foundation
  6. Met Office Hadley Centre Climate Programme - UK Department for Business, Energy & Industrial Strategy
  7. Department for Environment, Food Rural Affairs [GA01101]
  8. European Union [690462]
  9. Villum Foundation [13168]
  10. European Research Council under the European Union's Horizon 2020 Research and Innovation programme [771859]
  11. Novo Nordisk Foundation Interdisciplinary Synergy Program [NNF19OC0057374]
  12. US Army Corps of Engineers' Institute for Water Resources (IWR)
  13. NERC [NE/K00896X/1, NE/S017348/1, NE/V004166/1, NE/V00378X/1, NE/R01079X/1] Funding Source: UKRI
  14. Novo Nordisk Fonden [NNF19OC0057374] Funding Source: researchfish

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Short-duration rainfall extremes are intensifying as Earth's climate warms, leading to rapidly developing flash flooding, which calls for urgent climate change adaptation measures to manage increasing flood risks.
Short-duration (1-3 h) rainfall extremes can cause serious damage to societies through rapidly developing (flash) flooding and are determined by complex, multifaceted processes that are altering as Earth's climate warms. In this Review, we examine evidence from observational, theoretical and modelling studies for the intensification of these rainfall extremes, the drivers and the impact on flash flooding. Both short-duration and long-duration (>1day) rainfall extremes are intensifying with warming at a rate consistent with the increase in atmospheric moisture (similar to 7%K-1), while in some regions, increases in short-duration extreme rainfall intensities are stronger than expected from moisture increases alone. These stronger local increases are related to feedbacks in convective clouds, but their exact role is uncertain because of the very small scales involved. Future extreme rainfall intensification is also modulated by changes to temperature stratification and large-scale atmospheric circulation. The latter remains a major source of uncertainty. Intensification of short-duration extremes has likely increased the incidence of flash flooding at local scales, and this can further compound with an increase in storm spatial footprint to considerably increase total event rainfall. These findings call for urgent climate change adaptation measures to manage increasing flood risks.

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