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May 15, 2026Nature4 citationsOpen Access

More concentrated precipitation decreases terrestrial water storage

CLCorey LeskJMJustin S. Mankin

Key Points

  • This research aims to understand how the concentration of daily precipitation into fewer, heavier events affects terrestrial water availability.
  • Used observational data to analyze global impact of precipitation concentration on land water availability.
  • Employed simple and complex land-surface models to elucidate the observed effects and hydrologic partitioning changes.
  • Conducted idealized simulations to investigate the role of evaporation in these changes.
  • Concentrated precipitation results in decreased land water availability across all climates, affecting 27% of the global population at 2 °C warming.
  • The drying effect matches the wetting effect of increased total precipitation, indicating a significant shift in water balance.
  • Enhanced evaporation due to hydrologic partitioning contributes to these observed impacts on terrestrial water storage.

Abstract

Terrestrial water availability is a key determinant of human and ecosystem well-being1,2. Apart from mean precipitation and evaporation changes3,4, it is unknown how daily-scale precipitation concentration into fewer, heavier events affects hydrologic partitioning and the land water balance5–9. Here we show observationally that more concentrated precipitation decreases land water availability across all climates globally, a drying effect as strong in magnitude as the wetting effect of increased total precipitation. Simple and complex land-surface models recover the observed effect, whereas idealized simulations show that it arises from enhanced evaporation caused by hydrologic partitioning changes at the land surface. Projected terrestrial water storage impacts of warming-driven precipitation concentration at about 2 °C of warming shift the land surface to abnormally dry conditions (≥0.5 standard deviation10) for 27% of the global population, independent of any total precipitation or irrigation changes. Our results show new key determinants of the land water balance, highlighting its sensitivity to the temporal distribution of precipitation, with broad implications for future water availability. Concentration of precipitation in large events decreases land water availability, and this effect will further increase with a future warming climate.

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Cite This Study

Lesk et al. (2026) studied this question.

synapsesocial.com/papers/6a06b998e7dec685947ac495https://doi.org/10.1038/s41586-026-10487-7
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  1. 1GMM estimation with cross sectional dependence1999 · 2,699 citations
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  3. 3Ecological Climatology2015 · 346 citations
  4. 4concentration-TWS-largedata2026 · 1 citations
  5. 5Impact of changes in GRACE derived terrestrial water storage on vegetation growth in Eurasia2015 · 54 citations