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March 18, 2026Earth System Dynamics0 citationsOpen Access

Emerging global freshwater challenges unveiled through observation-constrained projections

FHFei HuoYLYanping LiZLZhenhua Li

Key Points

  • The aim is to analyze the discrepancies in global hydrological projections and refine future water storage estimates based on observations.
  • Utilized the emergent constraint methodology to adjust projections against observational data.
  • Analyzed projections from the Inter-Sectoral Impact Model Intercomparison Project phase 3b (ISIMIP3b).
  • Compared low and high emissions scenarios to assess changes in terrestrial water storage.
  • Estimated mean terrestrial water storage could be 83 mm lower than raw projections by the century's end.
  • The 95th percentile upper bounds of projected water storage were reduced significantly under both emissions scenarios.
  • Findings suggest that water resource planning might underestimate future water shortages due to biased model projections.

Abstract

Abstract. Future hydrological projections exhibit significant discrepancies among models, undermining confidence in the predicted magnitude and timing of hydrological extremes. Here we show that observation-constrained changes in global mean terrestrial water storage (TWS), excluding Greenland and Antarctica, could be approximately 83 mm lower than raw projections from the Inter-Sectoral Impact Model Intercomparison Project phase 3b (ISIMIP3b) by the end of this century under both the low (SSP1-2.6) and high (SSP3-7.0) future forcing scenarios. Notably, the 95th percentile upper bounds are substantially reduced from 2 to −96 mm under the low-emissions scenario and from 8 to −105 mm under the high-emissions scenario, revealing a notable overestimation of global freshwater availability in the raw model projections. Global models are intricate process representations, making it challenging to isolate causes of their differences with observations. However, by leveraging the emergent constraint (EC) methodology and inter-model spread to empirically adjust biases against observations, we derive more tightly constrained estimates of future TWS changes than those obtained from conventional, unconstrained approaches. The EC-corrected estimates are substantially lower than the raw ISIMIP3b projections, implying that current water resource planning may underestimate the severity of future water shortages, particularly if global water demand remains stable or continues to rise. Our findings pinpoint the urgent need to reduce model uncertainties and enhance the reliability of future hydrological projections to better inform water resource management and climate adaptation strategies.

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Cite This Study

Huo et al. (2026) studied this question.

synapsesocial.com/papers/69ba43a84e9516ffd37a51c0https://doi.org/10.5194/esd-17-291-2026
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