Declining terrestrial water storage is associated with changes in effective hydrological memory and drought buffering

Abstract Drought impacts in large river basins depend not only on precipitation deficits but also on how terrestrial water storage (TWS) buffers climate anomalies through hydrological memory, which is the persistence of past storage conditions. In this study, we quantify this as the “effective hydrological memory,” measured as the e-folding decay time of the low-frequency TWS (periods over 12 months) autocorrelation function, since it integrates climate signals and basin physical properties. Using observations from the Gravity Recovery and Climate Experiment (GRACE) satellite missions from 2002 to 2025, we show that quasi-global TWS is decreasing at -172.62 ± 0.77 km 3 /year, driven by concentrated drying hotspots that outweigh regional gains. Across 50 major river basins, the average effective hydrological memory ranges from 4 to 16 months, with many regions showing significant trends. We found that 55% of basins experiencing storage depletion also exhibit a decline in drought buffering capacity. Notably, the lengthening of memory in several arid basins (up to +1.0 months/year) may reflect fossilized persistence linked to impaired recovery rather than increased resilience. Conversely, semi-arid systems with rapidly shortening memory (as low as -1.0 months/year) experience quicker drought onset and weaker buffering. These results reveal a transition from dynamically buffered systems toward regimes that are either too flashy to resist or too stagnant to recover. Our study suggests that storage-memory metrics may help assess basin resilience, although further proof-of-concept studies are still needed.

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Journal
Scientific Reports
Published
2026-10-03
DOI
https://doi.org/10.1038/s41598-026-73365-2
Primary Topic
Geophysics and Gravity Measurements
Type
article
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article

Declining terrestrial water storage is associated with changes in effective hydrological memory and drought buffering

Mohammed Abdallah, Christopher E. Ndehedehe, Vagner Gonçalves Ferreira, Jingkai Xie
Scientific Reports
Geophysics and Gravity Measurements
article

Declining terrestrial water storage is associated with changes in effective hydrological memory and drought buffering

Mohammed Abdallah, Christopher E. Ndehedehe, Vagner Gonçalves Ferreira, Jingkai Xie
article en

Abstract

Abstract Drought impacts in large river basins depend not only on precipitation deficits but also on how terrestrial water storage (TWS) buffers climate anomalies through hydrological memory, which is the persistence of past storage conditions. In this study, we quantify this as the “effective hydrological memory,” measured as the e-folding decay time of the low-frequency TWS (periods over 12 months) autocorrelation function, since it integrates climate signals and basin physical properties. Using observations from the Gravity Recovery and Climate Experiment (GRACE) satellite missions from 2002 to 2025, we show that quasi-global TWS is decreasing at -172.62 ± 0.77 km 3 /year, driven by concentrated drying hotspots that outweigh regional gains. Across 50 major river basins, the average effective hydrological memory ranges from 4 to 16 months, with many regions showing significant trends. We found that 55% of basins experiencing storage depletion also exhibit a decline in drought buffering capacity. Notably, the lengthening of memory in several arid basins (up to +1.0 months/year) may reflect fossilized persistence linked to impaired recovery rather than increased resilience. Conversely, semi-arid systems with rapidly shortening memory (as low as -1.0 months/year) experience quicker drought onset and weaker buffering. These results reveal a transition from dynamically buffered systems toward regimes that are either too flashy to resist or too stagnant to recover. Our study suggests that storage-memory metrics may help assess basin resilience, although further proof-of-concept studies are still needed.

Scientific Reports
Griffith University (AU), Hohai University (CN), State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering (CN)
Openalex Percentile: Top 15%
Geophysics and Gravity Measurements
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