Abstract
Groundwater extraction decreases water pressure in aquifer systems, causing reversible or irreversible deformation of the water-bearing layers that manifests as recoverable or permanent displacements of the land surface, respectively. Detecting and forecasting when and where an aquifer system transitions from a reversible, poroelastic regime, to an irreversible, inelastic regime remains a crucial challenge given the complex, heterogeneous nature of aquifer systems. Here we leverage high-resolution measurements of ground deformation and groundwater levels from 2016 to 2022 to characterize both regimes at the
regional scale and show that a critical transition occurred in large areas of the Sacramento Valley during California’s 2020-2022 extreme drought. Our analysis reveals that, while deformation remained primarily poroelastic during the 2016-2020 inter-drought period, land subsidence in areas of intense groundwater extraction accelerated abruptly in 2021, with subsidence rates exceeding the inferred poroelastic rates by several decimeters per year. Such rapid and extensive land subsidence indicates severe inelastic compaction and loss of
storage capacity of the underlying aquifer system, which pose a serious threat to California’s water resources and infrastructure. A comparison of present-day deformation with historical groundwater levels reveals that this abrupt transition was not predictable based on the available groundwater records alone.
regional scale and show that a critical transition occurred in large areas of the Sacramento Valley during California’s 2020-2022 extreme drought. Our analysis reveals that, while deformation remained primarily poroelastic during the 2016-2020 inter-drought period, land subsidence in areas of intense groundwater extraction accelerated abruptly in 2021, with subsidence rates exceeding the inferred poroelastic rates by several decimeters per year. Such rapid and extensive land subsidence indicates severe inelastic compaction and loss of
storage capacity of the underlying aquifer system, which pose a serious threat to California’s water resources and infrastructure. A comparison of present-day deformation with historical groundwater levels reveals that this abrupt transition was not predictable based on the available groundwater records alone.
| Original language | English |
|---|---|
| Pages (from-to) | 1-13 |
| Number of pages | 13 |
| Journal | Proceedings of the National Academy of Sciences |
| Publication status | Accepted - 17 Jun 2026 |
Data Availability Statement
The processed GNSS, InSAR and groundwater level datasets are available at https://dataverse.ipgp.fr/privateurl.xhtml?token= fd96764d-756a-4939-86fe-8bc5c14a4112andtheGRACE/FOM-SSA Level-3 solution (2003-01 to 2022-09) at https://dataverse.ipgp.fr/dataset.xhtml?persistentId=doi: 10.18715/IPGP.2023.lgquie56.Funding
S. L. was supported by NSERC postgraduate doctoral scholarship PGSD-3-517078-2018 and NASA grant NNH18ZDA001N-ESI,K.C.,L.-M.G. and L.F.by CNES TOSCA grant HYDROGEO,M.D. and R.J.by ERC under the European Unions Horizon 2020 research and innovation program (Geo-4D project, grant agreement758210) and D.F.A.by NASA grant NNH18ZDA001N-ESI.RJ acknowledges funding from the European Unions Horizon EU research and innovation program (iQuake, project, grant agreement 1101125232) .D.F.A’s part of this study was performed at Jet Propulsion Laboratory, California Institute of Technology, under NASA contract.
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 15 Life on Land
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