Elastoplastic analytical solutions for compressed air energy storage caverns under cyclic loading and unloading and non-hydrostatic in-situ stress

Compressed air energy storage (CAES) in hard-rock caverns involves excavation, support installation, first charging, and long-term cyclic charging and discharging. These engineering stages produce different elastoplastic mechanisms, especially under non-hydrostatic in-situ stress. A semi-analytical formulation is developed for a circular cavern under biaxial far-field stress. The solution distinguishes unloading-stage plasticity, an intermediate elastic state, and loading-stage plasticity, and derives the corresponding stress and displacement fields by combining the Kolosov–Muskhelishvili complex-variable elastic solution, the Mohr–Coulomb criterion, radial plastic equilibrium, and non-associated flow. Continuity of radial stress and displacement is enforced at the elastic–plastic (EP) interface, allowing excavation and pressurisation to be treated within one path-dependent formulation. The results show that the lateral pressure coefficient governs both plastic-zone extent and the direction in which yielding and deformation concentrate. Comparison between the loading-side Mohr–Coulomb shear threshold and the tensile cut-off pressure gives failure-initiation pressure envelopes for different confinement and strength conditions. A cyclic damage calculation is then used to estimate progressive degradation, residual displacement, and the maximum allowable operating pressure that considers accumulated damage during long-term operation.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-09-04
DOI
https://doi.org/10.1016/j.est.2026.124439
Primary Topic
Solar Energy Systems and Technologies
Type
article
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article

Elastoplastic analytical solutions for compressed air energy storage caverns under cyclic loading and unloading and non-hydrostatic in-situ stress

Gengyun Liu, Azzam Rafig, Yang Dong, Caichu Xia
Journal of Energy Storage
Solar Energy Systems and Technologies
article

Elastoplastic analytical solutions for compressed air energy storage caverns under cyclic loading and unloading and non-hydrostatic in-situ stress

Gengyun Liu, Azzam Rafig, Yang Dong, Caichu Xia
article en

Abstract

Compressed air energy storage (CAES) in hard-rock caverns involves excavation, support installation, first charging, and long-term cyclic charging and discharging. These engineering stages produce different elastoplastic mechanisms, especially under non-hydrostatic in-situ stress. A semi-analytical formulation is developed for a circular cavern under biaxial far-field stress. The solution distinguishes unloading-stage plasticity, an intermediate elastic state, and loading-stage plasticity, and derives the corresponding stress and displacement fields by combining the Kolosov–Muskhelishvili complex-variable elastic solution, the Mohr–Coulomb criterion, radial plastic equilibrium, and non-associated flow. Continuity of radial stress and displacement is enforced at the elastic–plastic (EP) interface, allowing excavation and pressurisation to be treated within one path-dependent formulation. The results show that the lateral pressure coefficient governs both plastic-zone extent and the direction in which yielding and deformation concentrate. Comparison between the loading-side Mohr–Coulomb shear threshold and the tensile cut-off pressure gives failure-initiation pressure envelopes for different confinement and strength conditions. A cyclic damage calculation is then used to estimate progressive degradation, residual displacement, and the maximum allowable operating pressure that considers accumulated damage during long-term operation.

Journal of Energy StorageVol. 181
Ningbo University (CN), TU Bergakademie Freiberg (DE), RWTH Aachen University (DE)
Affordable and clean energy
Openalex Percentile: Top 19%
Solar Energy Systems and Technologies
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