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June 20, 2026Energy Geoscience1 citationsOpen Access

Coupled multiphysics mechanisms, impurity effects, and operational insights for CO2 storage in depleted gas reservoirs

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LJLabiba Nusrat JahanCOChinedu J. OkereDHD. G. Hatzignatiou

Key Points

  • The aim is to synthesize coupled multiphysics mechanisms and impurity effects impacting CO2 storage in depleted gas reservoirs.
  • Integrated synthesis of experimental, numerical, and field-scale evidence.
  • Assessment of impurity effects such as H2S, SOx, NOx, and N2 on CO2 properties.
  • Use of integrated monitoring strategies and advanced modeling.
  • Supercritical CO2 injection improves storage efficiency but is sensitive to phase transitions and hydrate formation.
  • Geomechanical risks such as compaction and fault reactivation are linked to pore-pressure changes.
  • Long-term field projects indicate safe CO2 storage in depleted reservoirs with proper monitoring and pressure management.

Abstract

Depleted gas reservoirs offer promising options for large-scale CO 2 sequestration due to their pre-existing pore networks, low formation pressure at the start of injection, demonstrated caprock integrity, and substantial operational history. However, safe and efficient storage requires a detailed understanding of coupled thermo-hydro-mechanical-chemical (THMC) processes, impurity interactions, and geomechanical responses. This review provides the first integrated synthesis that connects these multiphysics mechanisms in depleted gas reservoirs, addressing a gap not covered in existing CCS reviews. The study consolidates experimental, numerical, and field-scale evidence to explain interactions governing CO 2 behavior in carbonate, sandstone, and shale systems. Supercritical CO 2 injection maximizes storage efficiency but remains sensitive to phase transitions and hydrate formation, which may impair injectivity and containment. A novel contribution of this review is the combined assessment of impurity effects and depletion history, demonstrating how species such as H 2 S, SO x , NO x , and N 2 modify CO 2 properties, drive mineral reactions, and influence plume migration pathways in ways distinct from saline aquifers. Geomechanical risks, including compaction, subsidence, and potential fault reactivation, are linked to pore-pressure evolution and stress changes. Integrated monitoring strategies (such as downhole gauges, fiber-optic sensing, microseismic surveillance, InSAR, and time-lapse seismic) together with advanced THMC modeling enhance anomaly detection and guide adaptive operations. Insights from long-term field projects (K12-B, Rousse, Otway) confirm that with careful pressure management, impurity awareness, and continuous monitoring, depleted gas reservoirs can safely store CO 2 for decades. By unifying these mechanisms into a coherent framework, this review provides a novel and practical roadmap for optimizing storage performance and mitigating operational and geomechanical risks in depleted gas reservoirs.

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Cite This Study

Jahan et al. (2026) studied this question.

synapsesocial.com/papers/6a362e1edb0793dc1a5360e4https://doi.org/10.1016/j.engeos.2026.100606
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