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March 3, 2026Energy & Fuels9 citations

A Review and Outlook on Experimental Advances and Innovations in Geological CO 2 Storage: Insights from Depleted Gas Reservoirs and Saline Aquifers

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SWSilagi WanambwaCOChinedu J. OkereDHD. G. Hatzignatiou

Key Points

  • Enhanced methodologies, such as microfluidic visualization, improve the representativeness of carbon capture systems.
  • Experimental assessments indicate significant issues with inconsistent pressure–temperature conditions impacting performance reliability.
  • This review conducts a critical analysis of prevalent gaps in brine chemistry and proposes standards for improving experimental designs.
  • Recommendations for integrating advanced strategies aim to optimize CO2 storage technologies in geological formations.

Abstract

Geological storage of carbon dioxide (CO2) in depleted gas reservoirs and deep saline aquifers is a key part of global decarbonization efforts. As carbon capture and storage advances toward commercial-scale deployment, the credibility and scalability of laboratory experiments are increasingly vital for guiding safe and effective field implementation. This review offers a comprehensive, cross-scale evaluation of experimental methodologies, including core flooding, high-pressure, high-temperature systems, microfluidic visualization, and emerging systems such as multilayer commingled/compartmentalized core flooding, 3D-printed micromodels, and AI-powered digital twins. These innovations are demonstrated to enhance representativeness, reproducibility, and real-time insight, thereby addressing the limitations of conventional workflows. A critical analysis of methodological gaps, such as inconsistent pressure–temperature conditions, oversimplified brine chemistry, and a lack of standardization, reveals experimental sources of scale translation errors and performance uncertainty. By comparing the unique challenges of depleted gas reservoirs (such as low water saturation and legacy well leakage) to those of saline aquifers (including pressure buildup and caprock integrity), this review identifies formation-specific priorities for experimental design. Novel contributions include a synthesis of best practices, integration strategies for model calibration, and recommendations for standardizing core handling, saturation procedures, and reporting protocols. This work serves as a guide for developing robust, field-relevant experimental strategies that can increase the deployment and regulatory acceptance of CO2 storage technologies at scale.

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Cite This Study

Wanambwa et al. (2026) studied this question.

synapsesocial.com/papers/69a765f6badf0bb9e87db15ahttps://doi.org/10.1021/acs.energyfuels.5c06384
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