科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ Journal of Rock Mechanics and Geotechnical Engineering2026-03-01· Supercritical fluid

Microscale mineral dissolution and mechanical degradation in lacustrine shale during supercritical CO2–water interaction

Lianhe Sun, Zelong Mao, Yaochen Zhang, Haizhu Wang, Bin Wang, Boxin Ding, Xu Cheng, Gensheng Li, Peichun Amy Tsai

原始摘要(英文原文)· Original abstract
Shale formations are considered suitable reservoir and caprock candidates for CO 2 geologic sequestration. Upon CO 2 injection, fluid–rock reactions may weaken host rocks. Lacustrine shales, with rapid lithofacies shifts and pronounced compositional heterogeneity, warrant close investigation of the mechanisms of CO 2 –induced chemo-mechanical alteration. In this study, rock–fluid interaction experiments were conducted on three representative types of lacustrine shale – carbonate-rich, felsic, and mixed lithology– at 10 MPa and 40 °C. The results revealed that under supercritical CO 2 (SCCO 2 )–water–shale interactions, carbonate minerals dissolved at significantly higher rates than feldspar, with the carbonate-rich shale showing the greatest carbonate mineral loss (18.53%). Scanning electron microscopy (SEM) imaging revealed marked increases in post-reaction surface porosity and pore connectivity across all samples, with the trend becoming more pronounced at higher carbonate content. Dolomite dissolution was found to initiate at high-energy defect sites and propagate inward into the grain interiors, offering new insight into early-stage weakening under SCCO 2 exposure. Following reaction, all shale samples exhibited significant mechanical degradation: Young's modulus decreased by 14.3%–20.5%, hardness by 14.3%–25.0%, and fracture toughness by 11.8%–55.2%. Among them, the carbonate-rich shale exhibited the most substantial reductions, whereas the felsic shale – dominated by feldspar (albite, orthoclase) and quartz – showed the least deterioration. These findings suggest that, in the short term following CO 2 injection, the evolution of physical properties in reservoir rocks is primarily governed by the initial carbonate mineral content, establishing a predictive link between mineralogy and short-term storage integrity.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Microscale mineral dissolution and mechanical degradation in lacustrine shale during supercritical CO2–water interaction — 科研速览 Science Skim