Influence of supercritical CO2-water soaking on fracture toughness of shale: Implications for shale gas recovery and CO2 sequestration

The fracture toughness of shale influences fracture network formation and CO 2 storage stability in shale reservoirs. To investigate this effect, semi-circular bending (SCB) tests and measurements of surface energy, fracture surface roughness, and mineral compositions were conducted on samples exposed to supercritical CO 2 (ScCO 2 ) for 0–60 days. Fracture toughness increased initially and then plateaued, and the established empirical formula adequately describes this evolution. These changes, attributed to increased surface energy, fracture surface complexity, and bridging effects from mineral dissolution and precipitation, enable the shale to absorb and release more energy during fracture propagation. The increased fracture toughness hinders fracture propagation, limiting the development of complex fracture networks during gas exploitation but enhancing CO 2 storage stability. These findings offer insights into shale gas extraction and CO 2 geological sequestration.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-14
DOI
https://doi.org/10.1016/j.ijhydene.2026.157535
Primary Topic
CO2 Sequestration and Geologic Interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Influence of supercritical CO2-water soaking on fracture toughness of shale: Implications for shale gas recovery and CO2 sequestration

Lihua Long, Xidong Du, Shiwan Chen, Yujie Huang et al.
International Journal of Hydrogen Energy
CO2 Sequestration and Geologic Interactions
article

Influence of supercritical CO2-water soaking on fracture toughness of shale: Implications for shale gas recovery and CO2 sequestration

Lihua Long, Xidong Du, Shiwan Chen, Yujie Huang, Chao Qin, Guoqian Bai, Shaojie Zuo, Yongdong Jiang, Gaohan Wu, Yuanlong Wei
article en

Abstract

The fracture toughness of shale influences fracture network formation and CO 2 storage stability in shale reservoirs. To investigate this effect, semi-circular bending (SCB) tests and measurements of surface energy, fracture surface roughness, and mineral compositions were conducted on samples exposed to supercritical CO 2 (ScCO 2 ) for 0–60 days. Fracture toughness increased initially and then plateaued, and the established empirical formula adequately describes this evolution. These changes, attributed to increased surface energy, fracture surface complexity, and bridging effects from mineral dissolution and precipitation, enable the shale to absorb and release more energy during fracture propagation. The increased fracture toughness hinders fracture propagation, limiting the development of complex fracture networks during gas exploitation but enhancing CO 2 storage stability. These findings offer insights into shale gas extraction and CO 2 geological sequestration.

International Journal of Hydrogen EnergyVol. 275
Kunming University of Science and Technology (CN), Guizhou University (CN), Ministry of Education (RO), Guizhou Minzu University (CN), Ministry of Natural Resources (RW), Intelligent Energy (United Kingdom) (GB), State Key Laboratory of Coal Mine Disaster Dynamics and Control
National Natural Science Foundation of China
Openalex Percentile: Top 19%
CO2 Sequestration and Geologic Interactions
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