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Updated: Jul 15, 2026

Experimental Study of the Relationship Between Particle Size and Methane Sorption Capacity in Shale
Published on: August 2, 2018
Molecular simulation study on CO2 sequestration and shale gas displacement in the quartz-calcite composite system
Yifeng Ma1, Caili Dai1, Jianwei Gu1
1Shandong Key Laboratory of Oil and Gas Field Chemistry, Department of Petroleum Engineering, China University of Petroleum (East China) Qingdao 266580 China daicl@upc.edu.cn gjwLcp@upc.edu.cn.
None:
Industrialization has raised atmospheric CO2 levels and worsened global warming, driving the urgent demand for CO2 emission reduction. CO2 enhanced shale gas recovery (CO2-ESGR) simultaneously boosts gas production and CO2 storage. This study constructs a quartz calcite composite nanopore model and employs GCMC, MD, and DFT simulations to investigate CO2 adsorption and shale gas displacement. The results show that CO2 adsorption follows the Langmuir isotherm. CO2 preferentially adsorbs on pore surfaces (especially calcite) with an asymmetric distribution. The isosteric heat for CO2 declines with the elevation of pressure and water content. When the moisture content is 15 wt%, compared to the dry state, the absorption of CO2 decreases by 45.9% because water can significantly inhibit adsorption. This indicates that compared to CO2 molecules, H2O molecules preferentially occupied the adsorption sites. DFT calculations indicate that the adsorption energy of CO2 on both quartz and calcite surfaces is lower than that of CH4 and C2H6. The electronic structure analysis reveals the microscopic essence of the preferential adsorption of CO2. It provides a theoretical basis for a deeper understanding of CO2 sequestration in shale reservoirs and the study of CO2-ESGR.

