首页|期刊导航|Petroleum|Relative permeability model for shale reservoirs considering water distribution and imbibition with two fractal regions

Relative permeability model for shale reservoirs considering water distribution and imbibition with two fractal regionsOA

中文摘要

Shale gas is a key transitional low-carbon energy source,offering a cleaner-burning alternative to coal,reducing greenhouse gas emissions,and supporting energy security during the transition to renewable energy systems.However,its efficient production is challenged by issues such as fracturing fluid retention,which adversely affects gas flow.During well shut-in and flowback following hydraulic fracturing,fracturing fluid imbibes into the formation,redistributing within its complex pore structure and altering gas-water flow dynamics.This study develops a comprehensive gas-water relative permeability model for shale reservoirs,using fractal theory and porous media mechanics.The model incorporates key factors,including pore size distribution,fractal geometry,tortuosity,pore connectivity,and fluid-phase interactions within distinct fractal regions of the shale.The analysis shows that increases in fractal tortuosity,critical water saturation,fractal dimension in the large-pore fractal region,displacement probability in the small-pore fractal region,and imbibition time reduce water relative permeability.In contrast,increasing displacement probabilities in both fractal regions,pore coordination number,and imbibition time enhance gas relative permeability.These findings highlight the importance of mitigating aqueous phase trapping and optimizing fracturing fluid flowback to minimize formation damage and improve production rates.By advancing our understanding of fluid behavior under complex reservoir conditions,this study provides a theoretical framework for designing operational strategies that enhance shale gas recovery,supporting its role in meeting energy demands while reducing greenhouse gas emissions.

Yingzhong Yuan;Liangliang Jiang;Aliakbar Hassanpouryouzband;Nanlin Zhang;Saeid Ataei Fath Abad;Zhilin Qi;Hongbin Liang;Wende Yan

Chongqing Key Laboratory of Complex Oil&Gas Fields Exploration and Development,Chongqing University of Science&Technology,Chongqing,401331,ChinaDepartment of Chemical and Petroleum Engineering,University of Calgary,Alberta,CanadaSchool of Geosciences,University of Edinburgh,Grant Institute,Edinburgh,EH93FE,UKResearch Center of Coastal and Urban Geotechnical Engineering,College of Civil Engineering and Architecture,Zhejiang University,Hangzhou,310058,ChinaSchool of Geosciences,University of Edinburgh,Grant Institute,Edinburgh,EH93FE,UKChongqing Key Laboratory of Complex Oil&Gas Fields Exploration and Development,Chongqing University of Science&Technology,Chongqing,401331,ChinaChongqing Key Laboratory of Complex Oil&Gas Fields Exploration and Development,Chongqing University of Science&Technology,Chongqing,401331,ChinaChongqing Key Laboratory of Complex Oil&Gas Fields Exploration and Development,Chongqing University of Science&Technology,Chongqing,401331,China

能源科技

Shale gas productionTwo fractal regionsGas-water two-phaseRelative permeability

《Petroleum》 2026 (2)

P.279-293,15

oil&Gas Major Project(2025ZD1405302)National Natural Science Foundation of China(52474034,52304024)Natural Science Foundation of Chongqing,China(CSTB2023NSCQMSX0264)Research project of Chongqing University of Science and Technology(20240323)for supporting this work

10.1016/j.petlm.2026.01.004

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