Tianyu Chen, Yanyu Hao*, Guanglei Cui*, Zhejun Pan, Qinglong Du, Zhiming Hu, Lihong Zhu, Shujuan Zhang and Jiyuan Lu,
{"title":"天然气注入和生产过程中页岩基质中的天然气扩散机制分析:模型匹配与启示","authors":"Tianyu Chen, Yanyu Hao*, Guanglei Cui*, Zhejun Pan, Qinglong Du, Zhiming Hu, Lihong Zhu, Shujuan Zhang and Jiyuan Lu, ","doi":"10.1021/acs.energyfuels.4c0122610.1021/acs.energyfuels.4c01226","DOIUrl":null,"url":null,"abstract":"<p >Understanding the physical mechanisms of exploitation of such sources that occurs in the shale matrix in the middle and late stages is critical in the world’s energy supply. However, there is a current lack of research on the elusive relationship between mechanisms governing gas diffusion in shale matrices and the efficiency of gas production. In addition, various pores exist in a shale matrix within different diffusion mechanisms, affecting the mass transfer. In this work, we establish a microscopic model that considers the explicit interactions among various pore systems in the gas diffusion processes. The model was first verified with reported stress-dependent diffusion experimental data and then extended to the field scale. A sensitivity analysis was finally conducted to investigate the gas diffusion mechanism in gas production. The evolutions of the gas diffusion coefficient depended on the competition among the interactions, adsorption strain, and effective stress. “Production sensitive range” in which the shale gas production rate could be improved explicitly exists. Larger initial macroscopic and microscopic pore diffusivities can improve the early stage and overall gas-production efficiencies, respectively. Gas depletion is highly sensitive to extraction pressure in the middle and late production stages; as a result, adjusting the extraction pressure in a timely manner can improve the gas yield. In the deformable range, shale reservoirs with a large pore bulk modulus have better gas production rates in the middle stage. This work provides new insights into improving the gas production performance in the field.</p>","PeriodicalId":35,"journal":{"name":"Energy & Fuels","volume":"38 18","pages":"17468–17482 17468–17482"},"PeriodicalIF":5.3000,"publicationDate":"2024-09-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Analysis of Gas Diffusion Mechanisms in Shale Matrices during Gas Injection and Production: Model Match and Insights\",\"authors\":\"Tianyu Chen, Yanyu Hao*, Guanglei Cui*, Zhejun Pan, Qinglong Du, Zhiming Hu, Lihong Zhu, Shujuan Zhang and Jiyuan Lu, \",\"doi\":\"10.1021/acs.energyfuels.4c0122610.1021/acs.energyfuels.4c01226\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Understanding the physical mechanisms of exploitation of such sources that occurs in the shale matrix in the middle and late stages is critical in the world’s energy supply. However, there is a current lack of research on the elusive relationship between mechanisms governing gas diffusion in shale matrices and the efficiency of gas production. In addition, various pores exist in a shale matrix within different diffusion mechanisms, affecting the mass transfer. In this work, we establish a microscopic model that considers the explicit interactions among various pore systems in the gas diffusion processes. The model was first verified with reported stress-dependent diffusion experimental data and then extended to the field scale. A sensitivity analysis was finally conducted to investigate the gas diffusion mechanism in gas production. The evolutions of the gas diffusion coefficient depended on the competition among the interactions, adsorption strain, and effective stress. “Production sensitive range” in which the shale gas production rate could be improved explicitly exists. Larger initial macroscopic and microscopic pore diffusivities can improve the early stage and overall gas-production efficiencies, respectively. Gas depletion is highly sensitive to extraction pressure in the middle and late production stages; as a result, adjusting the extraction pressure in a timely manner can improve the gas yield. In the deformable range, shale reservoirs with a large pore bulk modulus have better gas production rates in the middle stage. 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Analysis of Gas Diffusion Mechanisms in Shale Matrices during Gas Injection and Production: Model Match and Insights
Understanding the physical mechanisms of exploitation of such sources that occurs in the shale matrix in the middle and late stages is critical in the world’s energy supply. However, there is a current lack of research on the elusive relationship between mechanisms governing gas diffusion in shale matrices and the efficiency of gas production. In addition, various pores exist in a shale matrix within different diffusion mechanisms, affecting the mass transfer. In this work, we establish a microscopic model that considers the explicit interactions among various pore systems in the gas diffusion processes. The model was first verified with reported stress-dependent diffusion experimental data and then extended to the field scale. A sensitivity analysis was finally conducted to investigate the gas diffusion mechanism in gas production. The evolutions of the gas diffusion coefficient depended on the competition among the interactions, adsorption strain, and effective stress. “Production sensitive range” in which the shale gas production rate could be improved explicitly exists. Larger initial macroscopic and microscopic pore diffusivities can improve the early stage and overall gas-production efficiencies, respectively. Gas depletion is highly sensitive to extraction pressure in the middle and late production stages; as a result, adjusting the extraction pressure in a timely manner can improve the gas yield. In the deformable range, shale reservoirs with a large pore bulk modulus have better gas production rates in the middle stage. This work provides new insights into improving the gas production performance in the field.
期刊介绍:
Energy & Fuels publishes reports of research in the technical area defined by the intersection of the disciplines of chemistry and chemical engineering and the application domain of non-nuclear energy and fuels. This includes research directed at the formation of, exploration for, and production of fossil fuels and biomass; the properties and structure or molecular composition of both raw fuels and refined products; the chemistry involved in the processing and utilization of fuels; fuel cells and their applications; and the analytical and instrumental techniques used in investigations of the foregoing areas.