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使用一氧化碳作为地热流体的破裂地热储层:数值分析与机器学习建模

Fractured Geothermal Reservoir Using CO as Geofluid: Numerical Analysis and Machine Learning Modeling.

作者信息

Gudala Manojkumar, Tariq Zeeshan, Govindarajan Suresh Kumar, Yan Bicheng, Sun Shuyu

机构信息

Physical Science and Engineering (PSE) Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.

Reservoir Simulation Laboratory, Petroleum Engineering Programm, Department of Ocean Engineering, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

ACS Omega. 2024 Feb 6;9(7):7746-7769. doi: 10.1021/acsomega.3c07215. eCollection 2024 Feb 20.

Abstract

The effect of natural fractures, their orientation, and their interaction with hydraulic fractures on the extraction of heat and the extension of injection fluid are fully examined. A fully coupled and dynamic thermo-hydro-mechanical (THM) model is utilized to examine the behavior of a fractured geothermal reservoir with supercritical CO as a geofluid. The interaction between natural fracture and hydraulic fracture, as well as the type and location of geofluids, influences the production temperature, thermal strain, mechanical strains, and effective stress in rock/fractures in the reservoir. A mathematical model is developed by using the fully connected neural network (FCN) model to establish a mathematical relationship between the reservoir parameters and the temperature. The response surface methodology is applied for qualitative numerical experimentation. It is found that the developed FCN model can be utilized to forecast the temporal variation of temperature in the production well to a desired level using FCN. Therefore, the numerical simulations developed with the FCN method can be useful tools to investigate the temperature evolution with higher accuracy.

摘要

全面研究了天然裂缝的影响、其方位以及它们与水力裂缝的相互作用对热量提取和注入流体扩展的影响。利用一个完全耦合的动态热-水-力学(THM)模型来研究以超临界CO作为地热流体的裂缝性地热储层的行为。天然裂缝与水力裂缝之间的相互作用以及地热流体的类型和位置,会影响储层中岩石/裂缝的生产温度、热应变、机械应变和有效应力。通过使用全连接神经网络(FCN)模型开发了一个数学模型,以建立储层参数与温度之间的数学关系。应用响应面方法进行定性数值实验。结果发现,所开发的FCN模型可用于利用FCN将生产井中温度的时间变化预测到期望水平。因此,用FCN方法进行的数值模拟可以成为以更高精度研究温度演化的有用工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fad0/10882605/a02c12fc3895/ao3c07215_0001.jpg

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