热-水力-力学(THM)模拟及其在裂缝性页岩气藏热采中的应用研究

HanYi Wang
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引用次数: 20

摘要

我们首次提出了压裂系统中页岩气流动的通用多物理场模型,该模型具有完全耦合的热-水力-机械(THM)特性。研究了气体吸附、真实气体性质、气体在纳米尺度孔隙空间中的流动以及地质力学对总气体流动能力的影响。研究还表明,提高页岩温度可以显著改变页岩气体吸附行为特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Numerical Study of Thermal-Hydraulic-Mechanical (THM) Simulation with the Application of Thermal Recovery in Fractured Shale Gas Reservoirs
We presented a general multi-physics model for shale gas flow in fractured systems, first the first time, with fully coupled thermal-hydraulic-mechanical (THM) properties. The impact of gas adsorption, real gas properties, gas flow in nano-scale pore space and geomechanics effects on total gas flow capacity are investigated. We also showed that by elevating shale rock temperature, the characteristic of gas adsorption behavior can be substantially altered.
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