水淹现场案例的两相流动热-水-机械(THM)建模

Yuhao Liu , Fengshou Zhang , Dingwei Weng , Hongbo Liang , Chunming He , Keita Yoshioka
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引用次数: 0

摘要

地下能源系统仿真涉及热、水力和机械(THM)等多物理过程,需要采用所谓的 THM 耦合建模方法。THM 耦合建模通常用于地热能源生产。然而,对于碳氢化合物的提取,我们还需要考虑多相流。在本文中,我们通过对储层中多孔介质流动中两相混合物的治理方程进行积分,描述了变形多孔介质中非等温两相流的三维数值模型。为了考虑地下条件中的相互交织影响,我们引入了与温度相关的流体粘度和流体密度,以及与应变相关的储层渗透率。随后,我们使用开源并行代码 OpenGeoSys 对十年水淹过程进行了数值实验。我们考虑了在现实场景中注入较冷水的不同井型。结果表明,我们的模型可以同时模拟温度、孔隙压力、地下应力和水饱和度之间复杂的相互作用,从而评估采收性能。高温可以促进流体流动,而在非等温条件下注入冷水则会因显著的热应力而导致法向应力降低。在不同的井型下,注水井和生产井之间的相对位置会改变置换效率。这一发现为大储层深度和高温环境下油气开采过程中的流体流动和诱导应力演化提供了重要参考。
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Two-phase flow thermo-hydro-mechanical modeling for a water flooding field case

Simulation of subsurface energy system involves multi-physical processes such as thermal, hydraulical, and mechanical (THM) processes, and requires a so-called THM coupled modeling approach. THM coupled modeling is commonly performed in geothermal energy production. However, for hydrocarbon extraction, we need to consider multiphase flow additionally. In this paper, we describe a three-dimensional numerical model of non-isothermal two-phase flow in the deformable porous medium by integrating governing equations of two-phase mixture in the porous media flow in the reservoir. To account for inter-woven impacts in subsurface conditions, we introduced a temperature-dependent fluid viscosity and a fluid density along with a strain-dependent reservoir permeability. Subsequently, we performed numerical experiments of a ten-year water flooding process employing the open-source parallelized code, OpenGeoSys. We considered different well patterns with colder water injection in realistic scenarios. Our results demonstrate that our model can simulate complex interactions of temperature, pore pressure, subsurface stress and water saturation simultaneously to evaluate the recovery performance. High temperature can promote fluid flow while cold water injection under non-isothermal conditions causes the normal stress reduction by significant thermal stress. Under different well patterns the displacement efficiency will be changed by the relative location between injection and production wells. This finding has provided the important reference for fluid flow and induced stress evolution during hydrocarbon exploitation under the environment of large reservoir depth and high temperature.

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