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首页> 外文期刊>International journal of computational fluid dynamics >Modeling of Heat and Mass Transfer in a Fractured Porous Medium
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Modeling of Heat and Mass Transfer in a Fractured Porous Medium

机译:断裂多孔介质中传热和传质的模型

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While fractured formations are possibly the most important contributors to the production of oil worldwide, modeling fractured formations with rigorous treatments has eluded reservoir engineers in the past. To date, one of the most commonly used fractured reservoir models remains the one that was suggested by Warren and Root nearly four decades ago. In this paper, a new model for fractures embedded in a porous medium is proposed. The model considers the Navier-Stokes equation in the fracture (channel flow) while using the Brinkman equation for the porous medium. Unlike the previous approach, the proposed model does not require the assumption of orthogonality of the fractures (sugar cube assumption) nor does it impose incorrect boundary conditions for the interface between the fracture and the porous medium. Also, the transfer coefficient between the fracture and matrix interface does not need to be specified, unlike the cases for which Darcy's law is used. In order to demonstrate the usefulness of the approach, a two-dimensional model of a fractured formation is developed and numerical simulation runs conducted. The proposed model is derived through a series of finite element modeling runs for various cases using the Navier-Stokes equation in the channel while maintaining the Brinkman equation in the porous medium. Various cases studied include different fracture orientations, fracture frequencies, and thermal and solutal constraints. The usefulness of the proposed model in modeling complex formations is discussed. Finally, a series of numerical runs also provided validity of the proposed model for the cases in which thermal and solutal effects are important. Such a study of double diffusive phenomena, coupled with forced convection, in the context of fractured formations has not been reported before.
机译:尽管裂隙地层可能是全球范围内石油生产的最重要贡献,但过去对储层工程师进行严格处理来模拟裂隙地层一直是人们所无法企及的。迄今为止,最常用的裂缝储层模型之一仍然是沃伦和根(Warren and Root)在将近40年前提出的模型。本文提出了一种新的埋在多孔介质中的裂缝模型。该模型在裂缝(通道流)中考虑了Navier-Stokes方程,而将Brinkman方程用于多孔介质。与以前的方法不同,所提出的模型既不需要假设裂缝正交(假设是糖立方),也不需要为裂缝和多孔介质之间的界面施加不正确的边界条件。而且,与使用达西定律的情况不同,无需指定裂缝和基质界面之间的传递系数。为了证明该方法的有效性,开发了裂缝地层的二维模型并进行了数值模拟。通过在通道中使用Navier-Stokes方程,同时在多孔介质中保持Brinkman方程的各种情况下,通过一系列有限元建模运行,得出了建议的模型。研究的各种情况包括不同的裂缝方向,裂缝频率以及热约束和固溶约束。讨论了该模型在复杂地层建模中的实用性。最后,一系列的数值计算也为热和溶液效应很重要的情况提供了所提出模型的有效性。以前没有关于破裂地层背景下的双重扩散现象和强制对流的研究。

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