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A physically based approach for modeling multiphase fracture-matrix interaction in fractured porous media

机译:基于物理的裂缝多孔介质中多相裂缝-基质相互作用建模方法

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摘要

A physically based numerical approach is presented for modeling fracture-matrix interaction, which is a key issue for fractured reservoir simulation. Commonly used mathematical models for dealing with such interactions employ a dual- or multiple-continuum concept, in which fractures and matrix are represented as overlapping, different, but interconnected continua, described by parallel sets of conservation equations. The conventional single-point upstream weighting scheme, in which the fracture relative permeability is used to represent the counterpart at the fracture-matrix interface, is the most common scheme by which to estimate flow mobility for fracture-matrix flow terms. However, such a scheme has a serious flaw, which may lead to unphysical solutions or significant numerical errors. To overcome the limitation of the conventional upstream weighting scheme, this paper presents a physically based modeling approach for estimating physically correct relative permeability in calculating multiphase flow between fractures and the matrix, using continuity of capillary pressure at the fracture-matrix interface. The proposed approach has been implemented into two multiphase reservoir simulators and verified using analytical solutions and laboratory experimental data. The new method is demonstrated to be accurate, numerically efficient, and easy to implement in dual- or multiple-continuum models.
机译:提出了一种基于物理的数值方法来模拟裂缝-基质相互作用,这是裂缝储层模拟的关键问题。用于处理此类相互作用的常用数学模型采用双连续或多连续体概念,其中裂缝和矩阵表示为重叠,不同但相互连接的连续体,由平行的守恒方程组描述。常规的单点上游加权方案(其中裂缝相对渗透率用来表示裂缝-基质界面处的对应物)是最常见的方案,通过该方案可以估算裂缝-基质流量项的流动性。但是,这种方案存在严重的缺陷,可能导致非物理的解决方案或重大的数值错误。为了克服常规上游加权方案的局限性,本文提出了一种基于物理的建模方法,该方法利用裂缝-基质界面处的毛细管压力的连续性,在计算裂缝和基质之间的多相流时,估算物理上正确的相对渗透率。所提出的方法已在两个多相油藏模拟器中实现,并使用分析解决方案和实验室实验数据进行了验证。新方法被证明是准确的,数值有效的,并且易于在双连续或多连续模型中实现。

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