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Development of an implicit full-tensor dual porosity compositional reservoir simulator.

机译:隐式全张量双孔隙度组成储层模拟器的开发。

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摘要

A large percentage of oil and gas reservoirs in the most productive regions such as the Middle East, South America, and Southeast Asia are naturally fractured reservoirs (NFR). The major difference between conventional reservoirs and naturally fractured reservoirs is the discontinuity in media in fractured reservoir due to tectonic activities. These discontinuities cause remarkable difficulties in describing the petrophysical structures and the flow of fluids in the fractured reservoirs.;Predicting fluid flow behavior in naturally fractured reservoirs is a challenging area in petroleum engineering. Two classes of models used to describe flow and transport phenomena in fracture reservoirs are discrete and continuum (i.e. dual porosity) models. The discrete model is appealing from a modeling point of view, but the huge computational demand and burden of porting the fractures into the computational grid are its shortcomings.;The affect of natural fractures on the permeability anisotropy can be determined by considering distribution and orientation of fractures. Representative fracture permeability, which is a crucial step in the reservoir simulation study, must be calculated based on fracture characteristics. The diagonal representation of permeability, which is customarily used in a dual porosity model, is valid only for the cases where fractures are parallel to one of the principal axes. This assumption cannot adequately describe flow characteristics where there is variation in fracture spacing, length, and orientation. To overcome this shortcoming, the principle of the full permeability tensor in the discrete fracture network can be incorporated into the dual porosity model. Hence, the dual porosity model can retain the real fracture system characteristics.;This study was designed to develop a novel approach to integrate dual porosity model and full permeability tensor representation in fractures. A fully implicit, parallel, compositional chemical dual porosity simulator for modeling naturally fractured reservoirs has been developed. The model is capable of simulating large-scale chemical flooding processes. Accurate representation of the fluid exchange between the matrix and fracture and precise representation of the fracture system as an equivalent porous media are the key parameters in utilizing of dual porosity models. The matrix blocks are discretized into both rectangular rings and vertical layers to offer a better resolution of transient flow. The developed model was successfully verified against a chemical flooding simulator called UTCHEM. Results show excellent agreements for a variety of flooding processes.;The developed dual porosity model has further been improved by implementing a full permeability tensor representation of fractures. The full permeability feature in the fracture system of a dual porosity model adequately captures the system directionality and heterogeneity. At the same time, the powerful dual porosity concept is inherited. The implementation has been verified by studying water and chemical flooding in cylindrical and spherical reservoirs. It has also been verified against ECLIPSE and FracMan commercial simulators. This study leads to a conclusion that the full permeability tensor representation is essential to accurately simulate fluid flow in heterogeneous and anisotropic fracture systems.
机译:中东,南美和东南亚等最高产区中的很大一部分油气藏是天然裂缝性油气藏(NFR)。常规储层和天然裂缝性储层之间的主要区别在于,由于构造活动,裂缝性储层中的介质不连续。这些不连续性给描述裂缝性油藏的岩石物理结构和流体流动带来了巨大的困难。预测天然裂缝性油藏的流体流动行为在石油工程中是一个充满挑战的领域。用于描述裂缝储层中流动和传输现象的两类模型是离散模型和连续模型(即双重孔隙度)。从建模的角度来看,离散模型很吸引人,但是其巨大的计算需求和将裂缝移植到计算网格中的负担是其缺点。可通过考虑裂缝的分布和方向来确定天然裂缝对渗透率各向异性的影响。骨折。代表性裂缝渗透率是储层模拟研究的关键步骤,必须根据裂缝特征进行计算。通常在双重孔隙度模型中使用的渗透率的对角线表示形式仅对裂缝平行于一根主轴线的情况有效。该假设不能充分描述裂缝间距,长度和方向变化的流动特征。为了克服该缺点,可以将离散裂缝网络中全渗透率张量的原理结合到双重孔隙度模型中。因此,双重孔隙度模型可以保留真实的裂缝系统特征。本研究旨在开发一种将双重孔隙度模型与裂缝中全渗透率张量表示相结合的新方法。已经开发出一种完全隐式,平行,成分化学双重孔隙度模拟器,用于模拟天然裂缝储层。该模型能够模拟大规模的化学驱过程。使用双重孔隙度模型的关键参数是,基体与裂缝之间流体交换的准确表示以及作为等效多孔介质的裂缝系统的精确表示。矩阵块被离散为矩形环和垂直层,以提供更好的瞬态流分辨率。所开发的模型已通过称为UTCHEM的化学驱油模拟器成功验证。结果表明,该方法适用于各种驱替过程。通过建立完整的裂缝渗透率张量表示法,进一步改进了已开发的双重孔隙度模型。在双孔隙度模型的裂缝系统中,全渗透率特征足以捕获系统的方向性和非均质性。同时,强大的双重孔隙率概念得到了继承。通过研究圆柱形和球形储层的水和化学驱,已经验证了该实施方案。还已针对ECLIPSE和FracMan商业模拟器进行了验证。这项研究得出的结论是,渗透率张量的完整表示对于准确模拟非均质和各向异性裂缝系统中的流体流动至关重要。

著录项

  • 作者

    Tarahhom, Farhad.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Petroleum.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 275 p.
  • 总页数 275
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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