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Determination of the Controls on Permeability and Transport in Shale by Use of Percolation Models

机译:利用渗流模型确定页岩渗透率和运移控制方法

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摘要

A proper understanding of reservoir connectivity is essential to understanding the relationship between the porosity and the permeability within it. Additionally, the construction of an accurate reservoir model cannot be accomplished without this information. While a great deal is known about the connectivity in conventional sandstone systems, little is understood about the connectivity and its resultant properties within shale systems. Percolation theory is a method to describe the global properties of the shale system by understanding the nanometer scale interaction of pore space.In this study we use both analytical and empirical techniques to further understand shale pore scale interactions as well as global phenomena of the shale system. Construction of pore scale connectivity simulations on lattice and in the continuum allow for understanding relationships between pore topology, system porosity and system permeability. Additionally, questions regarding the role of Total Organic Carbon as well as natural fractures in contributing to shale permeability will be discussed. Analytical techniques are used to validate simulation results regarding the onset of percolation and related pore topology. Finally, time of flight simulation is used to further understand pressure transient behavior in the resulting topological models.High aspect ratio pores are shown to be the driver of shale permeability as opposed to the low aspect ratio pore space associated with organic matrix. Additionally, systems below the percolation threshold are likely able to produce because the wellbore will often encounter near infinite clusters. Finally, a characteristic volume growth profile is shown for a multi-porosity system whereby each level of porosity displays a corresponding stair step of volume growth in time.
机译:正确理解储层连通性对于理解孔隙度与其中渗透率之间的关系至关重要。另外,没有这些信息就无法完成准确的油藏模型的构建。尽管对常规砂岩系统中的连通性了解很多,但对页岩系统中的连通性及其结果属性了解甚少。渗流理论是一种通过了解孔隙空间的纳米尺度相互作用来描述页岩系统整体性质的方法。在这项研究中,我们使用分析和经验技术来进一步了解页岩孔隙尺度相互作用以及页岩系统的整体现象。 。在晶格上和连续体中构造孔尺度连通性模拟可以理解孔拓扑,系统孔隙度和系统渗透率之间的关系。此外,还将讨论有关总有机碳以及天然裂缝在促进页岩渗透性中的作用的问题。使用分析技术来验证关于渗滤开始和相关孔拓扑的模拟结果。最后,通过飞行时间模拟进一步了解了生成的拓扑模型中的压力瞬变行为。高纵横比的孔隙被证明是页岩渗透性的驱动力,与有机基质相关的低纵横比的孔隙空间相反。另外,渗流阈值以下的系统很可能能够生产,因为井眼经常会遇到无限的聚类。最后,显示了用于多孔隙度系统的特征体积增长曲线,其中每个孔隙率水平随时间显示了相应的体积增长阶梯。

著录项

  • 作者

    Chapman Ian;

  • 作者单位
  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en_US
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