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Permeability characterization of shear zones in the Hickory sandstone member, Riley Formation, Texas

机译:得克萨斯州赖利组山核桃砂岩剪切带的渗透性表征

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摘要

Reservoir compartments, typical targets for new infill locations, are commonly created by faults that may reduce or enhanced permeabilities. Faults often contain narrow zones of intense shear comprised of geometrically complex elements that reduce permeability and compartmentalize blocks as a function of time and pressure. This thesis characterizes the permeability structure of shear zones and the relationship between fault permeability, host rock properties and the relative degree of deformation. The main objectives of this work are to (1) characterize the geometry and permeability of deformation elements within shear zones; (2) determine permeability anisotropy in shear zones according to fault characteristics and host lithology; and (3) develop a process to predict permeability anisotropy of faults in reservoirs using probabilistic approaches. The study results give a better understanding of fluid flow behavior of shear zones and their potential to create reservoir heterogeneity and compartmentalization. Fluid flow in a reservoir with faults is controlled by variables such as fault throw, shear-zone thickness, undeformed and deformed rock permeability and the geometry of all deformation elements. Methodology to predict permeability structure was developed using analytical and numerical simulation of selected core samples and laboratory measurements. We found useful relationships between permeability of the host rock and highly deformed elements according to the amount of throw of the fault. The high lateral continuity of the highly deformed elements and their predictable low permeability make these elements most important in controlling permeability in shale-free and low-shale shear zones created by low displacement (subseismic) faulting. Probe permeameter data is a precise, inexpensive and non-destructive source of permeability information that can be effectively incorporated in detailed models to investigate the effect of individual deformation elements in the whole shear zone permeability and their effect at the field scale.
机译:储层隔室是新填充位置的典型目标,通常是由可能会降低或增强渗透率的断层造成的。断层通常包含由几何复杂元素组成的强烈剪切的狭窄区域,这些元素会降低渗透率并根据时间和压力将区块划分。本文描述了剪切带的渗透性结构,以及断层渗透率,基质岩石性质和相对变形程度之间的关系。这项工作的主要目的是(1)表征剪切区内变形单元的几何形状和渗透率; (2)根据断层特征和宿主岩性确定剪切带的渗透率各向异性。 (3)开发一种使用概率方法预测储层断层渗透率各向异性的过程。研究结果使人们对剪切带的流体流动行为及其形成储层非均质性和分区性的潜力有了更好的了解。有断层的油藏中的流体流动受变量控制,例如断层投掷,剪切带厚度,未变形和变形的岩石渗透率以及所有变形单元的几何形状。使用选定岩心样品的分析和数值模拟以及实验室测量值,开发了预测渗透率结构的方法。我们根据断层的投掷量发现了基岩渗透率与高变形单元之间的有用关系。高变形单元的高横向连续性及其可预测的低渗透率,使得这些单元在控制由低位移(亚地震)断层产生的无页岩和低页岩剪切带中的渗透率方面至关重要。探针渗透仪数据是渗透率信息的精确,廉价且无损的来源,可以有效地将其纳入详细的模型中,以研究单个变形元素在整个剪切带渗透率中的作用及其在田间尺度上的作用。

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    Nieto Camargo Jorge Enrique;

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  • 年度 2005
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