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The Effect of Pressure on Simultaneous Elastic and Electric Measurements of Sandstones

机译:压力对砂岩同时进行弹性和电学测量的影响

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摘要

Sedimentary rocks are composed of complexly shaped grains deposited in random orientation. This arrangement allows void space to be present between grains, also called pores. Pore spaces are as complex as the grains themselves; when connected, the pore spaces create a network of micro-structures. This network, or porosity, and its geometry, or aspect ratio, are essential for geophysical data interpretation and reservoir quality determination. In this thesis, the effect of pressure on sedimentary rocks and the hysteresis caused by pressure cycles are studied.;In the search to understand the fundamentals of the joint physics between elastic and transport properties, simultaneous elastic and electrical measurements and porosity and permeability measurement were performed, both under confining pressure allowing the study of elastic and transport properties under simulated reservoir conditions. Further, Nuclear Magnetic Resonance (NMR) results are used between pressure cycles to evaluate hysteresis. Ultimately the purpose of the proposed studies is to generate a reliable data set for elastic and electrical joint studies, better understand how the rock microstructure is modified by pressure, and how hysteresis can affect pressure dependent tests.;The data presented by this study were produced from five sandstone outcrops samples and a sandstone analog constructed from fused glass beads. The results from simultaneous elastic and electrical measurements under confining pressures were compared to literature and models to ensure data reliability. Multidirectional elastic measurements were used to verify variability since all samples used were homogeneous and isotropic. Finally, the NMR results were used to understand how the pore-size distribution of each sample was being modified during pressure cycles.;After evaluating the results I was able to conclude that the data acquired during this work are reliable with low variability. Further, the results obtained in this thesis show: 1. Significant hysteresis after different pressure cycles make simultaneous measurements vital. Subsequent measurements after a pressure cycle can be affected by changes in the sample microstructure. 2. The imaginary conductivity shows a shift of peak frequency towards lower frequencies. 3. With pressure, the decrease in surface area is larger than the increase in tortuosity. 4. Finally, the effects of pressure on the measured data were evaluated, allowing the conclusion that elastic data changes in a exponential path with pressure, while porosity, permeability and conductivity behave more linearly between 3 and 20.7 MPa.
机译:沉积岩由以任意方向沉积的形状复杂的颗粒组成。这种布置允许晶粒之间存在空隙空间,也称为孔。孔隙空间和谷物本身一样复杂。连接时,孔隙空间会形成微结构网络。该网络或孔隙度及其几何形状或长宽比对于地球物理数据解释和储层质量确定至关重要。本文研究了压力对沉积岩的影响以及压力循环引起的滞后作用。为了了解弹性与输运性质之间联合物理的基本原理,同时进行了弹性和电学测量以及孔隙度和渗透率测量在有限的压力下进行,可以研究在模拟油藏条件下的弹性和运输特性。此外,在压力循环之间使用核磁共振(NMR)结果来评估磁滞。最终,拟议研究的目的是为弹性和电学联合研究生成可靠的数据集,更好地了解岩石微观结构如何受压力影响,以及磁滞现象如何影响压力相关测试。从五个砂岩露头样品中提取,并用熔融玻璃珠制成砂岩类似物。将在密闭压力下同时进行弹性和电学测量的结果与文献和模型进行比较,以确保数据的可靠性。由于使用的所有样本都是均质且各向同性的,因此使用多向弹性测量来验证变异性。最后,使用NMR结果了解在压力循环过程中每个样品的孔径分布是如何被修改的。在评估结果之后,我可以得出结论,这项工作中获得的数据是可靠的,并且变异性很低。此外,本论文获得的结果表明:1.不同压力循环后的显着滞后使得同时进行测量至关重要。压力循环后的后续测量可能会受到样品微结构变化的影响。 2.假想电导率表明峰值频率向更低频率移动。 3.在压力作用下,表面积的减小大于曲折度的增大。 4.最后,评估了压力对测量数据的影响,得出的结论是,弹性数据随压力呈指数变化,而孔隙率,渗透率和电导率在3至20.7 MPa之间表现出更线性的关系。

著录项

  • 作者

    Mapeli, Cesar.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Petroleum engineering.;Geophysics.
  • 学位 M.S.
  • 年度 2018
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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