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Creation and impairment of hydraulic fracture conductivity in shale formations.

机译:页岩地层水力压裂传导性的产生和损害。

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摘要

Multi-stage hydraulic fracturing is the key to the success of many shale gas and shale oil reservoirs. The main objectives of hydraulic fracturing in shale are to create artificial fracture networks that are conductive for oil and gas flow and extensive into the reservoir for high and long-lasting production, while economical to keep the well commercial.;Due to the variation in shale mineralogical and mechanical properties, mechanisms of fracture conductivity creation in shale formations are complicated. Standard fracture conductivity measurement procedures were developed for high concentration propped fractures and need to be modified to measure the conductivity of unpropped fractures and the low concentration proppant packs. Water-based fracturing fluids can interact with the clay minerals in shale and eventually impact shale fracture conductivity. All these challenges require more studies to elevate the understanding of shale fracture conductivity creation and impairment.;The aims of this work are to design an experimental framework to measure fracture conductivity created by different mechanisms, to develop a correlation calibrated by the experimental data to predict shale fracture conductivity, and to investigate the mechanisms of conductivity damage by water. We first present the laboratory procedures and experimental design that can accurately measure fracture conductivity of shale fractures. Then, a program is developed to calculate conductivity considering the physical processes that dictate propped fracture conductivity as observed in the experiments. After the undamaged shale fracture conductivity is measured by dry nitrogen, water with similar flowback water compositions is flowed to simulate the damage process followed by the second gas flow to measure the recovered fracture conductivity after the water damage.;From this study, we find that the unpropped shale fractures are conductive up to certain closure stress by a variety of mechanisms. The correlation we develop can capture the physical processes in the shale fracture and can reasonably predict propped fracture conductivity. Shale fracture surface softening is identified as the dominant cause for the significant conductivity reduction after water flow.;The systematic study on realistic shale fracture conductivity is the foundation of well performance analysis and production history matching. The investigation on water damage can better guide the fracturing design in shale reservoirs.
机译:多级水力压裂是许多页岩气和页岩油藏成功的关键。页岩水力压裂的主要目的是建立有利于油气流动的人工压裂网络,并扩展到油藏中以实现高产量和长效生产,同时又经济实用以保持油井的商业价值。矿物学和力学性质,页岩地层中裂缝传导性产生的机理很复杂。针对高浓度支撑裂缝开发了标准的裂缝电导率测量程序,需要对其进行修改以测量无支撑裂缝和低浓度支撑剂填充物的电导率。水基压裂液可与页岩中的粘土矿物相互作用,并最终影响页岩的裂缝导流能力。所有这些挑战需要更多的研究来加深对页岩裂缝电导率的产生和损害的认识。这项工作的目的是设计一个实验框架,以测量由不同机理产生的裂缝电导率,以建立由实验数据校准的相关性以预测页岩裂缝的电导率,并研究了水对电导率的破坏机理。我们首先介绍可以准确测量页岩裂缝的裂缝电导率的实验室程序和实验设计。然后,开发了一个程序来计算电导率,并考虑了决定实验中观察到的支撑裂缝电导率的物理过程。用干燥氮气测量完好无损的页岩裂缝电导率后,流动具有相似回流成分的水以模拟破坏过程,然后再进行第二次气流测量水破坏后恢复的裂缝电导率。通过多种机制,未支撑的页岩裂缝在一定的闭合应力作用下具有传导性。我们建立的相关性可以捕获页岩裂缝中的物理过程,并可以合理地预测支撑裂缝的电导率。页岩裂缝表面软化被认为是水流后电导率显着降低的主要原因。;对实际页岩裂缝电导率的系统研究是油井性能分析和生产历史匹配的基础。水损害的研究可以更好地指导页岩储层的压裂设计。

著录项

  • 作者

    Zhang, Junjing.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Petroleum.;Engineering Mining.;Geology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 216 p.
  • 总页数 216
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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