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Fluid Production Induced Stress Analysis Surrounding an Elliptic Fracture.

机译:椭圆形裂缝周围的流体生产引起的应力分析。

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摘要

Hydraulic fracturing is an effective technique used in well stimulation to increase petroleum well production. A combination of multi-stage hydraulic fracturing and horizontal drilling has led to the recent boom in shale gas production which has changed the energy landscape of North America.;During the fracking process, highly pressurized mixture of water and proppants (sand and chemicals) is injected into to a crack, which fractures the surrounding rock structure and proppants help in keeping the fracture open. Over a longer period, however, these fractures tend to close due to the difference between the compressive stress exerted by the reservoir on the fracture and the fluid pressure inside the fracture. During production, fluid pressure inside the fracture is reduced further which can accelerate the closure of a fracture.;In this thesis, we study the stress distribution around a hydraulic fracture caused by fluid production. It is shown that fluid flow can induce a very high hoop stress near the fracture tip. As the pressure gradient increases stress concentration increases. If a fracture is very thin, the flow induced stress along the fracture decreases, but the stress concentration at the fracture tip increases and become unbounded for an infinitely thin fracture. The result from the present study can be used for studying the fracture closure problem, and ultimately this in turn can lead to the development of better proppants so that prolific well production can be sustained for a long period of time.
机译:水力压裂是用于增产井以增加石油井产量的有效技术。多阶段水力压裂和水平钻井相结合导致了页岩气生产的近期繁荣,改变了北美的能源格局。在压裂过程中,水和支撑剂(砂和化学物质)的高压混合物被压裂。注入裂缝,使周围的岩石结构破裂,支撑剂有助于保持裂缝的开放性。然而,在较长时期内,由于储层对裂缝施加的压应力与裂缝内部的流体压力之间的差异,这些裂缝趋于闭合。在生产过程中,裂缝内部的流体压力进一步降低,可以加速裂缝的闭合。结果表明,流体流动会在裂缝尖端附近引起很高的环向应力。随着压力梯度的增加,应力集中也增加。如果裂缝非常薄,则沿裂缝的流动引起的应力会降低,但裂缝尖端处的应力集中会增加,并且对于无限薄的裂缝而言将变得不受限制。本研究的结果可用于研究裂缝闭合问题,最终反过来又可以导致开发更好的支撑剂,从而可以长期保持高产。

著录项

  • 作者

    Pandit, Harshad Rajendra.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Mechanical.;Engineering Geophysical.;Engineering Petroleum.
  • 学位 M.S.
  • 年度 2014
  • 页码 68 p.
  • 总页数 68
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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