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Understanding reservoir engineering aspects of shale gas development on the Alaska North Slope.

机译:了解阿拉斯加北坡页岩气开发的油藏工程方面。

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摘要

Horizontal drilling and multi-stage hydraulic fracturing made it possible to develop US shale resources. Shublik shale is one of such US shale resources -- it is one of the largest source rocks for hydrocarbon accumulations located on the Alaska North Slope.;This study used the workflow introduced by Mirzaei and Cipolla in 2012 to investigate the effects of fracturing fluid flowback; shale porosity; matrix, fracture and unpropped zone permeability; hydraulic fracture spacing; permeability anisotropy; non-Darcy flow; gas adsorption/desorption using the complex-fracture-network model, referred to as an unconventional fracture model (UFM), and Voronoi grid on well performance in the Shublik shale formation. In addition, the effects of natural fracture network orientation, fracture spacing and length were examined using single porosity model with incorporated Discrete Fracture Network (DFN). Schlumberger Mangrove Plug-In for Petrel platform was used to conduct the study. Mangrove has DFN feature, which can be deactivated in the single porosity model.;The results suggested that ignoring fracturing fluid flowback and non-Darcy effects can lead to overestimation of the gas recovery factor. Neglecting gas adsorption/desorption effects leads to underestimation of the gas recovery factor. In addition, smaller fracture spacing leads to higher gas recovery factor. DFN orientation, fracture spacing and length affect the propped fracture area and should be incorporated into analysis from shale plays since it can result in either overestimation or underestimation of the gas recovery factor depending on fracture network propagation. Finally, examining multiple hydraulic fractures instead of one fracture is more accurate due to the stress shadowing effects and fracture network propagation.
机译:水平钻井和多阶段水力压裂使得开发美国页岩资源成为可能。 Shublik页岩是美国的此类页岩资源之一-是位于阿拉斯加北坡的最大的烃类烃源岩之一;该研究使用Mirzaei和Cipolla在2012年引入的工作流程来研究压裂液返排的影响;页岩孔隙度基质,裂缝和非支撑带渗透率;水力压裂间距渗透率各向异性非达西流Shublik页岩地层中使用复杂裂缝网络模型(称为非常规裂缝模型(UFM))和Voronoi网格对天然气进行吸附/解吸。此外,使用结合了离散断裂网络(DFN)的单孔隙度模型检查了天然裂缝网络取向,裂缝间距和长度的影响。使用斯伦贝谢的“用于Petrel的Mangrove插件”平台进行了研究。红树林具有DFN特征,可以在单一孔隙率模型中将其取消激活。结果表明,忽略压裂液回流和非达西效应可能导致对天然气采收率的高估。忽视气体的吸附/解吸作用会导致气体回收率的低估。另外,较小的裂缝间距导致较高的气体采收率。 DFN方向,裂缝间距和长度会影响支撑的裂缝面积,应将其纳入页岩气藏的分析中,因为根据裂缝网络的传播,它可能导致对天然气采收率的高估或低估。最后,由于应力遮蔽效应和裂缝网络的传播,检查多个水力裂缝而不是一个裂缝更为准确。

著录项

  • 作者

    Nyulund, Anna.;

  • 作者单位

    University of Alaska Fairbanks.;

  • 授予单位 University of Alaska Fairbanks.;
  • 学科 Petroleum engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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