页岩气储层水力压裂设计与施工的三维扩展有限元建模及微震数据验证

I. H. Musa, J. Leem, C. Tan, M. Yusoff
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引用次数: 0

摘要

水力压裂在非常规页岩气开发中至关重要,以实现储层的经济开采。最佳的水力压裂设计和操作是决定油井产量好坏和经济效益的关键。最常见的水力压裂设计之一是投球系统。利用ABAQUS软件,结合XFEM方法,采用三层模型分别表示上覆层、页岩气层和下覆层。岩石属性、孔隙压力和应力数据被用作生成模型的输入。在中部页岩气地层中钻出一口水平井,分3段压裂,段间射孔间距为100米。根据投球滑套完井处理方案,对每个水力压裂段进行顺序加压。对模拟水力裂缝进行了评价,并与现场实测数据进行了比较。平均井筒压力与实测数据的误差均在10%以内,对比效果良好。考虑到资料评价存在较大的不确定性,水力裂缝几何形态与微震活动资料的对比总体上是合理的。水力压裂结果还表明,在射孔间距为100米时,采用顺序水力压裂方法(如投球法),应力阴影对裂缝的影响最小,不会抑制裂缝的生长。然而,裂缝间距越小,应力阴影效应越明显。对于所建立的XFEM水力压裂模型的后续应用,可以利用该模型设计新的水力压裂完井方案,为非常规页岩气田开发井推荐最佳完井方案,包括射孔间距。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3D Extended Finite Element Modeling of Hydraulic Fracturing Design and Operation in Shale Gas Reservoir and Validation with Micro-Seismicity Data
Hydraulic fracturing is vital in unconventional shale gas development in order to produce economically from the reservoir. An optimum hydraulic fracturing design and operation can be the key difference between good and poor producing well and economics of the well. One of the most common hydraulic fracturing designs is ball drop system. Using ABAQUS software with XFEM method, a three layers model is used to represent overburden formation, shale gas formation and underburden formation. Rock properties, pore pressure and stress data are used as inputs for the generated model. A horizontal well is created in the middle shale gas formation with three fracture stages and 100m perforation spacing between them. Each hydraulic fracture stage is pressurized sequentially based on the treatment plan of ball drop sliding sleeve completion. The simulated hydraulic fractures are evaluated and compared with the measured field data. The comparison of the average wellbore pressure is good as they all showed within 10% of the measured data. The comparison of the hydraulic fracture geometry with the micro-seismicity data is reasonable overall in view of the data evaluation showing considerable uncertainties in the data. The hydraulic fracturing results also show that at 100m perforation spacing and using sequential hydraulic fracturing method (such as ball drop system), the effect of stress shadow is minimal and does not inhibit the fractures growth. However, the stress shadow effect is found to be pronounced for closer spacing between hydraulic fractures. For future application of the developed XFEM hydraulic fracturing model, it can be utilized to design new hydraulic fracturing completion in order to recommend the optimum completion, including perforation spacing, of development wells in unconventional shale gas field.
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