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Application of Reservoir-Centric Stimulation Design Tool in Completion Optimization for Eagle Ford Shale

机译:储层中心刺激设计工具在Eagle Ford Shale完成优化中的应用

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Completion design for unconventional shale plays in North America is a topic of high current interest. Although the practice of stimulating shale horizontal wells with large slickwater treatments is slowly changing to the use of Hybrid/Crosslink treatments in certain plays, little has changed with the method of completion design itself. Most laterals are completed using a 'cookie cutter' approach in which the number of stages and clusters, cluster spacing and other design parameters are based on statistics, past experience, rules of thumb or client shared knowledge, and are not tuned to the specific conditions in a particular well. This paper presents a case study from the Eagle Ford Shale and describes a step-by-step workflow to simulate hydraulic fractures using a state of the art, reservoir-centric stimulation design tool (RCSD). The presented approach incorporated petrophysical data acquired in a vertical pilot hole with horizon interpretation, a discrete fracture network (DFN) model conditioned by seismic interpretation, image log data from a horizontal well, and completion data into a hydraulic fracture simulator. Simulation of fracture geometry was performed stage-by-stage in the RCSD tool using the recently developed unconventional fracture model (UFM), which is optimized specifically for complex fracture networks. The modeled fracture network was calibrated to microseismic events via fluid rheology and fluid loss variables while also accounting for a stress shadowing effect. The output of the simulator includes a list of parameters such as fracture surface area, fracture propped surface area, and hydraulic fracture network geometry that can be used for the determination of estimated stimulated volume (ESV) as well as inputs into reservoir simulation for production history matching and forecasting. Also, this application of the RCSD tool in the Eagle Ford Shale provides an ability to test most aspects of the completion design by modeling stimulated volume change with respect to pumping schedule and completion parameters.
机译:北美的非传统页岩剧的完成设计是一个高当前兴趣的主题。虽然刺激了Shale水平井的实践,但大型光滑的疗程慢慢改变了在某些比赛中使用混合/交联处理,但随着完成设计本身的方法很小。大多数横向都使用“cookie切割机”方法完成,其中阶段和集群的数量,群集间隔和其他设计参数基于统计数据,过去的经验,拇指或客户的共享知识,并且未调整到特定条件在一个特定的地方。本文提出了鹰福特页岩的案例研究,描述了一种逐步的工作流程,用于使用现有技术模拟液压骨折,储层中心刺激设计工具(RCSD)。所提出的方法在垂直试验孔中加入了具有地平线解释的垂直试验孔中获取的岩石物理数据,由地震解释,从水平井的图像日志数据和完成数据到液压骨折模拟器中的分立裂缝网络(DFN)模型。使用最近开发的非常规的裂缝模型(UFM)在RCSD工具中逐步进行裂缝几何模拟,该模型专门针对复杂的骨折网络进行了优化。通过流体流变学和流体损耗变量校准建模的骨折网络,同时也核对应力阴影效果。模拟器的输出包括诸如破裂表面积,断裂面积,骨折表面积和液压断裂网络几何形状的参数列表,其可用于确定估计的刺激体积(ESV)以及生产历史的储层模拟中的输入匹配和预测。此外,在Eagle Ford Shale中的RCSD工具的这种应用提供了通过建模相对于泵送计划和完成参数的刺激体积变化来测试完成设计的大多数方面的能力。

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