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Marcellus Shale Energy and Environmental Laboratory (MSEEL) Results and Plans: Improved Subsurface Reservoir Characterization and Engineered Completions

机译:Marcellus页岩能量和环境实验室(MSEEL)结果和计划:改进了地下储层表征和工程完成

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The Marcellus Shale Energy and Environment Laboratory (MSEEL) involves a multidisciplinary and multi-institutional team of universities companies and government research labs undertaking geologic and geomechanical evaluation, integrated completion and production monitoring, and testing completion approaches. MSEEL consists of two legacy horizontal production wells, two new logged and instrumented horizontal production wells, a cored vertical pilot bore-hole, a microseismic observation well, and surface geophysical and environmental monitoring stations. The extremely large and diverse (multiple terabyte) datasets required a custom software system for analysis and display of fiber-optic distributed acoustic sensing (DAS) and distributed temperature sensing (DTS) data that was subsequently integrated with microseismic data, core data and logs from the pilot holes and laterals. Comprehensive geomechanical and image log data integrated with the fiber-optic data across individual stages and clusters contributed to an improved understanding of the effect of stage spacing and cluster density practices across the heterogeneous unconventional reservoirs such as the Marcellus. The results significantly improved stimulation effectiveness and optimized recovery efficiency. The microseismic and fiber-optic data obtained during the hydraulic fracture simulations and subsequent DTS data acquired during production served as constraining parameters to evaluate stage and cluster efficiency on the MIP- 3H and MIP-5H wells. Deformation effects related to preexisting fractures and small faults are a significant component to improve understanding of completion quality differences between stages and clusters. The distribution of this deformation and cross-flow between stages as shown by the DAS and DTS fiber-optic data during stimulation demonstrates the differences in completion efficiency among stages. The initial and evolving production efficiency over the last several years of various stages is illustrated through ongoing processing of continuous DTS. Reservoir simulation and history matching the well production data confirmed the subsurface production response to the hydraulic fractures. Engineered stages that incorporate the distribution of fracture swarms and geomechanical properties had better completion and more importantly production efficiencies. We are working to improve the modeling to understand movement within individual fracture swarms and history match at the individual stage. As part of an additional MSEEL well pad underway incorporates advanced and cost-effective technology that can provide the necessary data to improve engineering of stage and cluster design, pumping treatments and optimum spacing between laterals, and imaging of the stimulated reservoir volume in the Marcellus and other shale reservoirs.
机译:Marcellus页岩能量和环境实验室(MSEEL)涉及大学公司和政府研究实验室的多学科和多机构团队,进行地质和地质力学评估,综合完成和生产监测以及测试完成方法。 MSEEL由两个遗产水平生产井组成,两个新的记录和仪表横向生产井,芯垂直导筒孔,微震观察井和表面地球物理和环境监测站。非常大而多样化的(多字节)数据集需要定制软件系统,用于分析和显示光纤分布声学传感(DAS)和分布式温度感测(DTS)数据,随后与微震数据,核心数据和日志集成在一起飞行员和横向。与各个阶段和集群相结合的综合地质力学和图像日志数据与各个阶段和集群相结合,有助于了解对诸如Marcellus等异质非传统储层的舞台间距和集群密度实践的效果。结果显着提高了刺激效率和优化的恢复效率。在生产过程中获得的微震和光纤数据和在生产过程中获得的后续DTS数据服务于限制参数,以评估MIP-3H和MIP-5H孔上的阶段和集群效率。与预先存在的裂缝和小故障相关的变形效果是改善阶段与集群之间完成质量差异的理解的重要组成部分。在刺激期间DAS和DTS光纤数据所示的阶段之间的这种变形和交叉流的分布证明了阶段完成效率的差异。通过持续的连续DTS的持续处理来说明过去几年的初始和不断发展的生产效率。储存器仿真和历史匹配井生产数据证实了对液压骨折的地下生产响应。纳入骨折群和地质力学性质分布的工程阶段具有更好的完成,更重要的是生产效率。我们正在努力改进建模,以了解各个阶段的个别骨折群和历史匹配中的单个骨折群和历史匹配。作为额外的MSEEL井垫的一部分加入了先进的和经济高效的技术,可以提供必要的数据,以改善舞台和集群设计,泵送处理和侧面之间的最佳间距以及Marcellus的刺激储存量的成像。其他页岩水库。

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