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Integrated Microseismic Monitoring for Field Optimization in the Marcellus Shale - A Case Study

机译:Marcellus Shale的野外优化集成微震监测 - 以案例研究

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The work presented in this paper focuses on an integrative analysis of hydraulic fracture treatments conducted in the Marcellus Shale. The treatments have been monitored by a permanently installed array of buried geophones used to detect microseismic events. These event sets were analyzed in conjunction with available data from other sources, such as well logs and well cores, as well as information on reservoir properties, regional and local geology and other sub-surface structural information. Passive seismic data was acquired by an array of 101 permanently installed geophones buried and cemented in place at a depth of 150 ft in purpose-drilled boreholes covering an area of over 18 square miles providing high resolution stimulation monitoring. The permanent installation of geophones below the surface allows for significant increase in signal- to-noise ratio and consistent comparison of hydraulic fracture treatments for any given number of wells under the array footprint. This integrative analysis determined how various factors related to the specific reservoir geology in the Marcellus and to what extent the variability of hydraulic fracture treatments impacted the microseismic results. The next step of the evaluation investigated the relationship between hydrocarbon production and the microseismic results, relative to changes in geology and variability of the stimulation approach. Analysis of stress changes indicated by the microseismic source mechanisms was used to explain the asymmetry of microseismicity about the wellbore. Relationships and statistics of treatment options with respect to the monitoring results were investigated, including the modeled discrete fracture network, the modeled fracture volume, the stimulated reservoir volume, and the cumulative microseismic moment of the event set. The initial production (IP) was compared to reservoir and engineering parameters, such as treatment pressures, sequence of treatments (toe-to-heel vs. zipper-frac), net pressures, and stage spacing, to determine if the variability in the microseismic results is due to engineering differences or to spatially- varying reservoir properties. Simple well test simulations were performed to investigate different fracture and flow models, and compare results to the IP and available reservoir properties.
机译:本文提出的工作侧重于在Marcellus页岩中进行的液压骨折处理的一体化分析。通过用于检测微震事件的永久安装的掩埋地震检波器阵列进行了处理。这些事件集与其他来源的可用数据一起分析,例如日志和井核,以及关于储层属性,区域和局域地质和其他子表面结构信息的信息。被动地震数据由101个永久安装的地震检塞器的阵列获取,并且在目的钻孔的钻孔中以150英尺的深度埋入和粘合到提供高分辨率刺激监测的面积超过18平方英里的面积。在表面下方的地理位音的永久安装允许在阵列足迹下的任何给定数量的井中的液压断裂处理的液压断裂处理的一致比较。这种综合分析确定了与Marcellus的特定水库地质有关的各种因素以及液压骨折治疗的可变性影响微震结果的程度。评估的下一步研究了碳氢化合物生产与微震结果之间的关系,相对于刺激方法的地质和可变性的变化。微震源机制指出的应力变化分析用于解释井筒微震性的不对称性。研究了治疗方案的关系和统计,包括模拟离散骨折网络,模拟的骨折体积,刺激的储层体积和事件集的累积微震时刻。将初始生产(IP)与储层和工程参数进行比较,例如治疗压力,处理序列(Toe-to-Heel与拉链 - Frac),净压力和阶段间隔,以确定微震的可变性吗?结果是由于工程差异或空间 - 不同的储层性质。进行简单的井测试模拟以研究不同的骨折和流量模型,并比较IP和可用储层性质的结果。

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