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Microseismic Imaging of Hydraulically Induced-Fractures in Gas Reservoirs: A Case Study in Barnett Shale Gas Reservoir, Texas, USA

机译:气藏水力致裂缝的微震成像:以美国德克萨斯州巴内特页岩气藏为例

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Microseismic technology has been proven to be a practical approach for in-situ monitoring of fracture growth during hydraulic fracture stimulations. Microseismic monitoring has rapidly evolved in acquisition methodology, data processing, and in this paper, we evaluate the progression of this technology with emphasis on their applications in Barnett shale gas reservoir. Microseismic data analysis indicates a direct proportion between microseismic moment magnitude and depth, yet no relation between microseismic activity and either injection rate or injection volume has been observed. However, large microseismic magnitudes have been recorded where hydraulic fracturing stimulation approaches a fault and therefore the geologic framework should be integrated in such programs. In addition, the geometry of fracture growth resulted by proppant interactions with naturally fractured formations follows unpredictable fashion due to redirecting the injection fluids along flow paths associated with the pre-existing fault network in the reservoir. While microseismic imaging is incredibly useful in revealing the fracture geometry and the way the fracture evolves, recently several concerns have been raised regarding the capability of microseismic data to provide the fracture dimensional parameters and the fracture mechanism that could provide detailed information for reservoir characterization.
机译:已经证明,微地震技术是在水力压裂刺激过程中现场监测裂缝增长的一种实用方法。微地震监测在采集方法,数据处理方面已迅速发展,在本文中,我们重点评估了该技术在Barnett页岩气藏中的应用情况。微震数据分析表明,微震矩大小与深度之间存在直接比例关系,但微震活动与注入速率或注入量之间没有关系。但是,在水力压裂增产接近断层的情况下,已经记录了较大的微地震震级,因此应将地质框架整合到此类程序中。另外,由于支撑剂与天然裂缝地层相互作用而导致的裂缝扩展的几何形状遵循不可预测的方式,这是由于沿着与储层中先前存在的断层网络相关的流动路径重定向注入流体。尽管微地震成像在揭示裂缝的几何形状和裂缝演化的方式方面极为有用,但近来人们对微地震数据提供裂缝尺寸参数和裂缝机理的能力提出了一些担忧,这些能力可以为储层表征提供详细的信息。

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