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Construction of a 3D Geomechanical Model for Development of a Shale Gas Reservoir in Sichuan Basin

机译:四川盆地页岩煤气藏开发3D地质力学模型的构建

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Currently, there is large-scale shale gas exploration and development in the Sichuan basin, western China. Due to high tectonic stress and presence of fracture systems at various scales in the lower Silurian Longmaxi reservoir formation, hydraulic fracturing in shale gas reservoirs in the Sichuan basin has encountered many difficulties, such as difficulty in placing sufficient proppant, poor production performance for some wells, and ambiguity as to the factors controlling production of the reservoir. It has been recognized that lack of geomechanical understanding of the shale gas reservoirs places a major obstacle to effectively addressing these difficulties. A 3D full field geomechanics model was constructed for Changning shale gas reservoir in Sichuan basin through integrating seismic, geological structure, log, and core data by following a newly formulated integrated workflow. The 3D geomechanical model includes 3D anisotropic mechanical properties, 3D pore pressure, and the 3D in-situ stress field. Through leveraging measurements from an advanced sonic tool and core data, the anisotropy of the formation was captured at wellbores and propagated to 3D space guided by prestack seismic inversion data. 3D pore pressure prediction was conducted using seismic data and calibrated against pressure measurements, mud logging data, and flowback data. A discrete fracture network model, which represents multiscale natural fracture systems, was integrated into the 3D geomechanical model during stress modeling to reflect the disturbance on the in-situ stress field by the presence of the natural fracture systems. The 3D pore pressure model was used to calculate more-reliable estimates of gas in place in the shale gas reservoir, and the geomechanical model was used to reveal the root cause of difficulties of proppant placement in this tectonically active and unevenly fractured shale gas reservoir. The paper presents the highlights and innovations in constructing the 3D geomechanical model for the shale gas reservoir and explains how the 3D geomechanical model is used to understand the root cause of poor proppant placement encountered during hydraulic fracturing and events such as mud losses during drilling. Hence, the modeling provides a critical opportunity to improve reservoir stimulation in the shale gas reservoir.
机译:目前,中国西部四川盆地的大规模页岩气勘探开发。由于高硅藻土储层在较低硅藻土储层的各种尺度上具有高的构造压力和裂缝系统的存在,四川盆地页岩气藏的液压压裂遇到了许多困难,如难以放置足够的支撑剂,生产性能差的一些井以及控制水库生产的因素的模糊性。已经认识到,对页岩气藏的缺乏地质力学理解缺乏主要障碍,以有效地解决这些困难。通过遵循新配制的综合工作流程,为四川盆地的长宁页岩气藏建造了一个3D全场地质力学模型。 3D地质力学模型包括3D各向异性机械性能,3D孔隙压力和3D原位应力场。通过利用来自先进的Sonic工具和核心数据的测量,在井筒捕获形成的各向异性,并将其传播到由Prestack地震反转数据引导的3D空间。使用地震数据进行3D孔隙压力预测,并针对压力测量,泥浆测井数据和流量数据进行校准。代表多尺度自然骨折系统的离散断裂网络模型被整合到压力建模期间的3D地质力学模型中,以通过存在自然裂缝系统反映原位应力场的干扰。 3D孔隙压力模型用于计算页岩气藏的较高的气体估计,地质力学模型用于揭示这种根本活性和不均匀的骨质页岩气藏的支撑剂放置困难的根本原因。本文介绍了构建页岩燃气藏的3D地质力学模型的亮点和创新,并解释了3D地质力学模型如何使用如何在钻井过程中遇到液压压裂和泥浆损失等事件期间遇到的可怜的支撑剂放置的根本原因。因此,该建模提供了改善页岩气藏的储层刺激的关键机会。

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