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首页> 外文期刊>Journal of Petroleum Exploration and Production Technology >A numerical investigation on the performance of hydraulic fracturing in naturally fractured gas reservoirs based on stimulated rock volume
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A numerical investigation on the performance of hydraulic fracturing in naturally fractured gas reservoirs based on stimulated rock volume

机译:基于刺激岩石的天然裂缝气体储层液压压裂性能的数值研究

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All reservoirs are fractured to some degree. Depending on the density, dimension, orientation and the cementation of natural fractures and the location where the hydraulic fracturing is done, preexisting natural fractures can impact hydraulic fracture propagation and the associated flow capacity. Understanding the interactions between hydraulic fracture and natural fractures is crucial in estimating fracture complexity, stimulated reservoir volume, drained reservoir volume and completion efficiency. However, because of the presence of natural fractures with diffuse penetration and different orientations, the operation is complicated in naturally fractured gas reservoirs. For this purpose, two numerical methods are proposed for simulating the hydraulic fracture in a naturally fractured gas reservoir. However, what hydraulic fracture looks like in the subsurface, especially in unconventional reservoirs, remain elusive, and many times, field observations contradict our common beliefs. In this study, the hydraulic fracture model is considered in terms of the state of tensions, on the interaction between the hydraulic fracture and the natural fracture (45°), and the effect of length and height of hydraulic fracture developed and how to distribute induced stress around the well. In order to determine the direction in which the hydraulic fracture is formed strikethrough, the finite difference method and the individual element for numerical solution are used and simulated. The results indicate that the optimum hydraulic fracture time was when the hydraulic fracture is able to connect natural fractures with large streams and connected to the well, and there is a fundamental difference between the tensile and shear opening. The analysis indicates that the growing hydraulic fracture, the tensile and shear stresses applied to the natural fracture.
机译:所有水库都在某种程度上裂缝。取决于密度,尺寸,取向和自然骨折的粘合和液压压裂的位置,预先存在的自然裂缝会影响液压断裂传播和相关的流量。了解液压断裂和自然骨折之间的相互作用在估算骨折复杂性,刺激的储层体积,排水的储层体积和完井效率方面至关重要。然而,由于存在具有漫射渗透和不同取向的自然骨折,因此在天然裂缝的气体储层中操作复杂。为此目的,提出了两种数值方法,用于在天然碎气储层中模拟液压骨折。然而,在地下的液压骨折看起来像在非传统的水库中,仍然难以捉摸,多次,现场观察与我们共同的信仰相矛盾。在这项研究中,液压断裂模型在张力状态下考虑了液压骨折与自然骨折(45°)之间的相互作用,以及液压骨折的长度和高度的影响以及如何分配诱导井周围的压力。为了确定形成液压断裂的方向,使用和模拟有限差分方法和用于数值溶液的各个元件。结果表明,最佳的液压断裂时间是液压骨折能够将具有大溪流的自然骨折连接并连接到井,并且抗拉和剪切开口之间存在根本差异。该分析表明,液压骨折,施加到自然骨折的拉伸和剪切应力。

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