首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >NUMERICAL SIMULATION OF COMPLEX FRACTURE NETWORK DEVELOPMENT BY HYDRAULIC FRACTURING IN NATURALLY FRACTURED ULTRATIGHT FORMATIONS
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NUMERICAL SIMULATION OF COMPLEX FRACTURE NETWORK DEVELOPMENT BY HYDRAULIC FRACTURING IN NATURALLY FRACTURED ULTRATIGHT FORMATIONS

机译:自然骨折超光模块液压压裂复杂骨折网络开发的数值模拟

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The creation of large complex fracture networks by hydraulic fracturing is imperative for enhanced oil recovery from tight sand or shale reservoirs, tight gas extraction, and Hot-Dry-Rock (HDR) geothermal systems to improve the contact area to the rock matrix. Although conventional fracturing treatments may result in bi-wing fractures, there is evidence by microseismic mapping that fracture networks can develop in many unconventional reservoirs, especially when natural fracture systems are present and the differences between the principle stresses are low. However, not much insight is gained about fracture development as well as fluid and proppant transport in naturally fractured tight formations. In order to clarify the relationship between rock and treatment parameters, and resulting fracture properties, numerical simulations were performed using a commercial Discrete Fracture Network (DFN) simulator. A comprehensive sensitivity analysis is presented to identify typical fracture network patterns resulting from massive water fracturing treatments in different geological conditions. It is shown how the treatment parameters influence the fracture development and what type of fracture patterns may result from different treatment designs. The focus of this study is on complex fracture network development in different natural fracture systems. Additionally, the applicability of the DFN simulator for modeling shale gas stimulation and HDR stimulation is critically discussed. The approach stated above gives an insight into the relationships between rock properties (specifically matrix properties and characteristics of natural fracture systems) and the properties of developed fracture networks. Various simulated scenarios show typical conditions under which different complex fracture patterns can develop and prescribe efficient treatment designs to generate these fracture systems. Hydraulic stimulation is essential for the production of oil, gas, or heat from ultratight formations like shales and basement rocks (mainly granite). If natural fracture systems are present, the fracturing process becomes more complex to simulate. Our simulation results reveal valuable information about main parameters influencing fracture network properties, major factors leading to complex fracture network development, and differences between HDR and shale gas/oil shale stimulations.
机译:通过液压压裂的大型复杂骨折网络的创建是从紧身砂或页岩储层,紧密的气体提取和热干岩(HDR)地热系统中加强储油,以改善岩石基质的接触区域。虽然常规压裂处理可能导致双翼骨折,但是通过微震映射存在证据,即骨折网络可以在许多非传统储层中发展,特别是当存在自然骨折系统并且原理应力之间的差异很低时。然而,没有多少洞察力是关于骨折开发以及在天然骨折的紧密地层中的流体和支撑剂运输。为了阐明岩石和治疗参数之间的关系,并产生裂缝性能,使用商业离散断裂网络(DFN)模拟器进行数值模拟。提出了综合敏感性分析,以鉴定不同地质条件下大量水压裂处理引起的典型骨折网络模式。示出了治疗参数如何影响骨折开发以及来自不同治疗设计可能导致的裂缝模式的类型。本研究的重点是在不同的自然骨折系统中对复杂的骨折网络发育。此外,DFN模拟器用于建模页岩气刺激和HDR刺激的适用性是批判性的。上述方法对岩石性质(特异性矩阵特性和特性)的关系洞察,以及发育骨折网络的性质。各种模拟场景显示出不同复杂骨折图案的典型条件,可以开发和规定有效的治疗设计以产生这些裂缝系统。液压刺激对于生产石油,气体或热量的液体刺激至关重要,如Hales和地下室岩石(主要是花岗岩)。如果存在自然骨折系统,则压裂过程变得更加复杂以模拟。我们的仿真结果显示了有关影响骨折网络性质的主要参数的有价值的信息,导致复杂骨折网络开发的主要因素,以及HDR和页岩气/油页岩刺激之间的差异。

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