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:天然裂缝性地层水力压裂开发复杂裂隙网络的数值模拟

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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:必须通过水力压裂法创建大型复杂的裂缝网络,以提高致密砂岩或页岩储层的采收率,致密气开采和热干岩(HDR)地热系统,以改善与岩石基质的接触面积。尽管常规的压裂处理可能导致双翼裂缝,但通过微地震测绘的证据表明,在许多非常规油藏中都可能形成裂缝网络,尤其是当存在天然裂缝系统且主应力之间的差异较小时。但是,关于天然裂缝致密地层中的裂缝发展以及流体和支撑剂的输送,并没有获得太多的见识。为了阐明岩石与处理参数之间的关系以及由此产生的裂缝特性,使用了商用离散裂缝网络(DFN)模拟器进行了数值模拟。进行了全面的敏感性分析,以识别在不同地质条件下大规模水压裂处理产生的典型裂缝网络模式。它显示了治疗参数如何影响裂缝发展以及不同的治疗设计可能导致什么类型的裂缝模式。这项研究的重点是在不同天然裂缝系统中复杂的裂缝网络的发展。另外,严格讨论了DFN模拟器用于模拟页岩气增产和HDR增产的适用性。上述方法可深入了解岩石性质(特别是自然裂缝系统的基质性质和特征)与发达裂缝网络的性质之间的关系。各种模拟场景显示了可以开发出不同复杂裂缝模式的典型条件,并规定了有效的处理设计以生成这些裂缝系统。水力压裂对于从页岩和基底岩石(主要是花岗岩)等超致密地层生产石油,天然气或热量至关重要。如果存在天然裂缝系统,则压裂过程将变得更加复杂。我们的模拟结果揭示了有关影响裂缝网络性质的主要参数,导致复杂裂缝网络发展的主要因素以及HDR和页岩气/油页岩增产措施之间差异的重要信息。

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