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The Effects of Fracture Orientation and Elastic Property Anisotropy on Hydraulic Fracture Conductivity in the Marcellus Shale

机译:裂缝取向和弹性性能各向异性对Marcellus页岩液压断裂电导率的影响

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Production of hydrocarbons from low-permeability shale reservoirs has become economically feasible thanks to advances in horizontal drilling and hydraulic fracturing. Together, these two techniques help to create a fracture network, which act as fluid conduits from the reservoir to the wellbore. The efficacy of a fracturing treatment can be determined through fracture conductivity analysis. Fracture conductivity is defined as the product of fracture permeability and fracture width, and describes both how much and how easily fluid can flow through fractures. It is therefore directly related to well performance. The goal of this work is to explore fracture conductivity of Marcellus shale samples fractured in both horizontal and vertical orientations. The Marcellus shale, located primarily in Pennsylvania, Ohio, West Virginia, New York, and Maryland, is the largest gas-bearing shale formation in North America, and its development has significant implications on regional economies, the energy infrastructure of northeast United States, and the availability of petrochemical plant feedstock. In this work, a series of experiments was conducted to determine the propped fracture conductivity of 23 different outcropsamples from Elimsport and Allenwood, Pennyslvania. Before conductivity measurements were taken, the pedigree of samples was verified through XRD analysis, elastic rock properties were measured and compared against literature values, and fracture surface contours were mapped and measured. Fracture conductivity of both horizontally and vertically-fracture samples was determined by measuring the pressure drop of nitrogen gas through a modified API conductivity cell. Results show that fracture conductivity varies as a function of fracture orientation only when anisotropy of the rock’s mechanical properties is pronounced. It is hypothesized that the anisotropy of Young’s Modulus and Poisson’s Ratio play a significant role in fracture mechanics, and therefore in the width of hydraulically-induced fractures. Ultimately, the experiments conducted as part of this work show that fracture conductivity trends are strongly tied to both proppant concentration and the rock mechanical properties.
机译:由于水平钻孔和水力压裂的进步,低渗透性页岩储层的烃的生产变得经济可行。这两种技术在一起有助于创建一个骨折网络,该网络充当从水库到井筒的流体管道。压裂处理的功效可以通过断裂导电性分析来确定。断裂电导率定义为骨折渗透性和裂缝宽度的产物,并描述了液体可以通过裂缝流动的多大和多么容易。因此,它与良好的性能直接相关。这项工作的目标是探讨Marcellus页岩样品的骨折导电性,水平和垂直方向骨折。 Marcellus Shale主要位于宾夕法尼亚州宾夕法尼亚州,俄亥俄州,西弗吉尼亚州,纽约和马里兰州,是北美最大的含气页岩形成,其开发对区域经济体的显着影响,美国东北部的能源基础设施,以及石油化工厂原料的可用性。在这项工作中,进行了一系列实验,以确定来自Pennyslvania的Eluctopor和Allenwood的23种不同葡萄糖蛋白的预裂缝导电性。在采集电导率测量之前,通过XRD分析验证样品的血迹,测量弹性岩石性能并与文学值进行比较,并映射并测量断裂表面轮廓。通过通过修饰的API电导率测量氮气的压降来测定水平和垂直骨折样品的断裂导电性。结果表明,仅当岩石的机械性能的各向异性发音时,裂缝电导率仅随着断裂取向的函数而变化。假设杨氏模量和泊松比的各向异性在骨折力学中发挥着重要作用,因此在液压诱导的骨折的宽度中起着重要作用。最终,作为本作品一部分进行的实验表明,断裂电导率趋势与支撑剂浓度和岩石机械性能强烈依赖。

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