Blade-shaped (PKN) Hydraulic Fracture Driven By A Turbulent Fluid In An Impermeable Rock

N. Zolfaghari, C. Meyer, A. Bunger
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引用次数: 14

Abstract

High flow rate, water-driven hydraulic fractures are more common now than ever in the oil and gas industry. Although the fractures are small, the high injection rate and low viscosity of the water, lead to high Reynolds numbers and potentially turbulence in the fracture. Here we present a semi-analytical solution for a blade-shaped (PKN) geometry hydraulic fracture driven by a turbulent fluid in the limit of zero fluid leak-off to the formation. We model the turbulence in the PKN fracture using the Gaukler-Manning-Strickler parametrization, which relates the the flow rate of the water to the pressure gradient along the fracture. The key parameter in this relation is the Darcy-Weisbach friction factor for the roughness of the crack wall. Coupling this turbulence parametrization with conservation of mass allows us to write a nonlinear pde for the crack width as a function of space and time. By way of a similarity ansatz, we obtain a semi-analytical solution using an orthogonal polynomial series. Embedding the asymptotic behavior near the fracture tip into the polynomial series, we find very rapid convergence: a suitably accurate solution is obtained with two terms of the series. This closed-form solution facilitates clear comparisons between the results and parameters for laminar and turbulent hydraulic fractures. In particular, it resolves one of the well known problems whereby calibration of models to data has difficulty simultaneously matching the hydraulic fracture length and wellbore pressure.
不透水岩石中紊流驱动的叶片型水力裂缝
在油气行业中,高流量水力压裂比以往任何时候都更为常见。虽然裂缝很小,但高注入速率和低粘度的水导致了高雷诺数和裂缝中潜在的湍流。本文给出了紊流驱动的叶片型(PKN)几何水力裂缝在零流体泄漏极限下的半解析解。我们使用Gaukler-Manning-Strickler参数化模型来模拟PKN裂缝中的湍流,该参数化将水的流速与裂缝沿线的压力梯度联系起来。该关系的关键参数是裂纹壁面粗糙度的达西-韦斯巴赫摩擦系数。将这种湍流参数化与质量守恒相结合,使我们能够写出裂缝宽度作为空间和时间函数的非线性方程。通过相似方差分析,我们得到了一个正交多项式级数的半解析解。将断裂尖端附近的渐近行为嵌入到多项式级数中,我们发现了非常快的收敛性:用两项级数得到了一个适当精确的解。这种封闭形式的解决方案便于在层流和湍流水力裂缝的结果和参数之间进行清晰的比较。特别是,它解决了一个众所周知的问题,即模型与数据的校准难以同时匹配水力裂缝长度和井筒压力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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