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A semi‐analytical model for capturing dynamic behavior of hydraulic fractures during flowback period in tight oil reservoir

机译:一种半分析模型,用于捕获液压骨折期间液压骨折的动态行为

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Hydraulic fracturing has been successfully employed for unconventional oil and gas recovery for decades. During flowback, the closure of the fracture may exhibit with the pressure drop of fracturing fluid dewatering. However, fracture closure always is ignored or treated as stress‐dependent fracture properties in previous flowback models. This paper presented a dynamic fracture model, which can comprehensively capture the dynamic behavior of hydraulic fractures during the flowback. A nonlinear relationship between fracture aperture and contact stress acting on the fracture surfaces is adopted to simulate fracture closure. The fracture aperture calculated by the displacement discontinuity method (DDM) is used to characterize the fracture pore volume and fracture conductivity, which will be dynamically updated in the flow model. Then, the pressure and saturation of each phase, along with the displacement on the fracture surface, are calculated by solving flow equations and geomechanics equations with iterative coupling approach. The new semi‐analytical model is validated by comparing it with a fully coupled stress‐porosity pressure numerical simulation model setup by ABAQUS? and CMG. Then, the dynamic behaviors of hydraulic fractures are investigated in detail by several cases. Results show that fracture closure is an important reason for the decline in production during the flowback and early production. And it is more important to enhance the properties of the stimulated reservoir volume (SRV) than to only create a fracture with high conductivity. Lastly, the key parameters (the fracture effective length and fracture conductivity under variable contact stress) can be interpreted by history‐matching the field flowback data.
机译:液压压裂已成功用于非传统的石油和天然气回收数十年。在回流期间,裂缝的闭合可以表现出压裂液脱水的压降。然而,在先前的流量模型中,骨折闭合始终被忽略或被视为应力依赖性骨折性能。本文提出了一种动态骨折模型,可以全面捕获流量期间液压骨折的动态行为。采用裂缝孔径与作用在裂缝表面上的接触应力之间的非线性关系来模拟裂缝闭合。通过位移不连续方法(DDM)计算的裂缝孔用于表征骨折孔体积和断裂电导率,这将在流动模型中动态更新。然后,通过利用迭代耦合方法求解流动方程和地质力学方程,计算每个相的压力和饱和度以及断裂表面的位移。通过将其与ABAQUS的完全耦合的应力 - 孔隙度压力数值模拟模型进行比较,验证了新的半分析模型?和cmg。然后,通过几种情况详细研究了液压骨折的动态行为。结果表明,骨折闭合是流量和早期生产过程中生产下降的重要原因。更重要的是提高刺激的储存量(SRV)的性质,而不是仅产生具有高导电性的裂缝。最后,可以通过历史匹配的现场流回归数据来解释关键参数(可变接触应力下的断裂有效长度和断裂导电性。

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