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Fracture Conductivity Decrease due to Proppant Deformation and Crushing, a Parametrical Study

机译:由于支撑剂变形和破碎,参数研究,断裂电导率降低

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Sustainable high fracture conductivity is a key to successful stimulation. The reduction of hydraulic fracture conductivity due to proppant deformation and crushing is frequently observed. Previous researches are based on laboratory experiments and empirical correlations, which can not fully explain proppant damage in field cases. In this paper, we applied our fully coupled fluid flow and geomechanical model to further understand the proppant pack deformation and crushing. Parametric studies on wellbore and reservoir pressures, formation properties, and proppant biot constant were performed to understand proppant deformation and crushing in different conditions. Additionally, an analytical model for avoiding proppant crushing was developed for fractured wells. Through this research, we found fracture conductivity loss due to deformation and crushing are severer than laboratory results. Large deformation and high probability of crushing were observed near wellbore according to the net pressure. Fast flow back (low bottom hole pressure) would generate large proppant crushed zone. Various reservoir properties as pressure gradient, formation stiffness, and matrix permeability were also investigated. Strong proppant is highly recommended for natural fractures, and hydraulic fracture near well bore especially for tight formations. Small chock size (high BHP) is also recommended during early production. Additionally, a simple analytical model is provided, accoding to the parametrical studies, for operating well without breaking proppant pack.
机译:可持续的高骨折电导率是成功刺激的关键。经常观察到由于支撑剂变形和破碎引起的液压断裂电导率的降低。以前的研究是基于实验室实验和经验相关性,这无法在现场案例中完全解释支撑剂损坏。在本文中,我们应用了完全耦合的流体流动和地质力学模型,以进一步了解支撑包装变形和破碎。进行井筒和储层压力,形成性能和支撑剂Biot常数的参数研究,以了解不同条件的支撑剂变形和破碎。另外,为驳裂井开发了一种用于避免支撑碎屑的分析模型。通过这项研究,我们发现由于变形和破碎引起的断裂电导率损失比实验室结果更严重。根据净压力,在井筒附近观察到大变形和粉碎的高概率。快速回(低底孔压力)将产生大型支撑剂压碎区域。还研究了各种储层性能,作为压力梯度,形成刚度和基质渗透性。强大的支撑剂强烈推荐用于自然骨折,液压骨折,孔孔尤其适用于紧密地层。在早期生产期间也建议使用小型塞子大小(高BHP)。另外,提供了一种简单的分析模型,用于调节参数研究,在不破坏支撑剂包的情况下运行。

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