Analysis of Perforation Erosion Through Computational Fluid Dynamic Modeling

Yiming Zhang, J. Wang
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引用次数: 1

Abstract

Field and experimental data have shown that perforation erosion during shale gas stimulation invalidates the assumption of a constant coefficient of discharge. However, perforation erosion is not fully understood yet. In this work, a perforation erosion model was built using computational fluid dynamics (CFD) and validated against laboratory data. We then conducted parametric studies to investigate the impact of treatment rate, proppant concentration, proppant size, and fluid viscosity on perforation erosion. Our results demonstrated that a higher treatment rate and larger proppant lead to higher erosion to the perforation diameter. Perforation erosion decreased when fluid viscosities increased from 10 to 100 cp, and then increased when the fluid viscosity was increased to 1,000 cp. Our new understandings could be applied to improve perforation design in shale wells.
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基于计算流体动力学模型的射孔冲蚀分析
现场和实验数据表明,页岩气增产过程中的射孔侵蚀使恒定流量系数的假设失效。然而,射孔侵蚀尚未完全了解。在这项工作中,利用计算流体动力学(CFD)建立了射孔侵蚀模型,并根据实验室数据进行了验证。然后,我们进行了参数研究,以研究处理率、支撑剂浓度、支撑剂尺寸和流体粘度对射孔侵蚀的影响。我们的研究结果表明,更高的处理率和更大的支撑剂会导致更高的射孔直径侵蚀。当流体粘度从10到100 cp增加时,射孔侵蚀减少,当流体粘度增加到1000 cp时,射孔侵蚀增加。我们的新认识可以应用于改进页岩井的射孔设计。
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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