幂律流体在偏心几何中湍流摩擦压力损失的精确预测模型

IF 1.3 4区 工程技术 Q3 ENGINEERING, PETROLEUM
V. Dokhani, Yu’e Ma, Zili Li, M. Yu
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引用次数: 4

摘要

研究了幂律钻井液轴向流动对偏心环空湍流条件下摩擦压力损失的影响。建立了一个数值模型来模拟牛顿流体和幂律流体在偏心环空几何形状下的流动。提出了一种基于混合长度法的湍流涡流粘度模型,其中阻尼常数是流动参数的函数,以考虑近壁效应。将包括速度剖面、涡流粘度和摩擦因数在内的数值结果与直径比为0.2至0.8的同心和偏心环形结构中牛顿流体和幂律流体的各种实验数据进行了比较。模拟结果还与文献中的数值研究和两个近似模型进行了比较。广泛模拟场景的结果用于获得一种新的相关性,用于估计湍流条件下偏心环空的摩擦压力损失。还提出了两个新的关联式来估计偏心几何形状的宽截面和窄截面中的最大轴向速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Accurate Model for Prediction of Turbulent Frictional Pressure Loss of Power-Law Fluids in Eccentric Geometries
The effect of axial flow of power-law drilling fluids on frictional pressure loss under turbulent conditions in eccentric annuli is investigated. A numerical model is developed to simulate the flow of Newtonian and power-law fluids for eccentric annular geometries. A turbulent eddy-viscosity model based on the mixing-length approach is proposed, where a damping constant as a function of flow parameters is presented to account for the near-wall effects. Numerical results including the velocity profile, eddy viscosity, and friction factors are compared with various sets of experimental data for Newtonian and power-law fluids in concentric and eccentric annular configurations with diameter ratios of 0.2 to 0.8. The simulation results are also compared with a numerical study and two approximate models in the literature. The results of extensive simulation scenarios are used to obtain a novel correlation for estimation of the frictional pressure loss in eccentric annuli under turbulent conditions. Two new correlations are also presented to estimate the maximum axial velocity in the wide and narrow sections of eccentric geometries.
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来源期刊
SPE Drilling & Completion
SPE Drilling & Completion 工程技术-工程:石油
CiteScore
4.20
自引率
7.10%
发文量
29
审稿时长
6-12 weeks
期刊介绍: Covers horizontal and directional drilling, drilling fluids, bit technology, sand control, perforating, cementing, well control, completions and drilling operations.
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