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Laminar and Turbulent Friction Factors for Annular Flow of Drag-Reducing Polymer Solutions in Coiled-Tubing Operations

机译:连续油管操作中减阻聚合物溶液环流的层流和湍流摩擦因子

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摘要

The challenge of theoretical and numerical studies of annular fluid flow with varying eccentricity is mainly a result of the required coordinate systems. Computational-fluid-dynamics (CFD) modeling provides the state-of-the-art approach of investigating fluid flow in such complex geometries. In this study, results from a series of numerical simulations for the fully developed laminar flow of non-Newtonian power-law fluids in concentric and eccentric annular geometries are used to investigate the effect of eccentricity, flow-behavior index, and diameter ratio (ratio of the outer diameter of the inner tubing to the inner diameter of the outer tubing) on axial frictional pressure losses. The frictional pressure-loss gradients predicted by the CFD simulations were verified by comparing with the published studies and flow data from a field-scale experimental setup. At a constant flow rate, it is confirmed that frictional pressure losses decrease with increasing eccentricity. A good agreement was obtained with the Haciislamoglu and Langlinais (1990) correlation, and the results of this study, especially at low values of eccentricity. At very high eccentricities, data from the CFD model yield lower frictional pressure loss compared to Haciislamoglu and Langlinais (1990) correlation. This type of expression is obtained and the improved data of this study is incorporated. Next, this paper presents the results of an experimental study carried out to investigate frictional pressure-loss behavior of drag-reducing polymer solutions, flowing turbulently through an eccentric annulus. The experimental setup includes 30 ft of 31/2 × 23/8-in., 200 ft of 31/2×13/4-in., 69 ft of 51/2× 4-in., and 79 ft of 5×31/2-in. fully eccentric annuli. Data analysis enabled the development of a new correlation using fluid apparent viscosity at 511 sec~(-1), generalized Reynolds number, and diameter ratio, all of which can be easily determined in the field as independent variables. These new correlations for laminar and turbulent flow of drag-reducing polymer solutions present an improvement to existing correlations, and also permit undemanding hydraulic-program calculations for varying annular configurations.
机译:具有不同偏心率的环形流体流动的理论和数值研究面临的挑战主要是所需坐标系的结果。计算流体动力学(CFD)建模提供了研究这种复杂几何形状中流体流动的最新方法。在这项研究中,通过对非牛顿幂律流体在同心和偏心环形几何形状中充分发展的层流进行一系列数值模拟的结果,来研究偏心率,流动特性指数和直径比(比率)的影响。内管外径与外管内径之间的差值)取决于轴向摩擦压力损失。通过与已发表的研究结果和来自现场规模实验装置的流量数据进行比较,验证了通过CFD模拟预测的摩擦压力损失梯度。在恒定流量下,可以确认摩擦压力损失随着偏心率的增加而减小。 Haciislamoglu和Langlinais(1990)的相关性以及这项研究的结果,尤其是在偏心率较低的情况下,取得了很好的一致性。与Haciislamoglu和Langlinais(1990)的相关性相比,在非常高的偏心率下,CFD模型的数据产生的摩擦压力损失较小。获得了这种类型的表达,并结合了这项研究的改进数据。接下来,本文介绍了一项实验研究的结果,以研究减阻聚合物溶液的湍流流经偏心环的摩擦压力损失行为。实验装置包括30英尺的31/2×23/8英寸,200英尺的31/2×13/4英寸,69英尺的51/2×4英寸和79英尺的5× 31/2英寸完全偏心环。数据分析可以使用511秒〜(-1)的流体表观粘度,广义雷诺数和直径比来开发新的相关性,所有这些都可以在现场轻松确定为自变量。用于减阻聚合物溶液的层流和湍流的这些新的相关性对现有的相关性进行了改进,并且还允许对变化的环形构造进行不需要的液压程序计算。

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