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CFD Simulation of Turbulent Flow Structure in Stratified Gas/Liquid Flow and Validation with Experimental Data

机译:分层气流/液体流动湍流结构的CFD仿真及实验数据验证

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Although two-phase stratified flow pattern commonly occurs in petroleum industry the understanding of it, in terms of structure of the wave interface and the ensuing interaction between the two phases, is limited compared to single phase flow. Also, most of the studies have not taken the velocity profile across the pipe cross-section into account, rather just focused on the average velocity of each cross section. This paper will provide a unique insight into these velocity profiles, which are critical for frictional pressure drop calculations and prediction of phenomena such as wall effects of multiphase flow, erosion, corrosion, hydrate formation, wax deposition, etc. The objective of this paper is the analysis of this gas-liquid flow pattern in a horizontal pipe utilizing Computational Fluid Dynamics (CFD) simulation and comparison of the results with experimental data. The scope also includes the investigation of turbulent flow structure beneath gas-liquid interface by calculating the stream-wise velocity profile. Experimental studies have been conducted to investigate gas-liquid stratified flow in horizontal pipe. A unique experimental facility was constructed with a 4-in ID PVC pipe and measurements were performed utilizing air-water. Liquid level at the center of the pipe is measured by ultrasonic proximity sensor at different superficial velocities of gas and liquid. Along with experimental tests, CFD simulations for the same test conditions have been performed using a commercial CFD code. For tracking the two-phase interface, Volume of Fluid (VOF) method was applied. The numerical simulation was obtained with the Realizable k-epsilon model of turbulence. Comparing the CFD simulation results and liquid hold up measured experimentally revealed a good agreement (discrepancy15%). The experimental data also show that at constant superficial liquid velocities, the liquid level increases with decreasing superficial gas velocities. The validation of the CFD results with experimental data indicates that, CFD simulation has the potential to be used for facility design and scale-up processes in petroleum industry.
机译:尽管在石油工业中通常发生两相分层的流动模式,但在与单相流相比,在波接口的结构和两相之间的相互作用方面的理解。此外,大多数研究没有考虑管道横截面的速度曲线,而是仅专注于每个横截面的平均速度。本文将提供对这些速度型材的独特洞察力,这对于摩擦压降计算至关重要,以及多相流动,腐蚀,腐蚀,水合物形成,蜡沉积等壁效应的现象的预测。本文的目的是本文的目的利用计算流体动力学(CFD)仿真和实验数据结果的水平管中该气液流动图案的分析。该范围还包括通过计算流动速度曲线通过计算气液界面下的湍流结构的研究。已经进行了实验研究以研究水平管中的气液分层流动。独特的实验设施采用4英寸ID PVC管材构建,使用空水进行测量。管道中心处的液位通过超声波邻近传感器以液体和液体的不同表面速度测量。除了实验测试之外,还使用商业CFD码进行了相同的测试条件的CFD模拟。为了跟踪两相界面,施加了流体体积(VOF)方法。用可实现的湍流模型获得数值模拟。比较CFD仿真结果和液体持平测量的实验揭示了良好的一致性(差异15%)。实验数据还表明,在恒定的浅表液体速度下,液位随着浅表气体速度的降低而增加。使用实验数据的CFD结果验证表明,CFD仿真有可能用于石油工业中的设施设计和扩大过程。

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