小管内上下两相垂直环空流动的CFD模拟

Ekhwaiter Abobaker, Abadelhalim Elsanoose, J. Shirokoff, M. A. Rahman
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引用次数: 2

摘要

利用ANSYS Fluent 17.2平台,对垂直管内的环空流动特性进行了计算流体力学(CFD)仿真研究。研究分析了不同空气表面速度和水的雷诺数范围下两种情况下(向上和向下)环空流动的复杂行为,以获得定向流动和增加气液表面速度对基膜、扰动波平均厚度、扰动波平均纵向尺寸以及压力梯度的影响。对于多相流模型,采用流体体积法(VOF)对两相流进行建模,并结合RNG k-ε湍流模型对上下流动方向的全环形流动结构进行预测。从CFD模拟结果可以清楚地看出,空气速度的增加是如何导致膜厚的减小和压力梯度的增加的。此外,随着液体流速的增加,膜厚单调增加。然而,由于重力和界面摩擦的影响,向上流动的膜厚和压力梯度略大于向下流动的膜厚和压力梯度。研究结果与近期环空流动特性及上下流动方向压降的实验数据一致。该研究将有助于认识天然气井中多相流动的特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CFD Simulation of Two-Phase Vertical Annular Flow in Both Upward and Downward Direction in a Small Pipe
Computational fluid dynamics (CFD) simulation is presented to investigate the annular flow behavior in the vertical pipe by using ANSYS Fluent platform 17.2. The study was analyzed complex behavior of annular flow in two cases (upward and downward flow) for different air superficial velocities and range of Reynolds number for water, in order to obtain the effect of orientation flow and increasing superficial gas and liquid velocities on the base film, mean disturbance wave thickness, the average longitudinal size of disturbance wave as well as pressure gradient. For multiphase flow model, the volume of fluid method (VOF) for two-phase flow modelling was used and coupled with RNG k-ε turbulence model to predict fully annular flow structures in the upward and downward flow direction. From CFD simulation results, it is clear to see how increases in air velocity result in reductions in film thickness and increase in pressure gradient. Additionally, the results showed monotonic enhancement of film thickness occurring in tandem with increases in the liquid flow rate. However, due to the effect of gravitational force and interfacial friction, the film thickness and pressure gradient are slightly larger for the upward flow than for the downward flow. The results agree with the recent experimental data that studied the annular flow behavior and pressure drop in the upward and downward flow direction. This study will be very helpful in understanding multiphase flow behavior in natural gas wells.
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