Numerical Simulation of the Air-Water Two-Phase Flow Across a 90-Degree Vertical-Upward Elbow

S. Qiao, W. Zhong, Hao Sijia, Peiyao Qi, Sichao Tan
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Abstract

The present study investigates the air-water two-phase flow across a 90-degree vertical-upward elbow with the computational fluid dynamics (CFD) simulation. The Eulerian-Eulerian two-fluid model and the Multi Size Group (MUSIG) model are used to predict the development of the detailed interfacial structures between the two phases. The axial development of the void fraction and the interfacial area concentration are investigated and benchmarked with the experimental data measured using the four-sensor conductivity probe. It is concluded that CFD simulation can predict the characteristics distributions of void fraction and interfacial area concentration and their development downstream of the elbow. The double-peaked void fraction distribution is found to be caused by the secondary flow induced by the elbow. The liquid phase on the outer curvature moves to the inner curvature and forms a double counter rotating vortex, entraining the bubbles to form a double-peaked distribution. The elbow effects become dissipated between 33 and 63 hydraulic diameters. The simulation results of liquid-phase and gas-phase parameters can be used to develop the theoretical two-phase flow models for the elbow region.
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90度垂直向上弯头空气-水两相流动的数值模拟
本文采用计算流体力学(CFD)方法对空气-水两相流在90度垂直向上弯头上的流动进行了模拟研究。采用欧拉-欧拉双流体模型和多尺度群(MUSIG)模型对两相界面结构的详细发育进行了预测。利用四传感器电导率探头测量的实验数据,研究了孔隙率和界面面积浓度的轴向发展规律。结果表明,CFD模拟可以较好地预测弯头下游孔隙率和界面面积浓度的特征分布及其发展趋势。双峰孔隙率分布是由弯头引起的二次流引起的。外曲率处的液相向内曲率移动,形成双对旋涡,夹带气泡形成双峰分布。弯头效应在33 ~ 63液压直径之间逐渐消失。液相和气相参数的模拟结果可用于建立弯头区两相流动的理论模型。
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