水平微型管道内高粘度气液两相流动的模拟

Semesta Teknika Pub Date : 2019-11-17 DOI:10.18196/ST.222241
S. Sukamta
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引用次数: 0

摘要

两相流用于许多行业,如核反应堆、锅炉、冷凝器、天然气液化等。两相流是管道中具有固液、液气、气固两种流体状态的流动。在两相流中,有三个通道,即垂直通道、水平通道和倾斜通道。在水平通道中,最常见的流动模式是分层流、气泡流、塞流、分层波浪流、环形流和段塞流。参考前面的研究,流动模式大多是通过实验研究获得的。使用模拟的优点是能够在进行实验研究之前预测流型和压力梯度,因此可以更早地知道它是否会具有不安全的流型,即段塞流。这项研究是通过使用计算流体动力学(CFD)软件Ansys Fluent 19.0 Student来寻找流型和压力梯度的。所使用的模型是流体体积(VOF),其中流体为空气-水和甘油(40%-70%)。管的长度为200mm,内径为1.6mm,试验段的长度为100mm。液体表观速度(JL)为0.033m/s;0.149m/s;0.232米/秒;0.539米/秒;0.7米/秒;使用2.297m/s和4.935m/s,而空气表观速度(J G)为9.62m/s。模拟结果显示了段塞环空和搅拌流动模式。在J L=0.033 m/s时,形成了环状的段塞;0.149m/s和0.232m/s,甘油含量分别为40%和50%。当甘油含量为60%和70%,J L=0.539m/s时,形成了块状环状图案。粘度影响流动模式,甘油含量越高,粘度越高,流体比空气多。J L和甘油含量越高,压力梯度就越高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of High Viscosity Gas-Liquid Two-Phase Flow in a Horizontal Mini Pipe
Two-phase flow is used in many industries such as nuclear reactors, boilers, condensers, liquefactions of natural gas, etc. Two-phase flow is a flow in a pipe which has two states of fluid such as solid-liquid, liquid-gas, gas-solid. In a two-phase flow, there are three channels, namely vertical, horizontal and inclined channels. In the horizontal channel, the most widely found flow is the flow patterns of stratified flow, bubble flow, plug flow, stratified wavy flow, annular flow, and slug flow. Refer to the previous research above, the flow patterns were mostly obtained by using an experimental study. The advantage of using the simulation is the ability to predict the flow pattern and pressure gradient before doing the experimental study so it can be known earlier if it will have an insecure flow pattern, i.e. slug flow. This research was conducted to find the flow pattern and pressure gradient by using a Computational Fluid Dynamics (CFD) software, the Ansys Fluent 19.0 Student. The model which was used is the Volume of Fluid (VOF) with the fluid of air-water and glycerin (40%-70%). The length of the pipe was 200 mm, the inner diameter was 1.6 mm, and the length of the test section was 100 mm. Liquid superficial speeds (J L ) of 0.033 m/s; 0.149 m/s; 0.232 m/s; 0.539 m/s; 0.7 m/s; 2.297 m/s and 4.935 m/s were used, while the air superficial speed (J G ) was 9.62 m/s. The result of the simulation showed slug annular and churn flow patterns. Slug annular was formed at J L = 0.033 m/s; 0.149 m/s and 0.232 m/s with the glycerin content of 40% and 50%. Slug annular pattern was formed when the glycerin content was 60% and 70% with J L = 0.539 m/s. Viscosity affects the flow pattern, the higher the glycerin content, the higher the viscosity and the more fluid than air. The higher the J L and glycerin content, the higher the pressure gradient.
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