低含液管线内液膜厚度分布特性的试验研究Experimental Study of Liquid Film Thickness Characteristics in Gas Pipeline with Low Liquid Loading
管孝瑞,王建军,金有海,李虎,金哈申,张大磊
GUAN Xiao-rui,WANG Jian-jun,JIN You-hai,LI Hu,JIN Ha-shen,ZHANG Da-lei
摘要(Abstract):
湿气集输管线内存在低含液气液两相流动。利用相似准则建立试验管道,结合螺旋测微器设计出瞬时液膜厚度测量装置,对低含液管线内液膜厚度分布特性进行研究。结果表明:液膜具有波动性,水平管内液膜主要集中在底部,两侧存在薄液膜。同一表观气速下,随着表观液速的增加,液膜分布范围变大,最厚值先变小后增大;同一表观液速下,随着表观气速的增加,弯头下竖直管周向液膜最厚值和最薄值变小,周向等效均匀液膜厚度变小。
The gas-liquid flow with low liquid loading appeared in wet gas gathering pipelines.Experimental pipeline was established according to similarity criteria.A system of measuring transient liquid film thickness was designed with micrometer.Film distribution characteristics in the gas pipeline with low liquid loading were studied.The results show fluctuation in the film distribution.Liquid film is concentrated on the bottom of horizontal pipe.Thin film exists on the side walls of horizontal pipes.Under the same superficial gas velocity,the region occupied by liquid film is extended and the value of thickest film is increased first and then decreased with increasing superficial liquid velocity.Under the same superficial liquid velocity,the thickest and thinnest values of film thickness are decreased,and the circumferential equivalent uniform film thickness is decreased with increasing superficial gas velocity in the vertical pipe downstream of the elbow.
关键词(KeyWords):
低含液率;气液两相流动;液膜厚度;输气管线
low liquid loading;gas-liquid flow;film thickness;gas pipeline
基金项目(Foundation): 国家自然科学基金资助项目(51276200;41106068);; 青岛市科技计划项目(14-2-4-63-jch);; 中央高校基本科研业务费专项资金资助项目(15CX06045A;16CX05011A)
作者(Author):
管孝瑞,王建军,金有海,李虎,金哈申,张大磊
GUAN Xiao-rui,WANG Jian-jun,JIN You-hai,LI Hu,JIN Ha-shen,ZHANG Da-lei
参考文献(References):
- [1]Olive N R,Zhang H Q,Wang Q,et al.Experimental study of low liquid loading gas-liquid flow in nearhorizontal pipes[J].Journal of energy resources technology,2003,125(4):294-298.
- [2]Banafi A,Talaei M R,Ghafoori M J.A comprehensive comparison of the performance of several popular models to predict pressure drop in stratified gas-liquid flow with low liquid loading[J].Journal of Natural Gas Science and Engineering,2014,21:433-441.
- [3]Guan X,Zhao Y,Wang J,et al.Numerical analysis of quasi-steady flow characteristics in large diameter pipes with low liquid loading under high pressure[J].Journal of Natural Gas Science and Engineering,2015,26:907-920.
- [4]Elgaddafi R,Naidu A,Ahmed R,et al.Modeling and experimental study of CO2corrosion on carbon steel at elevated pressure and temperature[J].Journal of Natural Gas Science and Engineering,2015,27:1620-1629.
- [5]Guan X,Zhang D,Zhang J,et al.Electrochemical and Molecular Dynamics Evaluation on Inhibition Performance of 2-(1-Methyl-Nonyl)-Quinoline[J].Journal of Dispersion Science and Technology,2016,37(8):1140-1151.
- [6]胡志华,杨燕华,周芳德.水平管内气液两相环状流形成机理试验研究[J].上海交通大学学报,2005,39(5):823-826.
- [7]白长青,李志国,熊小念,等.冲击气流作用下放空管道流固耦合动力学分析[J].流体机械,2016,44(2):34-38.
- [8]王鑫,王同吉,何利民.水平管液塞区相分布特征研究[J].工程热物理学报,2012,33(4):611-615.
- [9]王晶,王亦飞,颜留成,等.管内垂直下降液膜速度与厚度分布特性[J].化工学报,2016,67(6):2239-2245.
- [10]崔洁,陈雪莉,王清立,等.电导法测量新型旋风分离器内液膜的分布规律[J].化工学报,2009,60(6):1487-1493.
- [11]王灵萍,王亦飞,郭强强,等.洗涤冷却管内垂直降膜流动特性[J].化工学报,2013,64(6):1959-1968.
- [12]孙海疆,偶国富,肖定浩,等.煤液化多相流输送弯管冲蚀磨损数值研究[J].流体机械,2013,41(8):45-47.
- [13]赵建福,解京昌,林海,等.不同重力条件下气/液两相流试验研究[J].工程热物理学报,2001,22(3):367-369.
- [14]沈远.输气管道内涂层制备及其减阻性能研究[D].上海:华东理工大学,2014.
- [15]李国平,刘兵,鲍旭晨,等.天然气管道的减阻与天然气减阻剂[J].油气储运,2008,27(3):15-21.
- [16]王莉莉,王梦珠,吕妍,等.泄漏位置对激光检测天然气管道泄漏影响分析[J].压力容器,2016,33(8):60-64.
- [17]李卫东,李荣先.水平管内气液环状流液膜及扰动波特性[J].清华大学学报:自然科学版,2000,40(11):23-26.
- [18]雷雨.湿天然气管道低含液率气液两相流液滴夹带机理研究[D].西安:西安石油大学,2015.