首页 | 本学科首页   官方微博 | 高级检索  
     

A dual-scale turbulence model for gas-liquid bubbly flows☆
引用本文:Xiaoping Guan,Zhaoqi Li,Lijun Wang,Xi Li,Youwei Cheng. A dual-scale turbulence model for gas-liquid bubbly flows☆[J]. 中国化学工程学报, 2015, 23(11): 1737-1745. DOI: 10.1016/j.cjche.2015.09.003
作者姓名:Xiaoping Guan  Zhaoqi Li  Lijun Wang  Xi Li  Youwei Cheng
作者单位:College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China
基金项目:Supported by the National Natural Science Foundation of China (U1162125, U1361112) and the National High Technology Research and Development Program of China (2011AA05A205).
摘    要:A dual-scale turbulence model is applied to simulate cocurrent upward gas–liquid bubbly flows and validated with available experimental data. In the model, liquid phase turbulence is split into shear-induced and bubble-induced turbulence. Single-phase standard k-εmodel is used to compute shear-induced turbulence and another transport equation is added to model bubble-induced turbulence. In the latter transport equation, energy loss due to interface drag is the production term, and the characteristic length of bubble-induced turbulence, simply the bubble diameter in this work, is introduced to model the dissipation term. The simulated results agree well with experimental data of the test cases and it is demonstrated that the proposed dual-scale turbulence model outperforms other models. Analysis of the predicted turbulence shows that the main part of turbulent kinetic en-ergy is the bubble-induced one while the shear-induced turbulent viscosity predominates within turbulent vis-cosity, especially at the pipe center. The underlying reason is the apparently different scales for the two kinds of turbulence production mechanisms:the shear-induced turbulence is on the scale of the whole pipe while the bubble-induced turbulence is on the scale of bubble diameter. Therefore, the model reflects the multi-scale phe-nomenon involved in gas–liquid bubbly flows.

关 键 词:Two-fluid model  Dual-scale turbulence model  Shear-induced turbulence  Bubble-induced turbulence  Bubbly flow  
收稿时间:2015-01-12

A dual-scale turbulence model for gas-liquid bubbly flows
Xiaoping Guan,Zhaoqi Li,Lijun Wang,Xi Li,Youwei Cheng. A dual-scale turbulence model for gas-liquid bubbly flows[J]. Chinese Journal of Chemical Engineering, 2015, 23(11): 1737-1745. DOI: 10.1016/j.cjche.2015.09.003
Authors:Xiaoping Guan  Zhaoqi Li  Lijun Wang  Xi Li  Youwei Cheng
Affiliation:College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China
Abstract:A dual-scale turbulence model is applied to simulate cocurrent upward gas–liquid bubbly flows and validated with available experimental data. In the model, liquid phase turbulence is split into shear-induced and bubble-induced turbulence. Single-phase standard k-εmodel is used to compute shear-induced turbulence and another transport equation is added to model bubble-induced turbulence. In the latter transport equation, energy loss due to interface drag is the production term, and the characteristic length of bubble-induced turbulence, simply the bubble diameter in this work, is introduced to model the dissipation term. The simulated results agree well with experimental data of the test cases and it is demonstrated that the proposed dual-scale turbulence model outperforms other models. Analysis of the predicted turbulence shows that the main part of turbulent kinetic en-ergy is the bubble-induced one while the shear-induced turbulent viscosity predominates within turbulent vis-cosity, especially at the pipe center. The underlying reason is the apparently different scales for the two kinds of turbulence production mechanisms:the shear-induced turbulence is on the scale of the whole pipe while the bubble-induced turbulence is on the scale of bubble diameter. Therefore, the model reflects the multi-scale phe-nomenon involved in gas–liquid bubbly flows.
Keywords:Two-fluid model  Dual-scale turbulence model  Shear-induced turbulence  Bubble-induced turbulence  Bubbly flow
本文献已被 万方数据 等数据库收录!
点击此处可从《中国化学工程学报》浏览原始摘要信息
点击此处可从《中国化学工程学报》下载全文
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号