详细信息
Numerical simulation of micromixing effect on the reactive flow in a co-rotating twin screw extruder
文献类型:期刊文献
中文题名:Numerical simulation of micromixing effect on the reactive flow in a co-rotating twin screw extruder
英文题名:Numerical simulation of micromixing effect on the reactive flow in a co-rotating twin screw extruder
作者:Hao Tang[1];Yuan Zong[1];Ling Zhao[1]
机构:[1]State Key Laboratory of Chemical Engineering, East China University of Science and Technology
年份:2016
卷号:24
期号:9
起止页码:1135
中文期刊名:Chinese Journal of Chemical Engineering
外文期刊名:中国化学工程学报(英文版)
收录:CSTPCD;;Scopus;CSCD:【CSCD2015_2016】;
基金:Supported by National Program on Key Basic Research Project(2011CB606100);the National Natural Science Foundation of China(21406059)
语种:英文
中文关键词:Multicomponent reaction Mixing Numerical simulation Extrusion
外文关键词:Multicomponent 反应;混合;数字模拟;挤出
摘要:To control the multicomponent reactions in extrusion, reactive-mixing flow in a co-rotating twin screw extruder was numerically studied in the present paper. Effects of initial species distribution, rotating speed and flow rate on a competitive-parallel reaction were investigated and the relationship between mixing and reactions was discussed from the view of chemical reaction engineering. The simulation results show the studied operational parameters, which determine residence time distribution, earliness of mixing and segregation degree of reactive-mixing flows, affect the local species concentration and reaction time and hence have significant influences on the reaction extent. Orthogonal test was adopted to clarify the significance of operational parameters.The analysis shows that initial species distribution and flow rate are the most important factors in the control of reaction extent, and effect of rotating speed is conditional depending on the micro-mixing status of the fluid.
To control the multicomponent reactions in extrusion, reactive-mixing flow in a co-rotating twin screw extruder was numerically studied in the present paper. Effects of initial species distribution, rotating speed and flow rate on a competitive-parallel reaction were investigated and the relationship between mixing and reactions was discussed from the view of chemical reaction engineering. The simulation results show the studied operational parameters, which determine residence time distribution, earliness of mixing and segregation degree of reactive-mixing flows, affect the local species concentration and reaction time and hence have significant influences on the reaction extent. Orthogonal test was adopted to clarify the significance of operational parameters.The analysis shows that initial species distribution and flow rate are the most important factors in the control of reaction extent, and effect of rotating speed is conditional depending on the micro-mixing status of the fluid.
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