详细信息
A separation column for liquid mixture based on phase transform:Experiment and simulation
文献类型:期刊文献
中文题名:A separation column for liquid mixture based on phase transform:Experiment and simulation
作者:Mengjie Liu[1];Weiqun Gao[1];Kexin Yan[1];Yudong Li[1];Bihong Li[1];Jiating Zhang[1];Weizhen Sun[1];Ling Zhao[1]
机构:[1]State Key Laboratory of Chemical Engineering,School of Chemical Engineering,East China University of Science and Technology,Shanghai 200237,China
年份:2024
卷号:74
期号:10
起止页码:144
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:【CSCD2023_2024】;PubMed;
语种:英文
中文关键词:Temperature-controlled phase change;column;Spiral corrugation blade;Heat integration;Computational fluid dynamics
摘要:The concentric internally heat-integrated distillation column(HIDi C) has advantages of low energy consumption and high thermodynamic efficiency. However, its drawbacks of limited heat transfer area,complex internal structure, and large number of control parameters hinder its widespread industrial applications. To solve these challenges, in this work a novel sleeve-like concentric heat-integrated separation column, namely temperature-controlled phase change column(TCPC), was developed to separate liquid mixtures in a more effective and energy-saving way with reflux section being moved and trays being replaced with spiral corrugation blades. The comprehensive performances of TCPC in ethanol-water system was firstly evaluated by experiments. The results showed that TCPC performs well in ethanol-water separation due to the internal spiral corrugation significantly reducing the vapor-liquid contact in separation section. Meanwhile, compared to the concentric HIDi C, TCPC has a higher total heat transfer coefficient due to the larger heat transfer area. Computational fluid dynamics simulation reveals the internal design of TCPC inducing secondary vortices of the vapor, enhancing condensation heat transfer and separation efficiency. Further, increasing the mass flow rate within a certain range would enhance the comprehensive performance factor and lead to more effective separation.
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