Flow Pattern of Miscellaneous Liquids with Varied Flow Rates on Structured Corrugation SiC Foam Packing
- Authors: Zhao Z.1, Li H.1,2, Li X.1,2, Pavlenko A.N.2, Gao X.1,2
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Affiliations:
- School of Chemical Engineering and Technology, National Engineering Research Center of Distillation Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin)
- Kutateladze Institute of Thermophysics, Siberian Branch
- Issue: Vol 28, No 3 (2019)
- Pages: 305-312
- Section: Article
- URL: https://journal-vniispk.ru/1810-2328/article/view/211844
- DOI: https://doi.org/10.1134/S1810232819030019
- ID: 211844
Cite item
Abstract
Although the unique liquid behavior renders structured corrugation SiC foam packing (SCFP-SiC) a great alternative in distillation, the separation efficiency depends heavily on capacity and liquid property. The aim of this work is to discuss the change of flow pattern with miscellaneous liquids at different flow rates in order to explain the performance of SCFP-SiC in a distillation column. The ultraviolet photography and pulse tracer method were used to estimate the effective flow area and the resident time, respectively. The experimental results indicate that the liquid flow pattern on SCFP-SiC consists of streamflow and transfusion flow. The stream flow can be enlarged by the increase of liquid flow rate so that the effective flow area is reduced, resulting in the decrease of separation efficiency at high liquid capacity. What is more, there exists a vast difference of flow pattern between polar liquid (e.g., water and acetic acid) and nonpolar liquid (e.g., cyclohexane). Transfusion flow of the former is much less than that of the latter, causing the poor performance when separating polar system. Therefore, the liquid capacity and type should be evaluated firstly in the use of SCFP-SiC.
About the authors
Z. Zhao
School of Chemical Engineering and Technology, National Engineering Research Center of Distillation Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin)
Email: gaoxin@tju.edu.cn
China, Tianjin, 300072
H. Li
School of Chemical Engineering and Technology, National Engineering Research Center of Distillation Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin); Kutateladze Institute of Thermophysics, Siberian Branch
Email: gaoxin@tju.edu.cn
China, Tianjin, 300072; pr. Akad. Lavrent’eva 1, Novosibirsk, 630090
X. Li
School of Chemical Engineering and Technology, National Engineering Research Center of Distillation Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin); Kutateladze Institute of Thermophysics, Siberian Branch
Email: gaoxin@tju.edu.cn
China, Tianjin, 300072; pr. Akad. Lavrent’eva 1, Novosibirsk, 630090
A. N. Pavlenko
Kutateladze Institute of Thermophysics, Siberian Branch
Email: gaoxin@tju.edu.cn
Russian Federation, pr. Akad. Lavrent’eva 1, Novosibirsk, 630090
X. Gao
School of Chemical Engineering and Technology, National Engineering Research Center of Distillation Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin); Kutateladze Institute of Thermophysics, Siberian Branch
Author for correspondence.
Email: gaoxin@tju.edu.cn
China, Tianjin, 300072; pr. Akad. Lavrent’eva 1, Novosibirsk, 630090
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