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计算传质法预测精馏塔效率(英文)
引用本文:孙志民,刘春江,余国琮,袁希钢.计算传质法预测精馏塔效率(英文)[J].中国化学工程学报,2011,19(5):833-844.
作者姓名:孙志民  刘春江  余国琮  袁希钢
作者单位:State Key Laboratory for Chemical Engineering (Tianjin University) and School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China
基金项目:Supported by the National Natural Science Foundation of China (20736005)
摘    要:A computational mass transfer model is proposed for predicting the concentration profile and Murphree efficiency of sieve tray distillation column. The proposed model is based on using modified two equations formulation for closing the differential turbulent mass transfer equation with improvement by considering the vapor injected from the sieve hole to be three dimensional. The predicted concentration distributions by using proposed model were checked by experimental work conducted on a sieve tray simulator of 1.2 meters in diameter for de-sorbing the dissolved oxygen in the feed water by blowing air. The model predictions were confirmed by the ex-perimental measurement. The validation of the proposed model was further tested by comparing the simulated re-sult with the performance of an industrial scale sieve tray distillation column reported by Kunesh et al. for the strip-ping of toluene from its water solution. The predicted outlet concentration of each tray and the Murphree tray effi-ciencies under different operating conditions were in agreement with the published data. The simulated turbulent mass transfer diffusivity on each tray was within the range of the experimental result in the same sieve column re-ported by Cai et al. In addition, the prediction of the influence of sieve tray structure on the tray efficiency by using the proposed model was demonstrated.

关 键 词:筛板精馏塔  性能预测  传质方程  计算  模型预测  实验工作  浓度分布  实验测量
收稿时间:2011-6-20
修稿时间:2011-6-20  

Prediction of distillation column performance by computational mass transfer method
SUN Zhimin,LIU Chunjiang,YU Guocong,YUAN Xigang.Prediction of distillation column performance by computational mass transfer method[J].Chinese Journal of Chemical Engineering,2011,19(5):833-844.
Authors:SUN Zhimin  LIU Chunjiang  YU Guocong  YUAN Xigang
Affiliation:State Key Laboratory for Chemical Engineering (Tianjin University) and School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China
Abstract:A computational mass transfer model is proposed for predicting the concentration profile and Murphree efficiency of sieve tray distillation column. The proposed model is based on using modified two equations formulation for closing the differential turbulent mass transfer equation with improvement by considering the vapor injected from the sieve hole to be three dimensional. The predicted concentration distributions by using proposed model were checked by experimental work conducted on a sieve tray simulator of 1.2 meters in diameter for desorbing the dissolved oxygen in the feed water by blowing air. The model predictions were confirmed by the experimental measurement. The validation of the proposed model was further tested by comparing the simulated result with the performance of an industrial scale sieve tray distillation column reported by Kunesh et al. for the stripping of toluene from its water solution. The predicted outlet concentration of each tray and the Murphree tray efficiencies under different operating conditions were in agreement with the published data. The simulated turbulent mass transfer diffusivity on each tray was within the range of the experimental result in the same sieve column reported by Cai et al. In addition, the prediction of the influence of sieve tray structure on the tray efficiency by using the proposed model was demonstrated.
Keywords:simulation  concentration field  computational mass transfer  computational fluid-dynamics  tray efficiency  sieve tray  turbulent mass transfer diffusivity
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