SEPARATION REGIONS AND PROCESSES OF ZEOTROPIC AND AZEOTROPIC TERNARY DISTILLATION

被引:79
|
作者
STICHLMAIR, JG
HERGUIJUELA, JR
机构
[1] University of Essen, Essen, 4300
关键词
D O I
10.1002/aic.690381005
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The rigorous calculation of top and bottom fractions of a multicomponent distillation is very time consuming and involved as it can only be done iteratively, and convergence problems are often encountered, especially in azeotropic systems. This article presents a method for the easy determination of possible top and bottom fractions of a ternary distillation. This method, which works for zeotropic as well as for azeotropic mixtures, is especially useful in the first steps of process synthesis and design since impossible separations can be determined and thus excluded from further analysis so that work can be concentrated on feasible processes. A very important application of the method developed in this article is to the design and analysis of processes for complete separation of binary azeotropic mixtures by use of an entrainer (for example, Azeotropic Distillation and Extractive Distillation). Knowledge of the separation regions in the distillation diagram allows for the development of a generalized process and the formulation of criteria for entrainer selection. The effectiveness of the method is demonstrated on a number of industrial important processes.
引用
收藏
页码:1523 / 1535
页数:13
相关论文
共 50 条
  • [31] Heat-Integrated Azeotropic Distillation and Extractive Distillation for the Separation of Heterogeneous Ternary Azeotropes of Diisopropyl Ether/Isopropyl Alcohol/Water
    Qi, Jun
    Tang, Jinlong
    Zhang, Qingjun
    Wang, Yongguang
    Chen, Huidong
    Zhao, Hongkang
    Zhang, Liqun
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2019, 58 (45) : 20734 - 20745
  • [32] A semicontinuous approach for heterogeneous azeotropic distillation processes
    Tabari, Amir
    Ahmad, Arshad
    COMPUTERS & CHEMICAL ENGINEERING, 2015, 73 : 183 - 190
  • [33] Design and optimization of energy-saving heterogeneous azeotropic distillation processes for the separation of ternary mixture of ethyl acetate/ n-propanol/water
    Leng, Junjie
    Fan, Songdi
    Dong, Lichun
    Feng, Zemin
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 359
  • [34] Control of extractive distillation processes with preconcentration for the separation of ternary azeotropic mixture ethyl acetate-ethanol-water in the face of multiple feed disturbances
    Wu, Tingyu
    Wang, Chao
    Zhuang, Yu
    Xu, Haohan
    Du, Jian
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 354
  • [35] Energy saving in batch distillation for separation of ternary zeotropic mixture integrated with vapor recompression scheme: dynamics and control
    Radhika, Gandu
    Burolia, Akash Kumar
    Raja, Pandiyan Kuppusamy Raghu
    Ambati, Seshagiri Rao
    Patle, Dipesh S.
    Gara, Uday Bhaskar Babu
    CHEMICAL PRODUCT AND PROCESS MODELING, 2021, 16 (02): : 101 - 115
  • [36] Efficient separation of methanol, acetonitrile, and benzene ternary azeotropic mixture using ionic liquid in extractive distillation
    Dong, Yichun
    Xu, Fengfeng
    Xia, Yin
    Yang, Qingchun
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 360
  • [37] Integrating sustainability metrics to the design of extractive distillation for ternary azeotropic mixtures of ethanol, tetrahydrofuran, and methanol separation
    Sanchez-Ramirez, Eduardo
    Zhang, Youhe
    Yang, Ao
    Kong, Zong Yang
    Segovia-Hernandez, Juan Gabriel
    Sunarso, Jaka
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2023, 200 : 58 - 66
  • [38] ZEOTROPIC DISTILLATION
    MACZYNSKI, A
    PRZEMYSL CHEMICZNY, 1968, 47 (05): : 296 - +
  • [39] Algorithm for generating the distillation regions for azeotropic multicomponent mixtures
    Safrit, BT
    Westerberg, AW
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1997, 36 (05) : 1827 - 1840
  • [40] Calculations of distillation trajectories at minimum reflux for ternary azeotropic mixtures
    Petlyuk, FB
    Danilov, RY
    THEORETICAL FOUNDATIONS OF CHEMICAL ENGINEERING, 1998, 32 (06) : 548 - 559