Simulation of kinetic effects in reactive distillation

被引:66
作者
Chen, FR [1 ]
Huss, RS [1 ]
Malone, MF [1 ]
Doherty, MF [1 ]
机构
[1] Univ Massachusetts, Dept Chem Engn, Amherst, MA 01003 USA
关键词
reactive distillation; simulation; metathesis of 2-pentene; MTBE; ethylene glycol;
D O I
10.1016/S0098-1354(00)00609-8
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper describes a simulation and modeling methodology for kinetically controlled, stage-wise reactive distillation columns, taking into account equimolar or non-equimolar reactions, side-reactions, effects of heat of reaction, non-constant latent heat effects, a distribution of liquid holdups on the reactive stages and hybrid sections in a column. A Damkohler number, which is the ratio of a characteristic liquid residence time to a characteristic reaction time, is introduced into the mathematical model. By changing the Damkohler number, the transition behavior from the nonreactive to the equilibrium reactive limits can be described. Combining the model type and the holdup distribution type on the reactive stages, four simulation strategies are studied: (1) non-heat effects model and constant molar holdup; (2) non-heat effects model and non-constant molar holdup; (3) heat effects model and constant molar holdup; (4) heat effects model and non-constant molar holdup. These strategies can be used to handle very diverse reactive distillation systems. The modeling tool capabilities are demonstrated with case studies for the metathesis of 2-pentene, MTBE synthesis and the hydration of ethylene oxide to ethylene glycol. For MTBE synthesis, the output multiplicities present at chemical reaction equilibrium disappear at lower extents of reaction (i.e. at lower residence times or Damkohler numbers). (C) 2000 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:2457 / 2472
页数:16
相关论文
共 50 条
  • [21] Simulation studies on reactive distillation for synthesis oftert-amyl ethyl ether
    Ukrit Sahapatsombud
    Amornchai Arpornwichanop
    Suttichai Assabumrungrat
    Piyasan Praserthdam
    Shigeo Goto
    Korean Journal of Chemical Engineering, 2005, 22 : 387 - 392
  • [22] Simulation and optimization of the thermally coupled reactive distillation column for producing toluene diisocynate
    Bi, Rongshan
    Yan, Kejia
    Yang, Haixing
    Tan, Xinshun
    Xiang, Shuguang
    AICHE JOURNAL, 2023, 69 (01)
  • [23] Simulation studies on reactive distillation for synthesis of tert-amyl ethyl ether
    Sahapatsombud, U
    Arpornwichanop, A
    Assabumrungrat, S
    Praserthdam, P
    Goto, S
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2005, 22 (03) : 387 - 392
  • [24] Simulation for the reactive distillation process to synthesize ethyl tert-butyl ether
    Yang, BL
    Yang, SB
    Wang, HJ
    JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 2001, 34 (09) : 1165 - 1170
  • [25] Comparison of computer simulation of reactive distillation using ASPEN PLUS and HYSYS software
    Smejkal, Q
    Soós, M
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2002, 41 (05) : 413 - 418
  • [26] Dynamic simulation for the startup operation of reactive distillation columns
    Scenna, NJ
    Ruiz, CA
    Benz, SJ
    LATIN AMERICAN APPLIED RESEARCH, 2000, 30 (01) : 9 - 16
  • [27] Data on conceptual design and simulation of reactive distillation process
    Mekala, Mallaiah
    DATA IN BRIEF, 2019, 27
  • [28] Analysis and simulation of reactive distillation for gasoline alkylation desulfurization
    Guo, Benshuai
    Li, Yonghong
    CHEMICAL ENGINEERING SCIENCE, 2012, 72 : 115 - 125
  • [29] Simulation and optimization of synthesizing solketal by reactive distillation process
    Lai J.
    Gao X.
    Cong H.
    Li H.
    Li X.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2021, 40 (07): : 3584 - 3590
  • [30] Production of Biofuel Additives Using Catalytic Bioglycerol Etherification: Kinetic Modelling and Reactive Distillation Design
    Al-Rabiah, Abdulrahman A.
    Al Darwish, Rayan K.
    Alqahtani, Abdullah E.
    Chaves, Diego Morais
    da Silva, Marcio J.
    CATALYSTS, 2022, 12 (11)