Interval Based MINLP Superstructure Synthesis of Multi-Period Mass Exchanger Networks

被引:0
|
作者
Isafiade, Adeniyi J. [1 ]
Fraser, Duncan M. [1 ]
机构
[1] Univ Cape Town, Rondebosch, South Africa
来源
关键词
mass exchanger networks synthesis; MINLP; superstructure; multi-period;
D O I
10.2202/1934-2659.1405
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A new method for the synthesis of mass exchanger networks for multi-period operations is presented in this paper. The new technique which is called multi-period interval based MINLP superstructure (MIBMS) for mass exchange network synthesis (MENS) is adapted from the interval based MINLP superstructure for MENs presented by Isafiade and Fraser (2008). Process parameters such as supply and target compositions and flowrates of streams can vary over a specified range due to environmental or economic reasons. In this paper, the IBMS model for MENS is modified to handle variations in the aforementioned set of parameters by including the index 'p' in the IBMS model and using the maximum area approach in the objective function as presented by Verheyen and Zhang (2006) for multi-period heat exchanger networks synthesis (HENS). The index 'p' represents each period of operation which in this paper can be unequal. Themaximum area approach ensures that each mass exchanger connecting the same pair of streams in more than one period is able to transfer mass in such streams for all the periods. It should be known that this technique applies to multi-period problems where the process parameters for each period of operation as well as the duration are specified. The method does not handle scenarios where the process parameters are uncertain. The new technique is applied to three examples.
引用
收藏
页数:20
相关论文
共 50 条
  • [11] Simultaneous synthesis of flexible heat exchanger networks for unequal multi-period operations
    Isafiade, Adeniyi J.
    Short, Michael
    [J]. PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2016, 103 : 377 - 390
  • [12] Supply and target based superstructure synthesis of heat and mass exchanger networks
    Azeez, O. S.
    Isafiade, A. J.
    Fraser, D. M.
    [J]. CHEMICAL ENGINEERING RESEARCH & DESIGN, 2012, 90 (02): : 266 - 287
  • [13] Extended Interval-Based Mixed Integer Nonlinear Programming Superstructure Synthesis of Heat and Mass Exchanger Networks
    Isafiade, Adeniyi J.
    Fraser, Duncan M.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (01) : 166 - 179
  • [14] Multi-period Sequential Synthesis of Heat Exchanger Networks and Utility Systems including storages
    Mian, Alberto
    Martelli, Emanuele
    Marechal, Francois
    [J]. 26TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING (ESCAPE), PT A, 2016, 38A : 967 - 972
  • [15] Synthesis of Flexible Multi-Period Heat Exchanger Networks for a Changing Utility Cost Scenario
    Isafiade, Adeniyi J.
    [J]. 2017 6TH INTERNATIONAL SYMPOSIUM ON ADVANCED CONTROL OF INDUSTRIAL PROCESSES (ADCONIP), 2017, : 499 - 504
  • [16] Two-step hybrid approach for the synthesis of multi-period heat exchanger networks with detailed exchanger design
    Short, Michael
    Isafiade, Adeniyi J.
    Fraser, Duncan M.
    Kravanja, Zdravko
    [J]. APPLIED THERMAL ENGINEERING, 2016, 105 : 807 - 821
  • [17] Design optimization of multi-period heat exchanger networks based on continuous energy saving
    [J]. Sun, Lin (sunlin@cup.edu.cn), 1600, Materials China (67):
  • [18] Retrofit of mass-exchange networks with superstructure-based MINLP formulation
    Chen, CL
    Hung, PS
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2005, 44 (18) : 7189 - 7199
  • [19] Optimal synthesis of heat exchanger networks for multi-period operations involving single and multiple utilities
    Isafiade, Adeniyi
    Bogataj, Milos
    Fraser, Duncan
    Kravanja, Zdravko
    [J]. CHEMICAL ENGINEERING SCIENCE, 2015, 127 : 175 - 188
  • [20] Multi-period Synthesis of a Biorefinery's Supply Networks
    Cucek, Lidija
    Martin, Mariano
    Grossmann, Ignacio E.
    Kravanja, Zdravko
    [J]. 23 EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2013, 32 : 73 - 78