Optimization Design for Mechanical Vapor Recompression Evaporation Crystallization System

被引:0
|
作者
Zhang, Ziyao [1 ]
Jiang, Hua [1 ]
Gong, Wuqi [2 ]
机构
[1] School of Energy, Xi'an University of Science and Technology, Xi'an,710054, China
[2] School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an,710049, China
关键词
Fuzzy set theory - Heat transfer - Electric power utilization - Evolutionary algorithms - Energy conservation - Evaporation - Exergy - Pareto principle;
D O I
暂无
中图分类号
学科分类号
摘要
To optimize the performance of the parallel-connected double-effect mechanical vapor recompression (MVR) evaporation crystallization system while meeting production requirements, a method for optimization design of the system based on the strength Pareto evolution algorithm (SPEA2) was proposed to further exploit the energy saving potential of the system. A mathematical model of the optimization problem was established by analyzing the effects of the operating variables on the system performance, and the constraints of mass and energy balances of the model were also imposed. The mathematical model was calculated by SPEA2 multi-objective evolutionary algorithm, where the minimization of total power consumption and heat transfer area was taken as the optimization object, and the optimal combination of evaporation temperature and compression temperature rise was obtained following the fuzzy set theory. The results show that the total power consumption of the system is lowered by 22.1 kW and the heat transfer area is reduced by 31.2 m2. The coefficient of performance (COP) and exergy efficiency of the system are heightened by 7.94% and 5.91% respectively, and the exergy loss of the system is reduced by 38.4 kW. It is concluded that application of the optimization design method based on SPEA2 can improve the energy utilization and thermodynamic perfection degree of the parallel-connected double-effect MVR evaporation crystallization system. © 2020, Editorial Office of Journal of Xi'an Jiaotong University. All right reserved.
引用
收藏
页码:101 / 109
相关论文
共 50 条
  • [21] MECHANICAL VAPOR RECOMPRESSION FOR EVAPORATORS
    COLE, JW
    CHEMICAL ENGINEER-LONDON, 1975, (294): : 76 - &
  • [22] Distillation Optimization By Vapor Recompression
    Choudhari, Atul
    Gune, Pradnya
    Divey, Jayant
    CHEMICAL ENGINEERING, 2012, 119 (03) : 43 - 47
  • [23] Heat Transfer Study from a Salty Droplet Film on a Horizontal Tube in Mechanical Vapor Recompression Crystallization System
    Cao, Yanmei
    Wang, Yu
    Gao, Yang
    Kosonen, Risto
    ENERGIES, 2022, 15 (14)
  • [24] Electroplating Wastewater Concentration System Utilizing Mechanical Vapor Recompression
    Yang, Junling
    Zhang, Chong
    Zhang, Zhentao
    Yang, Luwei
    JOURNAL OF ENVIRONMENTAL ENGINEERING, 2018, 144 (07)
  • [25] PRE-EVAPORATION OF KRAFT BLACK LIQUOR BY VAPOR RECOMPRESSION EVAPORATION
    HOUGH, GW
    TAPPI, 1978, 61 (07): : 23 - 25
  • [26] Experimental investigation of a novel batch evaporation system coupled mechanical vapor recompression technology and steam heat storage technology
    Chen, Junjie
    Han, Dong
    Hang, Zhifang
    Si, Zetian
    INNOVATIVE FOOD SCIENCE & EMERGING TECHNOLOGIES, 2021, 68
  • [27] RECOVERING ENERGY BY MECHANICAL VAPOR RECOMPRESSION
    BECKER, FE
    ZAKAK, AI
    CHEMICAL ENGINEERING PROGRESS, 1985, 81 (07) : 45 - 49
  • [28] Combine membranes with mechanical vapor recompression
    Labrecque, R
    Bédard, N
    CHEMICAL ENGINEERING, 2004, 111 (02) : 51 - 54
  • [29] RECOVER HEAT BY MECHANICAL VAPOR RECOMPRESSION
    BECKER, FE
    ZAKAK, AI
    HYDROCARBON PROCESSING, 1985, 64 (05): : 77 - 80
  • [30] Thermo-economic performance enhancement in batch evaporation process via mechanical vapor recompression system coupled with steam accumulator
    Li, Jiaqiang
    Si, Zetian
    Han, Dong
    Hang, Zhifang
    Desalination, 2022, 532