Neural networks for predicting air gap membrane distillation performance

被引:3
|
作者
Yang, Chaohuan [1 ]
机构
[1] Hulunbuir Univ, Sch Chem & Chem Engn, Hulunbuir, Peoples R China
关键词
Air gap membrane distillation; Back-Propagation neural network; Radial basis function neural network; Multiple linear regression; Mean impact value; Optimization; HOLLOW-FIBER; DESALINATION; WATER; OPTIMIZATION; SIMULATION; MODEL; MACHINE; VMD;
D O I
10.1016/j.jics.2023.100921
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The hollow fiber air gap membrane distillation (AGMD) has recently attracted tremendous attention for desa-lination and wastewater treatment due to its high packing density, low conductive heat loss, and latent heat recovery capability. Utilizing fast and accurate modeling tools to predict MD performance can result in the further development of desalination technologies. However, simple and time-saving prediction models to assess the AGMD performance were not abundant. Herein, AGMD performance, including permeate flux (J) and gained output ratio (GOR) was predicted through multiple linear regression (MLR) model, back propagation neural network (BP ANN) and radial basis function neural network (RBF ANN) under different hot temperatures (Th), coolant temperatures (Tc), feed flow rates (F), and feed concentration (c). A total of 30 sets of data were used to train the proposed models, the other 10 external validation datasets not used for training the models were applied to validate the prediction accuracy. The results depicted that RBF ANN (SPREAD = 30, N = 30) showed greatest prediction performance (R-2 = 0.99-1) compared with BP ANN and MLR models (R-2 = 0.98-0.99; R-2 = 0.89-0.97). The computing time consumption of RBF ANN was higher than BP ANN. According to the Mean impact value (MIV) analysis, Th had the strongest effect on J and GOR. Increasing Th and decreasing c both had positive impacts on J and GOR, but increasing Tc or F resulted in a trade-off influence. A genetic algorithm (GA) was employed to optimize J and GOR simultaneously, the optimum J and GOR could reach 6.00 kg/m(2).h and 7.70 respectively. In this study, the three prediction models proved their abilities to predict AGMD performance and further provide guidance in the actual membrane distillation water treatment process.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Performance Analysis of Air Gap Membrane Distillation Process Enhanced with Air Injection for Water Desalination
    Ibarra-Bahena, Jonathan
    Dehesa-Carrasco, Ulises
    Villalobos-Hernández, Rogelio Servando
    Garrido-Hoyos, Sofía
    Rivera, Wilfrido
    Membranes, 2024, 14 (11)
  • [22] Water recycling and desalination by air gap membrane distillation
    Meindersma, GW
    Guijt, CM
    de Haan, AB
    ENVIRONMENTAL PROGRESS, 2005, 24 (04): : 434 - 441
  • [23] Ultrasonic stimulation on enhancement of air gap membrane distillation
    Zhu, C
    Liu, GL
    Cheung, CS
    Leung, CW
    Zhu, ZC
    JOURNAL OF MEMBRANE SCIENCE, 1999, 161 (1-2) : 85 - 93
  • [24] Assessment of air gap membrane distillation for milk concentration
    Moejes, S. N.
    van Wonderen, G. J.
    Bitter, J. H.
    van Boxtel, A. J. B.
    JOURNAL OF MEMBRANE SCIENCE, 2020, 594
  • [25] Superhydrophobic condenser surfaces for air gap membrane distillation
    Warsinger, David E. M.
    Swaminathan, Jaichander
    Maswadeh, Laith A.
    Lienhard, John H.
    JOURNAL OF MEMBRANE SCIENCE, 2015, 492 : 578 - 587
  • [26] Theoretical and experimental studies on air gap membrane distillation
    Liu, GL
    Zhu, C
    Cheung, CS
    Leung, CW
    HEAT AND MASS TRANSFER, 1998, 34 (04) : 329 - 335
  • [27] A comprehensive review of air gap membrane distillation process
    Al-Zoubi, Habis
    Al-Amri, Fahad
    Khalifa, Atia E.
    Al-Zoubi, Ahmad
    Abid, Muhammad
    Younis, Ebtehal
    Mallick, Tapas Kumar
    DESALINATION AND WATER TREATMENT, 2018, 110 : 27 - 64
  • [28] Theoretical and experimental studies on air gap membrane distillation
    G. L. Liu
    C. Zhu
    C. S. Cheung
    C. W. Leung
    Heat and Mass Transfer, 1998, 34 : 329 - 335
  • [29] Air gap membrane distillation of sucrose aqueous solutions
    Izquierdo-Gil, MA
    García-Payo, MC
    Fernández-Pineda, C
    JOURNAL OF MEMBRANE SCIENCE, 1999, 155 (02) : 291 - 307
  • [30] Desalination and water recycling by air gap membrane distillation
    Meindersma, GW
    Guijt, CM
    de Haan, AB
    DESALINATION, 2006, 187 (1-3) : 291 - 301