Modeling and optimization of chlorophenol rejection for spiral wound reverse osmosis membrane modules

被引:3
|
作者
Sivanantham, V [1 ]
Narayana, P. L. [2 ]
Hyeong, Kwon Jun [2 ]
Pareddy, Preetham [3 ]
Sangeetha, V [1 ]
Kyoung-Seok, Moon [2 ]
In, Kim Hong [2 ]
Sung, Hyo Kyung [2 ]
Reddy, N. S. [2 ]
机构
[1] Periyar Univ, Constituent Coll Arts & Sci, Dept Comp Sci, Pappireddipatti Campus, Salem 636011, Tamil Nadu, India
[2] Gyeongsang Natl Univ, Sch Mat Sci & Engn, Engn Res Inst, Jinju, South Korea
[3] Fractal Analyt, Western Express Highway, Goregaon 400063, East Mumbai, India
基金
新加坡国家研究基金会;
关键词
Reverse osmosis; Artificial neural networks; Chlorophenol removal; Wastewater;
D O I
10.1016/j.chemosphere.2020.129345
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study shows an artificial neural network (ANN) model of chlorophenol rejection from aqueous solutions and predicting the performance of spiral wound reverse osmosis (SWRO) modules. This type of rejection shows complex non-linear dependencies on feed pressure, feed temperature, concentration, and feed flow rate. It provides a demanding test of the application of ANN model analysis to SWRO modules. The predictions are compared with experimental data obtained with SWRO modules. The overall agreement between the experimental and ANN model predicted was almost 99.9% accuracy for the chlorophenol rejection. The ANN model approach has the advantage of understanding the complex chlorophenol rejection phenomena as a function of SWRO process parameters. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Response surface methodology-based modeling and optimization of chromium removal using spiral-wound reverse-osmosis membrane setup
    Karunakaran, A.
    Chaturvedi, A.
    Ali, J.
    Singh, R.
    Agarwal, S.
    Garg, M. C.
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2022, 19 (07) : 5999 - 6010
  • [32] Response surface methodology-based modeling and optimization of chromium removal using spiral-wound reverse-osmosis membrane setup
    A. Karunakaran
    A. Chaturvedi
    J. Ali
    R. Singh
    S. Agarwal
    M. C. Garg
    International Journal of Environmental Science and Technology, 2022, 19 : 5999 - 6010
  • [33] Pilot-Scale Evaluation of Spiral-Wound Modules in Osmotically Assisted Reverse Osmosis
    Turetta, Mattia
    Bertucco, Alberto
    Briani, Filippo
    Barbera, Elena
    CHEMICAL ENGINEERING & TECHNOLOGY, 2024, 47 (10)
  • [34] ANALYTICAL DESIGN EQUATIONS FOR MULTICOMPONENT REVERSE-OSMOSIS PROCESSES BY SPIRAL-WOUND MODULES
    PRASAD, R
    SIRKAR, KK
    INDUSTRIAL & ENGINEERING CHEMISTRY PROCESS DESIGN AND DEVELOPMENT, 1985, 24 (02): : 350 - 358
  • [35] ANALYTICAL DESIGN EQUATIONS FOR MULTICOMPONENT REVERSE OSMOSIS PROCESSES BY SPIRAL-WOUND MODULES.
    Prasad, Ravi
    Sirkar, Kamalesh K.
    Industrial & Engineering Chemistry, Process Design and Development, 1985, 24 (02): : 350 - 358
  • [36] NEW THIN-FILM COMPOSITE REVERSE-OSMOSIS MEMBRANES AND SPIRAL WOUND MODULES
    KAMIYAMA, Y
    YOSHIOKA, N
    MATSUI, K
    NAKAGOME, K
    DESALINATION, 1984, 51 (01) : 79 - 92
  • [37] Open-source CFD model for optimization of forward osmosis and reverse osmosis membrane modules
    Gruber, Mathias F.
    Aslak, Ulf
    Helix-Nielsen, Claus
    SEPARATION AND PURIFICATION TECHNOLOGY, 2016, 158 : 183 - 192
  • [38] Calculation of the Cross Section Active Area for a Polymeric Spiral Wound Reverse Osmosis Membrane
    Dascalu, Mihaela-Elena
    Nedeff, Florin
    Ciubotariu, Vlad
    Antonio Lopez-Ramirez, Juan
    Sandu, Ion
    MATERIALE PLASTICE, 2019, 56 (02) : 426 - 428
  • [39] Towards optimization of spacer geometrical characteristics for spiral wound membrane modules
    Koutsou, C. P.
    Karabelas, A. J.
    DESALINATION AND WATER TREATMENT, 2010, 18 (1-3) : 139 - 150
  • [40] Spiral wound reverse osmosis modules decomposition into elementary units by analyzing stimulus response experiments: Characterization of the solute transfer across the membrane
    Roth, E
    Fabre, B
    Accary, A
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2003, 81 (05): : 998 - 1010