Saltwater transport through pristine and positively charged graphene membranes

被引:20
|
作者
Chinh Thanh Nguyen [1 ]
Beskok, Ali [1 ]
机构
[1] Southern Methodist Univ, Dept Mech Engn, Dallas, TX 75205 USA
来源
JOURNAL OF CHEMICAL PHYSICS | 2018年 / 149卷 / 02期
关键词
SINGLE-LAYER GRAPHENE; WATER DESALINATION; NANOPOROUS GRAPHENE; MOLECULAR-DYNAMICS; SEAWATER DESALINATION; NANOTUBE MEMBRANES; REVERSE-OSMOSIS; SIMULATION; STRENGTH; FIELDS;
D O I
10.1063/1.5032207
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Transport of saltwater through pristine and positively charged single-layer graphene nanoporous membranes is investigated using molecular dynamics simulations. Pressure-driven flows are induced by motion of specular reflecting boundaries at feed and permeate sides with constant speed. Unlike previous studies in the literature, this method induces a desired flow rate and calculates the resulting pressure difference in the reservoirs. Due to the hexagonal structure of graphene, the hydraulic diameters of nano-pores are used to correlate flow rate and pressure drop data. Simulations are performed for three different pore sizes and flow rates for the pristine and charged membrane cases. In order to create better statistical averages for salt rejection rates, ten different initial conditions of Na+ and Cl- distribution in the feed side are used for each simulation case. Using data from 180 distinct simulation cases and utilizing the Buckingham Pi theorem, we develop a functional relationship between the volumetric flow rate, pressure drop, pore diameter, and the dynamic viscosity of saltwater. A linear relationship between the volumetric flow rate and pressure drop is observed. For the same flow rate and pore size, charged membranes exhibit larger pressure drops. Graphene membranes with 9.90 angstrom pore diameter results in 100% salt rejection with 163.2 l/h cm(2) water flux, requiring a pressure drop of 35.02 MPa. Published by AIP Publishing.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] TRANSPORT THROUGH CHARGED POROUS MEMBRANES
    WESTERMANNCLARK, GB
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1983, 130 (03) : C112 - C112
  • [2] SILICA TRANSPORT THROUGH CHARGED MEMBRANES
    BOARI, G
    MERLI, C
    PASSINO, R
    TIRAVANT.G
    DESALINATION, 1974, 15 (01) : 3 - 10
  • [3] TRANSPORT THROUGH CHARGED ULTRAFILTRATION MEMBRANES
    KIMURA, S
    JITSUHARA, I
    DESALINATION, 1983, 46 (MAY) : 407 - 416
  • [4] Transport behavior of water and ions through positively charged nanopores
    Liu, Yichang
    Wei, Jie
    Cai, Meiqin
    Jiang, Lizhi
    Liu, Lin
    Li, Jinyu
    JOURNAL OF MOLECULAR LIQUIDS, 2022, 360
  • [5] Proteins transport through charged porous membranes
    Causserand, C
    Meireles, M
    Aimar, P
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 1996, 74 (A1): : 113 - 122
  • [6] Note on the Capillary Model of Transport through Charged Membranes
    Koter, S.
    Polish Journal of Chemistry, 71 (09):
  • [7] TRANSPORT OF ELECTRICALLY CHARGED PEPTIDES THROUGH CELLOPHANE MEMBRANES
    FERREIRA, AT
    LACAZVIEIRA, F
    PAIVA, ACM
    BRAZILIAN JOURNAL OF MEDICAL AND BIOLOGICAL RESEARCH, 1981, 14 (2-3) : 199 - 199
  • [9] A NUMERICAL APPROACH TO IONIC TRANSPORT THROUGH CHARGED MEMBRANES
    MAFE, S
    PELLICER, J
    AGUILELLA, VM
    JOURNAL OF COMPUTATIONAL PHYSICS, 1988, 75 (01) : 1 - 14
  • [10] TRANSPORT IN CHARGED MEMBRANES
    DORST, W
    CARAMAZZA, R
    STAVERMAN, AJ
    RECUEIL DES TRAVAUX CHIMIQUES DES PAYS-BAS-JOURNAL OF THE ROYAL NETHERLANDS CHEMICAL SOCIETY, 1964, 83 (11): : 1329 - &