Transport of water and ions in partially water-saturated porous media. Part 2. Filtration effects

被引:23
作者
Revil, A. [1 ]
机构
[1] Univ Savoie Mt Blanc, CNRS, ISTerre, UMR 5275, F-73376 Le Bourget Du Lac, France
关键词
Diffusion coefficient; Osmotic coefficient; Filtration; Clays; Cation exchange capacity; CALCIUM-MAGNESIUM EXCHANGE; GEOSYNTHETIC CLAY LINER; WYOMING BENTONITE; SODIUM-CALCIUM; OSMOTIC EFFICIENCY; MEMBRANE BEHAVIOR; MONTMORILLONITE; MODEL; PERMEABILITY; SELECTIVITY;
D O I
10.1016/j.advwatres.2016.07.016
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
A new set of constitutive equations describing the transport of the ions and water through charged porous media and considering the effect of ion filtration is applied to the problem of reverse osmosis and diffusion of a salt. Starting with the constitutive equations derived in Paper 1, I first determine specific formula for the osmotic coefficient and effective diffusion coefficient of a binary symmetric 1:1 salt (such as KCI or NaCI) as a function of a dimensionless number 8 corresponding to the ratio between the cation exchange capacity (CEC) and the salinity. The modeling is first carried with the Donnan model used to describe the concentrations of the charge carriers in the pore water phase. Then a new model is developed in the thin double layer approximation to determine these concentrations. These models provide explicit relationships between the concentration of the ionic species in the pore space and those in a neutral reservoir in local equilibrium with the pore space and the CEC. The case of reverse osmosis and diffusion coefficient are analyzed in details for the case of saturated and partially saturated porous materials. Comparisons are done with experimental data from the literature obtained on bentonite. The model predicts correctly the influence of salinity (including membrane behavior at high salinities), porosity, cation type (K+ versus Na+), and water saturation on the osmotic coefficient. It also correctly predicts the dependence of the diffusion coefficient of the salt with the salinity. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:139 / 152
页数:14
相关论文
共 63 条
[1]   A spectrophotometric measurement of soil cation exchange capacity based on cobaltihexamine chloride absorbance [J].
Aran, Delphine ;
Maul, Armand ;
Masfaraud, Jean-Francois .
COMPTES RENDUS GEOSCIENCE, 2008, 340 (12) :865-871
[2]   The electrical resistivity log as an aid in determining some reservoir characteristics [J].
Archie, GE .
TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1942, 146 :54-61
[3]  
Atkins P.W., 2014, Atkins' Physical Chemistry, V10th
[4]   Proton adsorption and electrokinetics of an Argentinean montmorillonite [J].
Avena, MJ ;
De Pauli, CP .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1998, 202 (01) :195-204
[5]   Ion equilibrium between montmorillonite interlayer space and an external solution-Consequences for diffusional transport [J].
Birgersson, Martin ;
Karnland, Ola .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2009, 73 (07) :1908-1923
[6]   Improving membrane performance via bentonite polymer nanocomposite [J].
Bohnhoff, Gretchen L. ;
Shackelford, Charles D. .
APPLIED CLAY SCIENCE, 2013, 86 :83-98
[7]  
Bonaparte R, 2008, P 6 INT C CAS HIST G
[8]   A Contribution to the Theory of Electrocapillarity [J].
Chapman, David Leonard .
PHILOSOPHICAL MAGAZINE, 1913, 25 (148) :475-481
[9]   Unsaturated hydro-mechanical-chemo coupled constitutive model with consideration of osmotic flow [J].
Chen, XiaoHui ;
Hicks, Michael A. .
COMPUTERS AND GEOTECHNICS, 2013, 54 :94-103
[10]   Coupled chemical-hydraulic-mechanical behaviour of bentonites [J].
Dominijanni, A. ;
Manassero, M. ;
Puma, S. .
GEOTECHNIQUE, 2013, 63 (03) :191-205