Title of article
Contribution of convection, diffusion and migration to electrolyte transport through nanofiltration membranes
Author/Authors
Szymczyk، نويسنده , , A and Labbez، نويسنده , , C and Fievet، نويسنده , , P and Vidonne، نويسنده , , A and Foissy، نويسنده , , A and Pagetti، نويسنده , , J، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2003
Pages
18
From page
77
To page
94
Abstract
Transport mechanisms through nanofiltration membranes are investigated in terms of contribution of convection, diffusion and migration to electrolyte transport. A Donnan steric pore model, based on the application of the extended Nernst–Planck equation and the assumption of a Donnan equilibrium at both membrane–solution interfaces, is used. The study is focused on the transport of symmetrical electrolytes (with symmetric or asymmetric diffusion coefficients). The influence of effective membrane charge density, permeate volume flux, pore radius and effective membrane thickness to porosity ratio on the contribution of the different transport mechanisms is investigated. Convection appears to be the dominant mechanism involved in electrolyte transport at low membrane charge and/or high permeate volume flux and effective membrane thickness to porosity ratio. Transport is mainly governed by diffusion when the membrane is strongly charged, particularly at low permeate volume flux and effective membrane thickness to porosity ratio. Electromigration is likely to be the dominant mechanism involved in electrolyte transport only if the diffusion coefficient of coions is greater than that of counterions.
Keywords
Nanofiltration , transport mechanisms , Extended Nernst–Planck equation , Donnan partitioning
Journal title
Advances in Colloid and Interface Science
Serial Year
2003
Journal title
Advances in Colloid and Interface Science
Record number
1401946
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