Accès libre

Prediction of The Chromium (III) Separation From Acidic Salt Solutions On Nanofiltration Membranes Using Donnan And Steric Partitioning Pore (DSP) Model

À propos de cet article

Citez

Su B., WuT., Li Z., Cong X., Gao X. Gao, C.; Pilot study of seawater nanofiltration softening technology based on integrated membrane system. Desalination, Vol.368, 2015; p.193-20110.1016/j.desal.2015.03.012 Search in Google Scholar

Orecki A., Tomaszewska M., Karakulski K., Morawski A.W.; Surface water treatment by the nanofiltration method. Desalination, Vol.162, 2004; p.47-5410.1016/S0011-9164(04)00026-8 Search in Google Scholar

Liu C., Shi L., Wang R.; Crosslinked layer-by -layer polyelectrolyte nanofiltration hollow fiber membrane for low-pressure water softening with the presence of SO42- in feed water. Journal of Membrane Science, Vol.486, 2015;p.169-17610.1016/j.memsci.2015.03.050 Search in Google Scholar

Dudziak M., Bodzek M.; Removal of xenoestrogens from water during reverse osmosis and nanofiltration – effect of selected phenomena on separation of organic micropollutants. Architecture Civil Engineering Environment, No.3, 2008; p.95-102 Search in Google Scholar

Gomes S., Cavaco S.A., Quina M.J., Gando-Ferreira L.M.; Nanofiltration process for separating Cr(III) from acid solutions: Experimental and modelling analysis. Desalination, Vol.254, 2010; p.80-8910.1016/j.desal.2009.12.010 Search in Google Scholar

Religa P., Kowalik-Klimczak A., Gierycz P.; Study on the behavior of nanofiltration membranes using for chromium (III) recovery from salt mixture solution. Desalination, Vol.315, 2013; p.115-12310.1016/j.desal.2012.10.036 Search in Google Scholar

Wang Z., Liu G., Fan Z., Yang X., Wang J., Wang S.; Experimental study on treatment of electroplating wastewater by nanofiltration. Journal of Membrane Science, Vol.305, 2007; p.185-19510.1016/j.memsci.2007.08.011 Search in Google Scholar

Ortega L.M., Lebrun R., Noёl I.M., Hausler R.; Application of nanofiltration in the recovery of chromium(III) from tannery effluents. Separation and Purification Technology, Vol.44, 2005; p.45-5210.1016/j.seppur.2004.12.002 Search in Google Scholar

Kowalik-Klimczak A., Zalewski M., Gierycz P.; Experimental and modelling analysis of the separation of ionic salts solution in nanofiltration process. Challenges of Modern Technology, Vol.6, No.2, 2015; p.24-29 Search in Google Scholar

Tanninen J., Mänttäri M., Nyström M.; Effect of salt mixture concentration on fractionation with NF membranes. Journal of Membrane Science, Vol.283, 2006; p.57-6410.1016/j.memsci.2006.06.012 Search in Google Scholar

Sharrna R.R., Chellam S.; Solute rejection by porous thin film composite nanofiltration membranes at high feed water recoveries. Journal of Colloid and Interface Science, Vol.328, 2008; p.353-36610.1016/j.jcis.2008.09.036 Search in Google Scholar

PreuB V., Riedel C., Koch T., Thurmer K., Domańska M.; Nanofiltration as an effective tool of reducing sulphate concentration in mine water. Architecture Civil Engineering Environment, No.3, 2012; p.127-132 Search in Google Scholar

Mukherjee P., Mukherjee P.; Some observations about electrolyte permeation mechanism through reverse osmosis and nanofiltration membranes. Journal of Membrane Science, Vol.278, 2006; p.301-30710.1016/j.memsci.2005.11.012 Search in Google Scholar

Deon S., Escoda A., Fievet P.; A transport model considering charge adsorption inside pores to describe salts rejection by nanofiltration membranes. Chemical Engineering Science, Vol.66, 2011; p.2823-283210.1016/j.ces.2011.03.043 Search in Google Scholar

Deon S., Dutournie P., Limousy L., Bourseau P.; Transport of salt mixture through nanofiltration membranes: Numerical identification of electric and dielectric contributions. Separation and Purification Technology, Vol.69, 2009; p.225-23310.1016/j.seppur.2009.07.022 Search in Google Scholar

Chaudhari L.B., Murthy Z.V.P.; Separation of Cd and Ni from multicomponent aqueous solutions by nanofiltration and characterization of membrane using IT model. Journal of Hazardous Materials, Vol.180, 2010; p.309-31510.1016/j.jhazmat.2010.04.032 Search in Google Scholar

Kelewou H., Lhassani A., Merzouki M., Drogui P., Sellamuthu B.; Salts retention by nanofiltration membranes: Physicochemical and hydrodynamic approaches and modeling. Desalination, Vol.277, 2011; p.106-11210.1016/j.desal.2011.04.010 Search in Google Scholar

Zhua H., Szymczyk A., Balannec B.; On the salt rejection properties of nanofiltration polyamide membranes formed by interfacial polymerization. Journal of Membrane Science, Vol.379, 2011; p.215-22310.1016/j.memsci.2011.05.062 Search in Google Scholar

Mohammad A.W., Takriff M.S.; Predicting flux and rejection of multicomponents salts mixture in nanofiltration membranes. Desalination, Vol.157, 2003; p.105-11110.1016/S0011-9164(03)00389-8 Search in Google Scholar

Hussain A. A., Abashar M. E. E., Al-Mutaz I. S.; Prediction of charge density for Desal-HL nanofiltration membrane from simulation and experiment using different ion radii. Separation Science and Technology, Vol.42, 2007; p.43-5710.1080/01496390600998003 Search in Google Scholar

Jarzyńska M., Pietruszka M.; The application of the Kedem-Katchalsky equations to membrane transport of ethylalcohol and glucose. Desalination, Vol.280, 2011; p.14-1910.1016/j.desal.2011.07.034 Search in Google Scholar

Mandale S., Jones M.; Membrane transport theory and the interactions between electrolytes and nonelectrolytes. Desalination, Vol.252, 2010; p.17-2610.1016/j.desal.2009.11.007 Search in Google Scholar

Koter S.; Determination of the parameters of the Spiegler-Kedem-Katchalsky model for nanofiltration of single electrolyte solutions. Desalination, Vol.198, 2006; p.335-34510.1016/j.desal.2006.02.009 Search in Google Scholar

Hidalgo A.M., Leon G., Gomez M., Murcia M.D., Gomez E. Gomez J.L.; Application of the SpieglerKedem-Kachalsky model to the removal of 4-chlorophenol by different nanofiltration membranes. Desalination, Vol.315, 2013; p.70-7510.1016/j.desal.2012.10.008 Search in Google Scholar

Nędzarek A., Drost A., Harasimiuk F.B., Tórz A.; The influence of pH and BSA on the retention of selected heavy metals in the nanofiltration process using ceramic membrane. Desalination, Vol.369, 2015; p.62-6710.1016/j.desal.2015.04.019 Search in Google Scholar

eISSN:
1899-0142
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Architecture and Design, Architecture, Architects, Buildings