Utilization of a shear induced diffusion model to predict permeate flux in the crossflow ultrafiltration of macromolecules Presented at EuroMed 2006 conference on Desalination Strategies in South Mediterranean Countries: Cooperation between Mediterranean Countries of Europe and the Southern Rim of the Mediterranean. Sponsored by the European Desalination Society and the University of Montpellier II, Montpellier, France, 21-25 May 2006

In this paper a shear-induced diffusion model is used to predict permeate flux decline with time in the ultrafiltration of macromolecules. The results estimated by the model were compared with the experimental results obtained in a pilot plant. Tubular ZrO sub(2)-TiO sub(2) ceramic membranes with a...

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Published inDesalination Vol. 206; no. 1-3; pp. 61 - 68
Main Authors Vela, MCinta Vincent, Blanco, Silvia Alvarez, Garcia, Jaime Lora, Gozalvez-Zafrilla, Jose M, Rodriguez, Enrique Bergantinos
Format Journal Article
LanguageEnglish
Published 01.01.2007
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Summary:In this paper a shear-induced diffusion model is used to predict permeate flux decline with time in the ultrafiltration of macromolecules. The results estimated by the model were compared with the experimental results obtained in a pilot plant. Tubular ZrO sub(2)-TiO sub(2) ceramic membranes with a molecular weight cut-off of 15 kDa (Orelis, France) were used. The fouling experiments were performed with 5 g/L PEG (35000 da molecular weight) aqueous solutions at different transmembrane pressures and crossflow velocities. Flux decline was predicted without the utilization of empirical parameters dependent on the operating conditions. Good predictions were obtained for all time scales in the case of low crossflow velocities. For high crossflow velocities, the results predicted by the model were good only for long time scales.
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ISSN:0011-9164
DOI:10.1016/j.desal.2006.03.561