TY - JOUR
T1 - An application of the Sano-Nakayama membrane transport model in hollow fiber reverse osmosis desalination systems
AU - Nakayama, Akira
AU - Sano, Yoshihiko
PY - 2013/2/5
Y1 - 2013/2/5
N2 - The Sano-Nakayama membrane transport model recently proposed for the analysis of a countercurrent dialyzer system has been extended to describe the concentration polarization phenomena associated with hollow fiber reverse osmosis desalination systems. A set of the governing equations, namely, the continuity, momentum and concentration equations, is derived for three distinctive phases, namely, brine, permeate and membrane phases, exploiting a volume averaging approach. These equations based on the Sano-Nakayama model are coupled and subsequently reduced to three distinctive first-order ordinary equations in terms of the average velocity, pressure and salt concentration of the brine phase. These equations along with an algebraic equation for the permeate flow rate per unit volume can readily be solved to estimate permeate salinity, permeate flow rate and pressure drop in a hollow fiber reverse osmosis desalination system. Available experimental data and numerical results based on finite difference methods are found to agree well with the present analytical estimates based on the Sano-Nakayama model.
AB - The Sano-Nakayama membrane transport model recently proposed for the analysis of a countercurrent dialyzer system has been extended to describe the concentration polarization phenomena associated with hollow fiber reverse osmosis desalination systems. A set of the governing equations, namely, the continuity, momentum and concentration equations, is derived for three distinctive phases, namely, brine, permeate and membrane phases, exploiting a volume averaging approach. These equations based on the Sano-Nakayama model are coupled and subsequently reduced to three distinctive first-order ordinary equations in terms of the average velocity, pressure and salt concentration of the brine phase. These equations along with an algebraic equation for the permeate flow rate per unit volume can readily be solved to estimate permeate salinity, permeate flow rate and pressure drop in a hollow fiber reverse osmosis desalination system. Available experimental data and numerical results based on finite difference methods are found to agree well with the present analytical estimates based on the Sano-Nakayama model.
KW - Hollow fiber module
KW - Mathematical model
KW - Porous media
KW - Reverse osmosis
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U2 - 10.1016/j.desal.2012.11.012
DO - 10.1016/j.desal.2012.11.012
M3 - Article
AN - SCOPUS:84871518825
SN - 0011-9164
VL - 311
SP - 95
EP - 102
JO - Desalination
JF - Desalination
ER -