Effects of crossflow velocity and transmembrane pressure on microfiltration of oil-in-water emulsions

被引:79
作者
Darvishzadeh, Tohid [1 ]
Priezjev, Nikolai V. [1 ]
机构
[1] Michigan State Univ, Dept Mech Engn, E Lansing, MI 48824 USA
关键词
Multiphase flows; Microfiltration; Oil-in-water emulsions; Volume of Fluid method; LATTICE BOLTZMANN SIMULATIONS; DROPLET FORMATION; WASTE-WATER; NUMERICAL-SIMULATION; IMMISCIBLE-FLUID; VOLUME; SURFACE; MEMBRANE; FILTRATION; DYNAMICS;
D O I
10.1016/j.memsci.2012.08.043
中图分类号
TQ [化学工业];
学科分类号
081705 [工业催化];
摘要
This study addresses the issue of oil removal from water using hydrophilic porous membranes. The effective separation of oil-in-water dispersions involves high flux of water through the membrane and, at the same time, high rejection rate of the oil phase. The effects of transmembrane pressure and crossflow velocity on rejection of oil droplets and thin oil films by pores of different cross-section are investigated numerically by solving the Navier-Stokes equation. We found that in the absence of crossflow, the critical transmembrane pressure, which is required for the oil droplet entry into a circular pore of a given surface hydrophilicity, agrees well with analytical predictions based on the Young-Laplace equation. With increasing crossflow velocity, the shape of the oil droplet is strongly deformed near the pore entrance and the critical pressure of permeation increases. We determined numerically the phase diagram for the droplet rejection, permeation, and breakup depending on the transmembrane pressure and shear rate. Finally, an analytical expression for the critical pressure in terms of geometric parameters of the pore cross-section is validated via numerical simulations for a continuous oil film on elliptical and rectangular pores. (c) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:468 / 476
页数:9
相关论文
共 77 条
[1]
Modeling shapes and dynamics of confined bubbles [J].
Ajaev, VS ;
Homsy, GM .
ANNUAL REVIEW OF FLUID MECHANICS, 2006, 38 :277-307
[2]
Albright N., 1977, LBL6137
[3]
[Anonymous], 2003, FLUENT 6 1 US GUID
[4]
Controlled microfluidic interfaces [J].
Atencia, J ;
Beebe, DJ .
NATURE, 2005, 437 (7059) :648-655
[5]
Emulsions: basic principles [J].
Bibette, J ;
Calderon, FL ;
Poulin, P .
REPORTS ON PROGRESS IN PHYSICS, 1999, 62 (06) :969-1033
[6]
Flow in porous media - pore-network models and multiphase flow [J].
Blunt, MJ .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2001, 6 (03) :197-207
[7]
STEPS OF MEMBRANE BLOCKING IN FLUX DECLINE DURING PROTEIN MICROFILTRATION [J].
BOWEN, WR ;
CALVO, JI ;
HERNANDEZ, A .
JOURNAL OF MEMBRANE SCIENCE, 1995, 101 (1-2) :153-165
[8]
A CONTINUUM METHOD FOR MODELING SURFACE-TENSION [J].
BRACKBILL, JU ;
KOTHE, DB ;
ZEMACH, C .
JOURNAL OF COMPUTATIONAL PHYSICS, 1992, 100 (02) :335-354
[9]
Computational investigation of unusual behavior in certain capillary tubes [J].
Brady, V ;
Concus, P ;
Finn, R .
MICROGRAVITY SCIENCE AND TECHNOLOGY, 2004, 15 (04) :31-38
[10]
Particulate fouling of surface microfilters with slotted and circular pore geometry [J].
Bromley, AJ ;
Holdich, RG ;
Cumming, IW .
JOURNAL OF MEMBRANE SCIENCE, 2002, 196 (01) :27-37