From cooperative to uncorrelated clogging in cross-flow microfluidic membranes

被引:37
作者
van Zwieten, R. [1 ,2 ]
van de laar, T. [1 ,2 ]
Sprakel, J. [1 ]
Schroen, K. [2 ]
机构
[1] Wageningen Univ, Phys Chem & Soft Matter, Wageningen, Netherlands
[2] Wageningen Univ, Lab Food Proc Engn, Wageningen, Netherlands
来源
SCIENTIFIC REPORTS | 2018年 / 8卷
关键词
CRITICAL FLUX; MICROFILTRATION; DEPOSITION; PORE; ULTRAFILTRATION; MICROCHANNELS; PARTICLES; DECLINE; MODEL;
D O I
10.1038/s41598-018-24088-6
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The operational lifetime of filtration membranes is reduced by the clogging of pores and subsequent build-up of a fouling or cake layer. Designing membrane operations in which clogging is delayed or even mitigated completely, requires in-depth insight into its origins. Due to the complexity of the clogging process, simplified model membranes fabricated in microfluidic chips have emerged as a powerful tool to study how clogs emerge and deteriorate membrane efficiency. However, to date, these have focussed solely on dead-end filtration, while cross-flow filtration is of greater practical relevance at the industrial scale. As such, the microscopic mechanisms of clogging in crossflow geometries have remained relatively ill-explored. Here we use a microfluidic filtration model to probe the kinetics and mechanisms of clogging in crossflow. Our study exposes two findings: (i) the primary clogging rate of individual pores depends only on the trans-membrane flux, whose strong effects are explained quantitatively by extending existing models with a term for flux-controlled flow-enhanced barrier crossing, (ii) cross-membrane flow affects the pore-pore communication, leading to a transition from correlated to uncorrelated clogging of the membrane, which we explain qualitatively by deriving a dimensionless number which captures two essential regimes of clogging at the microscale.
引用
收藏
页数:10
相关论文
共 41 条
[21]   Microgel Translocation through Pores under Confinement [J].
Hendrickson, Grant R. ;
Lyon, L. Andrew .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2010, 49 (12) :2193-2197
[22]   Towards a description of particulate fouling: From single particle deposition to clogging [J].
Henry, Christophe ;
Minier, Jean-Pierre ;
Lefevre, Gregory .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2012, 185 :34-76
[23]   Brownian motion in a field of force and the diffusion model of chemical reactions [J].
Kramers, HA .
PHYSICA, 1940, 7 :284-304
[24]   Fouling in membrane bioreactors used in wastewater treatment [J].
Le-Clech, Pierre ;
Chen, Vicki ;
Fane, Tony A. G. .
JOURNAL OF MEMBRANE SCIENCE, 2006, 284 (1-2) :17-53
[25]   Cleaning strategies for flux recovery of an ultrafiltration membrane fouled by natural organic matter [J].
Lee, H ;
Amy, G ;
Cho, JW ;
Yoon, YM ;
Moon, SH ;
Kim, IS .
WATER RESEARCH, 2001, 35 (14) :3301-3308
[26]  
Lekkerkerker H. N., 2011, COLLOIDS DEPLETION I, V833
[27]   Membrane fouling and cleaning in microfiltration of activated sludge wastewater [J].
Lim, AL ;
Bai, R .
JOURNAL OF MEMBRANE SCIENCE, 2003, 216 (1-2) :279-290
[28]   Microfluidic colloid filtration [J].
Linkhorst, John ;
Beckmann, Torsten ;
Go, Dennis ;
Kuehne, Alexander J. C. ;
Wessling, Matthias .
SCIENTIFIC REPORTS, 2016, 6
[29]  
Mulder J., 2012, BASIC PRINCIPLES MEM
[30]   Deposition of particles from polydisperse suspensions in microfluidic systems [J].
Mustin, Benjamin ;
Stoeber, Boris .
MICROFLUIDICS AND NANOFLUIDICS, 2010, 9 (4-5) :905-913