College of Geography and Environmental Sciences, Zhejiang Normal University, Jinhua 321004, PR China.
Department of Chemical Engineering, Lakehead University, 955 Oliver Road, Thunder Bay, Ontario P7B 5E1, Canada.
Bioresour Technol. 2015 Jan;175:59-67. doi: 10.1016/j.biortech.2014.10.058. Epub 2014 Oct 18.
The interfacial interactions between sludge foulants and four different types of membranes were assessed based on a new combined calculation method. Effects of membrane surface hydrophilicity/hydrophobicity on the interfacial interactions were investigated. It was found that, membrane surface hydrophilicity/hydrophobicity was not directly relevant to the interfacial interactions with sludge particles. Increasing membrane surface zeta potential could significantly increase the strength of the electrostatic double layer (EL) interaction and the energy barrier. For membrane with a surface roughness of 300nm, the total interaction was continuously repulsive in the separation distance coverage of 0-4nm in this study. The results suggest that, under conditions in this study, designing membranes with a high zeta potential and certain roughness can significantly mitigate membrane fouling, whereas, the strategy of improving membrane surface hydrophilicity cannot alleviate sludge adhesion in the membrane bioreactor.
基于一种新的组合计算方法,评估了污泥污染物与四种不同类型膜之间的界面相互作用。研究了膜表面亲水性/疏水性对界面相互作用的影响。结果表明,膜表面亲水性/疏水性与与污泥颗粒的界面相互作用没有直接关系。增加膜表面zeta 电位可以显著增加静电双层(EL)相互作用和能垒的强度。对于表面粗糙度为 300nm 的膜,在本研究的分离距离覆盖范围 0-4nm 内,总相互作用一直是排斥的。结果表明,在本研究条件下,设计具有高 zeta 电位和一定粗糙度的膜可以显著减轻膜污染,而提高膜表面亲水性的策略不能缓解膜生物反应器中污泥的附着。