Assessing biofouling on polyamide reverse osmosis (RO) membrane surfaces in a laboratory system

被引:47
作者
Khan, Mohiuddin Md Taimur [1 ]
Stewart, Philip S. [2 ]
Moll, David J. [3 ]
Mickols, William E. [4 ]
Burr, Mark D. [2 ]
Nelson, Sara E. [2 ]
Camper, Anne K. [2 ]
机构
[1] Univ New Mexico, Dept Civil Engn, Albuquerque, NM 87131 USA
[2] Montana State Univ, Ctr Biofilm Engn, Bozeman, MT 59717 USA
[3] Dow Chem Co USA, Larkin Lab, Midland, MI 48674 USA
[4] Dow Chem Co USA, FilmTec R&D, Edina, MN 55439 USA
关键词
Biofouling; Cryo-section; Live and dead cells; Reverse osmosis membrane; Hydrophobicity; X-ray photoelectron spectroscopy; EXTRACELLULAR POLYMERIC SUBSTANCES; SOLUBLE MICROBIAL PRODUCTS; ATOMIC-FORCE MICROSCOPY; NATURAL ORGANIC-MATTER; POLYSULFONE MEMBRANES; BLOCK-COPOLYMER; NANOFILTRATION; NF; SPECTROSCOPY; PERFORMANCE;
D O I
10.1016/j.memsci.2009.12.006
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Biofouling of reverse osmosis (RO) membranes is a major impediment in both wastewater reuse and desalination of sea/brackish waters. A benefit to the industry would be a simple screening approach to evaluate biofouling resistant RO membranes for their propensity to biofoulants. To observe the relationship between initial membrane productivity and control of biofilm formation governed by surface modification to the aromatic polyamide thin-film composite RO membranes, three different RO membranes developed by the FilmTec Corporation including FilmTec's commercial membrane BW30 (RO#1) and two experimental membranes (RO #2 and #3) were used. RO #2 and RO #3 were modified with a proprietary aliphatic group and with an extra proprietary aromatic group, respectively. Membrane swatches were fixed on coupons in rotating disk reactor systems without filtration and exposed to water with indigenous organisms supplemented with 1.5 mg/L organic carbon under continuous flow. After biofouling had developed, the membranes were sacrificed and subjected to several analyses. Staining and epifluorescence microscopy revealed more cells on RO #2 and #3 compared to RO #1. Based on image analysis of 5-mu m thick stained biofoulant cryo-sections, the accumulation of hydrated biofoulants on RO #1 and #3 were from 0.87 to 1.26 mu m/day, which was lower than that on RO#2 (2.19 mu m/day). Biofoulants increased the hydrophobicity of RO #2 to the greatest amount, up to 32 degrees, as determined by contact angle. In addition, a wide range of changes of the chemical elements of the RO surfaces was observed with X-ray photoelectron spectroscopy analysis. RO #2 with the highest initial membrane productivity showed the poorest biofouling resistance. A combination of these novel approaches showed good agreement and suggested that membrane productivity, heterogeneity of anti-biofouling agents on membrane surface, stability of surface chemical elements and the role of virgin RO surface hydrophobicity should be jointly considered during the development of anti-biofouling polyamide thin-film RO surfaces. Published by Elsevier B.V.
引用
收藏
页码:429 / 437
页数:9
相关论文
共 63 条
[1]   Biofuoling in RO membrane systems Part 1: Fundamentals and control [J].
Al-Ahmad, M ;
Aleem, FAA ;
Mutiri, A ;
Ubaisy, A .
DESALINATION, 2000, 132 (1-3) :173-179
[2]  
[Anonymous], [No title captured], Patent No. [US5614099A, 5614099]
[3]   NEW CHLORAMINE PROCESS TO CONTROL AFTERGROWTH AND BIOFOULING IN PERMASEPR B-10 RO SURFACE SEAWATER PLANTS [J].
APPLEGATE, LE ;
ERKENBRECHER, CW ;
WINTERS, H .
DESALINATION, 1989, 74 (1-3) :51-67
[4]   Effect of hydration of polyamide membranes on the surface electrokinetic parameters:: Surface characterization by X-ray photoelectronic spectroscopy and atomic force microscopy [J].
Ariza, MJ ;
Benavente, J ;
Rodríguez-Castellón, E ;
Palacio, L .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2002, 247 (01) :149-158
[6]   Comparative Study of biofouling of NF modified membrane at SHAMAN\ [J].
Belfer, S ;
Gilron, J ;
Daltrophe, N ;
Oren, Y .
DESALINATION, 2005, 184 (1-3) :13-21
[7]   Surface modification of commercial composite polyamide reverse osmosis membranes [J].
Belfer, S ;
Purinson, Y ;
Fainshtein, R ;
Radchenko, Y ;
Kedem, O .
JOURNAL OF MEMBRANE SCIENCE, 1998, 139 (02) :175-181
[8]  
Beyenal H, 1998, WATER SCI TECHNOL, V38, P171, DOI 10.2166/wst.1998.0804
[9]  
Characklis W. G., 1990, BIOFILMS
[10]   Acrylonitrile-based copolymer membranes containing reactive groups: Surface modification by the immobilization of biomacromolecules [J].
Che, AF ;
Nie, FQ ;
Huang, XD ;
Xu, ZK ;
Yao, K .
POLYMER, 2005, 46 (24) :11060-11065