Excessive Ozonation Stress Triggers Severe Membrane Biofilm Accumulation and Fouling

生物膜 化学 臭氧 超滤(肾) 环境化学 溶解有机碳 有机质 膜污染 过滤(数学) 反渗透 生物污染 水处理 结垢 细菌 环境工程 色谱法 生物 生物化学 环境科学 统计 有机化学 遗传学 数学
作者
Li Zhang,Nigel Graham,Guibai Li,Yong‐Guan Zhu,Wenzheng Yu
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:58 (13): 5899-5910 被引量:10
标识
DOI:10.1021/acs.est.3c10429
摘要

The established benefits of ozone on microbial pathogen inactivation, natural organic matter degradation, and inorganic/organic contaminant oxidation have favored its application in drinking water treatment. However, viable bacteria are still present after the ozonation of raw water, bringing a potential risk to membrane filtration systems in terms of biofilm accumulation and fouling. In this study, we shed light on the role of the specific ozone dose (0.5 mg-O3/mg-C) in biofilm accumulation during long-term membrane ultrafiltration. Results demonstrated that ozonation transformed the molecular structure of influent dissolved organic matter (DOM), producing fractions that were highly bioavailable at a specific ozone dose of 0.5, which was inferred to be a turning point. With the increase of the specific ozone dose, the biofilm microbial consortium was substantially shifted, demonstrating a decrease in richness and diversity. Unexpectedly, the opportunistic pathogen Legionella was stimulated and occurred in approximately 40% relative abundance at the higher specific ozone dose of 1. Accordingly, the membrane filtration system with a specific ozone dose of 0.5 presented a lower biofilm thickness, a weaker fluorescence intensity, smaller concentrations of polysaccharides and proteins, and a lower Raman activity, leading to a lower hydraulic resistance, compared to that with a specific ozone dose of 1. Our findings highlight the interaction mechanism between molecular-level DOM composition, biofilm microbial consortium, and membrane filtration performance, which provides an in-depth understanding of the impact of ozonation on biofilm accumulation.
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