对苏格兰管式 NF 工厂的分析表明,夏季温度和氧化还原敏感元素与膜生物污垢和使用寿命缩短有关。

IF 4.8 Q1 ENVIRONMENTAL SCIENCES ACS ES&T water Pub Date : 2024-10-29 eCollection Date: 2024-11-08 DOI:10.1021/acsestwater.4c00630
Desislava Filipova Davidkova, Margaret Catherine Graham, David MacLeod, Santiago Romero-Vargas Castrillón, Andrea Joana Correia Semiao
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引用次数: 0

摘要

我们研究了水成分和温度的季节性变化对苏格兰两家配备管式醋酸纤维素纳滤膜的全规模饮用水处理厂性能的影响。在 4.5 年的时间里记录的多个环境和水质参数与膜渗透率、清洗频率和使用寿命相关联。通过对膜进行解剖,可以确定污物成分的特征。在水温超过 20 °C、微生物活性最高的夏季,X 工厂的温度时变导致了严重的生物污垢(表现为渗透损失 30-50%,膜表面检测到细菌)。相比之下,Y 工厂的季节变化较小,运行稳定,没有出现明显的污垢。X 工厂夏季湖水中的锰和铁含量明显增加(分别高达 200 和 600 微克/升),同时膜表面的这些金属含量也升高(60 毫克/平方米),这与湖泊热分层以及沉积物中的金属进入水体是一致的。我们的研究结果表明,在 X 植物等由常年地表水体供应的地区,膜植物更容易受到生物污损的影响,尤其是在温暖的月份。
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Analysis of Tubular NF Plants in Scotland Indicates That Summer Temperatures and Redox-Sensitive Elements Are Correlated with Membrane Biofouling and Shortened Useful Life.

We investigate the effects of seasonal variations in water composition and temperature on the performance of two full-scale drinking water treatment plants in Scotland, equipped with tubular cellulose acetate nanofiltration membranes. Multiple environmental and water quality parameters, recorded over a 4.5-year period, were correlated against membrane permeance, cleaning frequency, and useful life. Membrane autopsies enabled the characterization of the foulant composition. Temporal variations in temperature at plant X led to significant biofouling (manifested by permeance losses of 30-50%, and bacteria detected on the membrane surface) during the summer months, when water temperatures exceeded 20 °C and microbiological activity was highest. Plant Y, in contrast, displayed smaller seasonal variations and was operationally stable without significant fouling. A pronounced increase in manganese and iron (up to 200 and 600 μg/L, respectively) in the lake water at plant X in summer was accompanied by elevated content (∼60 mg/m2) of those metals on the membrane surface, which was consistent with lake thermal stratification and metal input from the sediment into the water column. Our work shows that membrane plants in regions supplied by standing surface water bodies, such as plant X, are more vulnerable to biofouling, especially during warmer months.

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