Synergistic process using calcium peroxide and ferrous iron for enhanced ultrafiltration of Microcystis aeruginosa-laden water

化学 超滤(肾) 铜绿微囊藻 生物污染 结垢 膜污染 铁质 饮用水净化 水处理 过氧化氢 污染物 过滤(数学) 环境化学 制浆造纸工业 化学工程 色谱法 环境工程 蓝藻 环境科学 生物化学 有机化学 细菌 工程类 统计 生物 遗传学 数学
作者
Xiaoxiang Cheng,Chengsi Hou,Hongbo Gao,Peijie Li,Xuewu Zhu,Congwei Luo,Lijie Zhang,Yan Jin,Daoji Wu,Heng Liang
出处
期刊:Water Research [Elsevier BV]
卷期号:211: 118067-118067 被引量:68
标识
DOI:10.1016/j.watres.2022.118067
摘要

Algal blooms and eutrophication in natural surface water not only pose a threat to human health, but also adversely affect the water purification process. Ultrafiltration (UF) has been proved to be effective for the retention of algal cells, but its further application is still restricted by the relatively limited removal of algal organics and membrane fouling. To enhance the UF performance, a synergistic process using calcium peroxide and ferrous sulfate (CaO2/FeSO4) was proposed for the treatment of Microcystis aeruginosa-laden water. The results suggested that the removal of algal cells and organics, fluorescent components were effectively increased with the synergism of CaO2 and FeSO4. The particle size distribution and morphology revealed that the size of algal pollutants apparently increased due to the formation of algal flocs. With CaO2/FeSO4 pretreatment, the terminal specific flux of polyethersulfone and polyvinylidene fluoride membranes were increased by 75.0% and 56.5%, individually. The fouling resistances were significantly reduced, and the fouling mechanism transition to cake filtration was delayed. The membrane interface properties including morphologies and functional groups were characterized, further verifying the effectiveness. The in-situ formed Fe3+ integrated with Ca(OH)2 showed excellent coagulation effect, thus promoting the agglomeration of algal foulants. Simultaneously, the generated hydroxyl radical could improve the oxidative degradation of algal organics. In conclusion, the CaO2/FeSO4 strategy has great advantages and application prospects in enhancing UF performance for Microcystis aeruginosa-laden water treatment.
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