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高铁酸钾与二价铁协同作用改善富藻水中超滤性能。

Synergistic effect of potassium ferrate and ferrous iron for improving ultrafiltration performance in algae-laden water treatment.

机构信息

National Engineering Research Centre for Bioenergy, Harbin Institute of Technology, Harbin 150090, China; State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.

School of Municipal and Environmental Engineering, Shandong Jianzhu University, Jinan 250101, China.

出版信息

Water Res. 2023 Sep 1;243:120362. doi: 10.1016/j.watres.2023.120362. Epub 2023 Jul 15.

Abstract

The application of ultrafiltration (UF) technology in algae-laden water is limited due to the serious membrane fouling caused by algal foulants. Herein, a Ferrate/FeSO(Fe(VI)/Fe(II)) pretreatment was proposed aiming to improve the performance of UF. The results showed that the synergistic of Fe(VI) and Fe(II) significantly increased the zeta potential of Microcystis aeruginosa, which enhanced the agglomerative tendency of algal foulants, and the particle size of flocs remarkably increased due to the in-situ generated Fe(III). Results from dissolved organic carbon (DOC), UV, K, and fluorescent spectra indicated that the introduction of Fe(II) avoided the excessive oxidation of Fe(VI) to algal cells and reduced the production of intracellular organic matter (IOM), while the strong coagulation efficiency of in-situ Fe(III) further enhanced the removal effect of algal organics. Meanwhile, the molecular weight distribution showed that macromolecular organics were decomposed into low molecular matters under Fe(VI) oxidation, while the Fe(VI)/Fe(II) process reduced the formation of small molecular matters compared with single Fe(VI) pretreatment. The algal-source fouling was efficaciously mitigated under the optimal experimental condition, the terminal membrane flux could be increased from 0.16 to 0.62, while reversible and irreversible fouling decreased by 67.1% and 64.1%, respectively. Modeling analysis demonstrated that the Fe(VI)/Fe(II) process altered the fouling mechanism by delaying the formation of cake filtration. Membrane interface characterization further indicated that large size algal flocs form a loose cake layer and reduce the deposition of algal pollutants on the membrane surface. The Extended Derjaguin-Landau-Verwey-Overbeek (XDLVO) theory confirmed that the hydrophobic adsorption between the algal foulant and the membrane was weakened, thus relieving the membrane fouling. Overall, this strategy can be considered for application in improving the UF performance and mitigating algal-source membrane fouling.

摘要

超滤(UF)技术在富藻水中的应用受到藻源性污染物严重膜污染的限制。在此,提出了一种高铁酸盐/硫酸亚铁(Fe(VI)/Fe(II))预处理方法,旨在改善 UF 的性能。结果表明,Fe(VI)和 Fe(II)的协同作用显著增加了铜绿微囊藻的zeta 电位,增强了藻源性污染物的聚集趋势,由于原位生成的 Fe(III),絮体的粒径显著增大。通过溶解有机碳(DOC)、紫外、钾和荧光光谱的结果表明,引入 Fe(II)避免了 Fe(VI)对藻细胞的过度氧化,减少了细胞内有机物(IOM)的产生,而原位 Fe(III)的强混凝效率进一步增强了对藻类有机物的去除效果。同时,分子量分布表明,大分子有机物在 Fe(VI)氧化下分解成低分子物质,而 Fe(VI)/Fe(II)过程与单一 Fe(VI)预处理相比,减少了小分子物质的形成。在最佳实验条件下,藻源污染得到有效缓解,终端膜通量从 0.16 增加到 0.62,同时可逆和不可逆污染分别降低了 67.1%和 64.1%。建模分析表明,Fe(VI)/Fe(II)过程通过延迟滤饼形成改变了污染机制。膜界面特性进一步表明,大尺寸藻絮体形成松散的滤饼层,减少了藻类污染物在膜表面的沉积。扩展的德加古因-兰德沃维尔-奥弗贝克(XDLVO)理论证实,藻污 染物与膜之间的疏水性吸附减弱,从而缓解了膜污染。总的来说,该策略可用于改善 UF 性能和缓解藻源膜污染。

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