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饮用水处理厂剩余污泥作为压舱物下沉微囊藻蓝藻并灭活热带湖水的磷。

Drinking water treatment residual as a ballast to sink Microcystis cyanobacteria and inactivate phosphorus in tropical lake water.

机构信息

Faculty of Public Health, Khon Kaen University, Khon Kaen, Thailand.

Department of Aquatic Sciences and Assessment, Swedish University of Agricultural Sciences, Uppsala, Sweden.

出版信息

Water Res. 2021 Dec 1;207:117792. doi: 10.1016/j.watres.2021.117792. Epub 2021 Oct 22.

DOI:10.1016/j.watres.2021.117792
PMID:34717209
Abstract

The combination of a low dose of coagulant with a ballast that can inactive phosphorus (P) in lake sediment-a technique known as "flock and lock"-is one method for restoration of eutrophic lakes. The effectiveness of a drinking water treatment residual (DWTR) as a ballast in flock and lock was assessed using assays of eutrophic lake water from Thailand dominated by Microcystis aeruginosa cyanobacteria colonies by measuring changes in chlorophyll-a, pH, and zeta potential. P sorption isotherms were developed from long-term batch equilibrium experiments; desorption of nutrients and metals was assessed via leaching experiments; and morphological changes to cellular structure were assessed using scanning electron microscopy. Results showed that combining DWTR with a low dose of aluminum sulfate (0.6-4.0 mg Al/L) effectively sank 74-96% of Microcystis, with DWTR dose (50-400 mg/L), initial chlorophyll-a concentration (92-976 µg/L), pH (7.4-9.3), and alkalinity (99-108 ppm CaCO) identified as factors significantly associated with sinking efficacy. P sorption capacity of the DWTR (7.12 mg/g) was significantly higher than a local soil (0.33 mg/g), enabling the DWTR to inactivate P in lake sediment. Desorption of Al, Fe, Ca and N from the DWTR was estimated to contribute to a marginal increase in concentrations of those compounds in the water column of a small shallow lake (1.2, 0.66, 53.4, and 0.07 µg/L, respectively) following a simulated application. Therefore, pre-treated DWTRs may be a viable alternative ballast in the flock and lock approach to lake restoration, supplementing or replacing modified local soils or lanthanum modified clays.

摘要

将低剂量的凝结剂与一种能使湖泊沉积物中的磷(P)失活的压舱物(称为“絮凝锁”)相结合,是修复富营养化湖泊的一种方法。采用测定由蓝藻铜绿微囊藻主导的泰国富营养化湖水的叶绿素-a、pH 值和 ζ 电位的方法,评估饮用水处理残余物(DWTR)作为絮凝锁中压舱物的有效性。通过长期批量平衡实验得出 P 吸附等温线;通过浸出实验评估养分和金属的解吸;通过扫描电子显微镜评估细胞结构的形态变化。结果表明,将 DWTR 与低剂量的硫酸铝(0.6-4.0mgAl/L)结合使用,可有效沉降 74-96%的微囊藻,DWTR 剂量(50-400mg/L)、初始叶绿素-a 浓度(92-976μg/L)、pH 值(7.4-9.3)和碱度(99-108ppmCaCO)被确定为与沉降效率显著相关的因素。DWTR 的 P 吸附能力(7.12mg/g)明显高于当地土壤(0.33mg/g),使 DWTR 能够使湖泊沉积物中的 P 失活。DWTR 中 Al、Fe、Ca 和 N 的解吸估计会导致小型浅湖水柱中这些化合物的浓度略有增加(分别为 1.2、0.66、53.4 和 0.07μg/L),模拟应用后。因此,预处理后的 DWTR 可能是絮凝锁方法在湖泊修复中的一种可行的替代压舱物,可补充或替代改良的当地土壤或镧改性粘土。

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