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Natural organic matter and colloid-facilitated arsenic transport and transformation in porous soil media

机译:多孔土壤介质中天然有机物和胶体促进的砷迁移和转化

摘要

Prediction of arsenic transport and transformation in soil environment requires understanding the transport mechanisms and proper estimation of arsenic partitioning among all three phases in soil/aquifer systems: mobile colloids, mobile soil solution, and immobile soil solids. The primary purpose of this research is to study natural dissolved organic matter (DOM)/colloid-facilitated transport of arsenic and understand the role of soil derived carriers in the transport and transformation of both inorganic and organoarsenicals in soils.DOM/colloid facilitated arsenic transport and transformation in porous soil media were investigated using a set of experimental approaches including batch experiment, equilibrium membrane dialysis experiment and column experiment. Soil batch experiment was applied to investigate arsenic adsorption on a variety of soils with different characteristics; Equilibrium membrane dialysis was employed to determine the ‘free’ and ‘colloid-bound/complexed’ arsenic in water extracts of chosen soils; Column experiments were also set up in the laboratory to simulate arsenic transport and transformation through golf course soils in the presence and absence of soil-derived dissolved substances.The experimental results revealed that organic matter amendments effectively reduced soil arsenic adsorption. The majority of arsenic present in the soil extracts was associated with small substances of molecular weight (MW) between 500 and 3,500 Da. Only a small fraction of arsenic was associated with higher MW substances (MW u3e 3,500 Da), which was operationally defined as colloidal part in this study. The association of arsenic and DOM in the soil extracts strongly affected arsenic bioavailability, arsenic transport and transformation in soils. The results of column experiments revealed arsenic complicated behavior with various processes occurring in soils studied, including: soil arsenic adsorption, facilitated arsenic transportation by dissolved substances presented in soil extracts and microorganisms involved arsenic species transformation.Soil organic matter amendments effectively reduce soil arsenic adsorption capability either by scavenging soil arsenic adsorption sites or by interactions between arsenic species and dissolved organic chemicals in soil solution. Close attention must be paid for facilitated arsenic transport by dissolved substances presented in soil solution and microorganisms involved arsenic species transformation in arsenic-contaminated soils.
机译:预测土壤环境中的砷迁移和转化需要了解土壤/含水层系统中所有三个阶段(移动胶体,移动土壤溶液和固定土壤固体)中的迁移机理和砷分配的适当估计。这项研究的主要目的是研究自然溶解的有机物(DOM)/胶体促进的砷运输,并了解土壤中的载体在土壤中无机和有机砷的运输和转化中的作用.DOM /胶体促进了砷的运输利用分批实验,平衡膜渗析实验和柱实验等一系列实验方法研究了多孔土壤介质的迁移和转化。采用土壤分批实验研究了砷在多种不同特性土壤上的吸附情况。平衡膜透析用于确定所选土壤水提取物中的“游离”和“胶体结合/复合”砷。在实验室中还建立了柱实验来模拟砷在高尔夫球场土壤中在有和没有土壤衍生的溶解性物质存在和不存在的情况下的迁移和转化。土壤提取物中存在的大部分砷与分子量在500至3500 Da之间的小物质有关。只有一小部分砷与较高的MW物质(MW 3,500 Da)有关,在本研究中将其定义为胶体部分。土壤提取物中砷和DOM的结合强烈影响了土壤中砷的生物利用度,砷的运输和转化。柱实验的结果揭示了砷在土壤中复杂过程的变化过程,包括:土壤中的砷吸附,土壤提取物中存在的溶解物质和微生物参与的砷迁移,促进了砷的迁移;土壤有机质改良剂有效降低了土壤对砷的吸附能力。通过清除土壤中砷的吸附位点或通过砷物种与土壤溶液中溶解的有机化学物质之间的相互作用来实现。必须密切注意土壤溶液中存在的溶解性物质促进砷的运输,以及涉及砷污染土壤中砷物种转化的微生物。

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    Chen Zhangrong;

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  • 年度 2006
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