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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Biogeochemical reactive-diffusive transport of heavy metals in Lake Coeur d'Alene sediments
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Biogeochemical reactive-diffusive transport of heavy metals in Lake Coeur d'Alene sediments

机译:Coeur d'Alene湖沉积物中重金属的生物地球化学反应扩散扩散

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摘要

Decades of runoff from precious-metal mining operations in the Lake Coeur d'Alene Basin, Idaho, have left the sediments in this lake heavily enriched with toxic metals, most notably Zn, Pb and Cu, together with As. The bioavailability, fate and transport of these metals in the sediments are governed by complex biogeochemical processes. In particular, indigenous microbes are capable of catalyzing reactions that detoxify their environments, and thus constitute an important driving component in the biogeochemical cycling of these metals. Here, the development of a quantitative model to evaluate the transport and fate of Zn, Pb and Cu in Lake Coeur d'Alene sediments is reported. The current focus is on the investigation and understanding of local-scale processes, rather than the larger-scale dynamics of sedimentation and diagenesis, with particular emphasis on metal transport through reductive dissolution of Fe hydroxides. The model includes 1-D inorganic diffusive transport coupled to a biotic reaction network including consortium biodegradation kinetics with multiple terminal electron acceptors and syntrophic consortium biotransformation dynamics of redox front. The model captures the mobilization of metals initially sorbed onto hydrous ferric oxides, through bacterial reduction of Fe(III) near the top of the sediment column, coupled with the precipitation of metal sulfides at depth due to biogenic sulfide production. Key chemical reactions involve the dissolution of ferrihydrite and precipitation of siderite and Fe sulfide. The relative rates of these reactions play an important role in the evolution of the sediment pore-water chemistry, notably pH, and directly depend on the relative activity of Fe and SO4 reducers. The model captures fairly well the observed trends of increased alkalinity, sulfide, Fe and heavy metal concentrations below the sediment-water interface, together with decreasing terminal electron acceptor concentrations with depth, including the development of anoxic conditions within about a centimeter below the lake bottom. This effort provides insights on important biogeochemical processes affecting the cycling of metals in Lake Coeur d'Alene and similar metal-impacted lacustrine environments. (c) 2007 Elsevier Ltd. All rights reserved.
机译:爱达荷州Coeur d'Alene湖盆地贵金属开采活动的数十年径流使该湖中的沉积物大量富含有毒金属,最主要的是Zn,Pb和Cu,以及As。这些金属在沉积物中的生物利用度,命运和运输受复杂的生物地球化学过程控制。特别地,土著微生物能够催化使它们的环境解毒的反应,从而在这些金属的生物地球化学循环中构成重要的驱动因素。在这里,报告了开发定量模型以评估锌,铅和铜在科达伦湖沉积物中的运移和命运的报道。当前的重点是对局部过程的研究和理解,而不是更大范围的沉积和成岩动力学,特别是通过氢氧化铁氢氧化物的还原溶解进行金属迁移。该模型包括与生物反应网络耦合的一维无机扩散运输,该生物反应网络包括具有多个末端电子受体的联合体生物降解动力学和氧化还原前沿的同养性联合体生物转化动力学。该模型通过细菌还原沉积物塔顶附近的Fe(III),以及由于生物硫化物的产生而在深处沉淀金属硫化物,来捕获最初吸附到水合氧化铁上的金属的动员。关键化学反应包括亚铁酸盐的溶解以及菱铁矿和硫化铁的沉淀。这些反应的相对速率在沉积物孔隙水化学(尤其是pH)的演变中起重要作用,并且直接取决于Fe和SO4还原剂的相对活性。该模型很好地捕获了沉积物-水界面以下碱度,硫化物,铁和重金属浓度增加的观测趋势,并且随着深度的增加,末端电子受体浓度降低,包括在湖底以下一厘米内发生的缺氧条件的发展趋势。 。这项工作为重要的地球化学过程提供了见识,这些过程影响了Coeur d'Alene湖和类似的受金属影响的湖泊环境中金属的循环。 (c)2007 Elsevier Ltd.保留所有权利。

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