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Arsenic Geochemistry in Warm Spring Ponds: New Field and Experimental Results

机译:暖泉池中的砷地球化学:新领域和实验结果

摘要

Silver Bow Creek (SBC) flows into the Warm Springs Ponds Operable Unit (WSPOU), where various containment cells are used to precipitate copper and other metals (e.g., Cd, Cu, Mn, Pb, Zn). Lime is added seasonally to increase the pH and assist in removal of metals from the water column. Although the WSPOU is effective at removing copper and other cationic trace metals, concentrations of dissolved arsenic exiting the facility are often above the site specific standard, 20 20 ug/L, during low-flow periods each summer and fall.This thesis is a continuation of arsenic geochemistry studies by Montana Tech in the WSPOU. Field work focused on Pond 3, the largest and first in the series of treatment ponds. Shallow groundwater was sampled from 8 PVC piezometers located near the south end of Pond 3. Three sediment pore-water diffusion samplers (“peepers”) were also deployed at the south end of Pond 3 to examine vertical gradients in chemistry in the top 25 cm of the pond sediment. In general, the pH and Eh values of the shallow groundwater and sediment pore-water were less than in the pond water. Concentrations of arsenic were generally higher in subsurface water, and tended to pass through a maximum (up to 530 g/L) about 10 cm below the sediment-water interface. In the peeper cells, there was a strong positive correlation between dissolved As and dissolved Fe, and an inverse correlation with sulfate. Therefore, the zone of arsenic release corresponds to a zone of bacterial Fe and sulfate reduction in the shallow, organic-rich sediment. Redox speciation of arsenic shows that arsenate (As(V)) is dominant in the pond, and arsenite (As(III)) is dominant in the subsurface water.A series of laboratory experiments with pH adjustment were completed using SBC water collected near the inlet to the WSPOU as well as water and shallow sediment collected from Pond 3. Water ± sediment mesocosms were set up in 1-L Nalgene bottles (closed system) or a 20-L aquarium (open system), both with continuous stirring. The pH of the mesocosm was adjusted by addition of NaOH or HNO3 acid. The closed system provided better pH control since the water was not in contact with the atmosphere, which prevented exchange of carbon dioxide. In both the closed and open systems, dissolved arsenic concentrations either decreased or stayed roughly the same with increase in pH to values u3e 11. Therefore, the release of dissolved As into the treatment ponds in low-flow periods is not due to changes in pH alone.All of these results support the hypothesis that the arsenic release in WSPOU is linked to microbial reduction of ferric oxide minerals in the organic-rich sediment. Upwards diffusion of dissolved As from the sediment pore-water into the pond water is the most likely explanation for the increase in As concentration of the WSPOU in low-flow periods.
机译:银弓溪(SBC)流入暖泉池可操作单元(WSPOU),在这里,各种安全壳用于沉淀铜和其他金属(例如Cd,Cu,Mn,Pb,Zn)。季节性添加石灰以增加pH值并帮助从水柱中除去金属。尽管WSPOU可以有效去除铜和其他阳离子痕量金属,但在每年夏季和秋季的低流量时期,从工厂排出的溶解砷浓度通常都高于特定地点的标准20 20 ug / L。本文是续篇Montana Tech在WSPOU中进行的砷地球化学研究。现场工作的重点是池塘3,这是一系列处理池塘中最大的池塘。浅水是从位于池塘3南端附近的8个PVC渗压计中取样的。在池塘3的南端还部署了三个沉积物孔隙水扩散取样器(“ peepers”),以检查顶部25 cm处的化学垂直梯度。池塘沉积物。通常,浅层地下水和沉积物孔隙水的pH值和Eh值低于池塘水中的pH和Eh值。地下水中的砷浓度通常较高,并且倾向于穿过沉积物-水界面下方约10 cm处的最大值(最高530μg/ L)。在偷窥者细胞中,溶解的砷和溶解的铁之间存在很强的正相关关系,而与硫酸盐则呈反相关关系。因此,砷释放的区域对应于富含有机物的浅层沉积物中细菌铁和硫酸盐还原的区域。砷的氧化还原形态表明,池塘中砷(As(V))占优势,地下水占砷(As(III))优势。 WSPOU的入口以及从池塘3收集的水和浅层沉积物。在±1 L Nalgene瓶(密闭系统)或20 L水族馆(开放式系统)中建立水±沉积物的中观空间,并不断搅拌。通过添加NaOH或HNO 3酸来调节中层的pH。封闭的系统提供了更好的pH控制,因为水不与大气接触,从而阻止了二氧化碳的交换。在封闭和开放系统中,随着pH的增加,溶解的砷浓度降低或基本保持不变,达到11。因此,在低流量时期,溶解砷向处理池的释放不是由于水的变化。所有这些结果都支持WSPOU中砷释放与富含有机物的沉积物中的三氧化二铁矿物质微生物还原有关的假设。溶解态As从沉积物孔隙水中向上扩散到池塘水中是最可能解释低流量时期WSPOU中As浓度增加的原因。

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    Boese Heather;

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