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Influence of hydrogeochemical processes on zero-valent iron reactive barrier performance: A field investigation

机译:水文地球化学过程对零价铁反应性阻隔性能的影响:现场调查

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Geochemical and mineralogical changes were evaluated at a field Fe~0-PRB at the Oak Ridge Y-12 site concerning operation performance during the treatment of U in high NO_3~- groundwater. In the 5-year study period, the Fe~0 remained reactive as shown in pore-water monitoring data, where increases in pH and the removal of certain ionic species persisted. However, coring revealed varying degrees of cementation. After 3.8-year treatment, porosity reduction of up to 41.7% was obtained from mineralogical analysis on core samples collected at the upgradient gravel-Fe~0 interface. Elsewhere, Fe~0 filings were loose with some cementation. Fe~0 corrosion and pore volume reduction at this site are more severe due to the presence of NO_3~- at a high level. Tracer tests indicate that hydraulic performance deteriorated: the flow distribution was heterogeneous and under the influence of interfacial cementation a large portion of water was diverted around the Fe~0 and transported outside the PRB. Based on the equilibrium reductions of NO_3~- and SO_4~(2-) by Fe~0 and mineral precipitation, geochemical modeling predicted a maximum of 49% porosity loss for 5 years of operation. Additionally, modeling showed a spatial distribution of mineral precipitate volumes, with the maximum advancing from the interface toward downgradient with time. This study suggests that water quality monitoring, coupled with hydraulic monitoring and geochemical modeling, can provide a low-cost method for assessing PRB performance.
机译:在橡树岭Y-12场的Fe〜0-PRB油田评估了地球化学和矿物学变化,涉及在高NO_3〜-地下水中处理U期间的运行性能。在为期5年的研究期间,如孔隙水监测数据所示,Fe〜0仍保持反应活性,其中pH值升高且某些离子种类的去除持续存在。但是,取芯显示出不同程度的胶结作用。经过3.8年的处理后,通过矿物矿物学分析,在砾石-Fe〜0向上界面收集的岩心样品,孔隙率降低了41.7%。在其他地方,Fe〜0屑疏松,并有胶结作用。由于NO_3〜-含量高,Fe〜0腐蚀和孔内体积减小更为严重。示踪剂测试表明,水力性能恶化:流量分布不均一,并且在界面胶结作用的影响下,大部分水在Fe〜0附近转移并运到PRB之外。根据Fe〜0和矿物沉淀物对NO_3〜-和SO_4〜(2-)的平衡还原作用,地球化学模型预测了作业5年后的最大孔隙度损失为49%。此外,建模还显示了矿物沉淀物体积的空间分布,随着时间的推移,最大程度地从界面向降级前进。这项研究表明,水质监测与水力监测和地球化学建模相结合,可以提供一种评估PRB性能的低成本方法。

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