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Performance of a zerovalent iron reactive barrier for the treatment of arsenic in groundwater: Part 1. Hydrogeochemical studies

机译:零价铁反应性阻挡层处理地下水中砷的性能:第1部分。水文地球化学研究

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摘要

Developments and improvements of remedial technologies are needed to effectively manage arsenic contamination in groundwater at hazardous waste sites. In June 2005, a 9.1 m long. 14 m deep, and 1.8 to 2.4 m wide (in the direction of groundwater flow) pilot-scale permeable reactive barrier (PRB) was installed at a former lead smelting facility, located near Helena, Montana (USA). The reactive barrier was designed to treat groundwater contaminated with moderately high concentrations of both As(Ⅲ) and As(Ⅴ).The reactive barrier was installed over a 3-day period using bio-polymer slurry methods and modified excavating equipment for deep trenching. The reactive medium was composed entirely of granular iron which was selected based on long-term laboratory column experiments. A monitoring network of approximately 40 groundwater sampling points was installed in July 2005. Monitoring results indicate arsenic concentrations >25 mg L~(-1) in wells located hydraulically upgradient of the PRB. Of 80 groundwater samples collected from the pilot-PRB, 11 samples exceeded 0.50 mg As L~(-1); 62 samples had concentrations of arsenic at or below 0.50 mg L~(-1); and, 24 samples were at or below the maximum contaminant level (MCL) for arsenic of 0.01 mg L~(-1). After 2 years of operation, monitoring points located within 1 m of the downgradient edge of the PRB showed significant decreases in arsenic concentrations at depth intervals impacted by the emplaced zerovalent iron. This study indicates that zerovalent iron can be effectively used to treat groundwater contaminated with arsenic given appropriate groundwater geochemistry and hydrology. The study also further demonstrates the shortcomings of hanging-wall designs. Detailed subsurface characterization data that capture geochemical and hydrogeologic variability, including a flux-based analysis, are needed for successful applications of PRB technology for arsenic remediation.
机译:需要开发和改进补救技术,以有效管理危险废物场所地下水中的砷污染。在2005年6月,长9.1 m。在位于美国蒙大纳州海伦娜附近的旧铅冶炼厂安装了14 m深,1.8至2.4 m宽(沿地下水流方向)的中试规模可渗透反应堆(PRB)。反应池设计用于处理被中等浓度的As(Ⅲ)和As(Ⅴ)污染的地下水。反应池使用生物聚合物淤浆法和改进的挖掘设备进行了为期3天的安装,用于深挖沟。反应介质完全由粒状铁组成,是根据长期的实验室柱实验选择的。 2005年7月安装了约40个地下水采样点的监测网络。监测结果表明,PRB水力向上的井中砷浓度> 25 mg L〜(-1)。从试点PRB收集的80个地下水样品中,有11个样品的L〜(-1)超过0.50 mg; 62个样品中砷的浓度为0.50 mg L〜(-1)或以下。 24个样品的砷含量达到或低于0.01 mg L〜(-1)的最大污染物含量(MCL)。在运行2年后,位于PRB降坡边缘1 m内的监测点显示,在受置入的零价铁影响的深度间隔处,砷浓度显着下降。这项研究表明,在适当的地下水地球化学和水文条件下,零价铁可以有效地用于处理被砷污染的地下水。该研究还进一步证明了壁挂式设计的缺点。要成功应用PRB技术进行砷修复,需要详细的地下特征数据来捕获地球化学和水文地质的可变性,包括基于通量的分析。

著录项

  • 来源
    《Journal of Contaminant Hydrology》 |2009年第2期|1-14|共14页
  • 作者单位

    US. Environmental Protection Agency, National Risk Management Research Laboratory, Ground Water and Ecosystems Restoration Division, 919 Ken Research Drive, Ada, Oklahoma 74820, United States;

    US. Environmental Protection Agency, National Risk Management Research Laboratory, Ground Water and Ecosystems Restoration Division, 919 Ken Research Drive, Ada, Oklahoma 74820, United States;

    US. Environmental Protection Agency, National Risk Management Research Laboratory, Ground Water and Ecosystems Restoration Division, 919 Ken Research Drive, Ada, Oklahoma 74820, United States;

    US. Environmental Protection Agency, National Risk Management Research Laboratory, Ground Water and Ecosystems Restoration Division, 919 Ken Research Drive, Ada, Oklahoma 74820, United States;

    US. Environmental Protection Agency, National Risk Management Research Laboratory, Ground Water and Ecosystems Restoration Division, 919 Ken Research Drive, Ada, Oklahoma 74820, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    permeable reactive barrier; zerovalent iron; arsenic; contaminant flux;

    机译:渗透反应性屏障零价铁砷;污染物通量;

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