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Design and application of surface PRBs for PCB remediation in the Canadian Arctic

机译:加拿大北极地区用于PCB修复的表面PRB的设计和应用

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摘要

Over the course of three years, several surface permeable reactive barriers were designed and constructed to deal with leftover site contamination at a site located on the summit of Resolution Island, Nunavut, just southeast of Baffin Island at 61° 35'N and 60° 40'W. The site was part of a North American military defense system established in the 1950s that became heavily contaminated with polychlorinated biphenyls (PCBs) during and subsequent to, its operational years. Each of the three barrier designs has a different configuration, to meet the needs of the targeted remediation area, based on their unique contaminant histories. Modifications were made to the barrier designs based on both field observations and laboratory results. The comparison of field and laboratory results indicated that areas with higher concentrations of PCB contamination behaved differently than areas with lower concentrations of PCB contaminated soil. Previous laboratory studies only partially replicated field observations and results. It had previously been hypothesized that particle retention was the most important factor in trapping and capturing PCBs. However, rinsed filter samples from the field indicated that partitioning of PCBs between contaminated soil and granular activated carbon (GAC) filter particles were occurring at levels of 62 ± 11%, suggesting that sequestration of the PCBs from the environment should be a primary focus of the barrier. This sequestration requires both particle retention (within the granular sorptive filters) as well as maintained contact time between particles for sorption processes to proceed. This mechanism -partitioning of PCB to GAC - was more important in areas with higher PCB concentration. These results suggest that it may be possible to tailor future barrier designs to their unique site histories and locations.
机译:在三年的过程中,设计并建造了数个表面可渗透的反应性屏障,以处理位于巴芬岛东南部努纳武特的决议岛顶峰上的一个遗址,该遗址位于巴芬岛东南61°35'N和60°40 'W。该场址是1950年代建立的北美军事防御系统的一部分,该系统在其运营年度期间及之后一直受到多氯联苯(PCB)的严重污染。三种屏障设计均基于其独特的污染物历史记录,具有不同的配置,可满足目标修复区域的需求。根据现场观察和实验室结果对屏障设计进行了修改。现场和实验室结果的比较表明,PCB污染浓度较高的地区与PCB污染土壤浓度较低的地区表现不同。以前的实验室研究仅部分复制了现场观察结果。以前有假设认为,颗粒保留是捕获和捕获PCB的最重要因素。然而,现场冲洗过的过滤器样本表明,多氯联苯在受污染的土壤和颗粒状活性炭(GAC)过滤器颗粒之间的分隔发生在62±11%的水平,这表明将多氯联苯与环境隔离应该是主要的关注点。障碍。这种螯合既需要颗粒保留(在颗粒吸附过滤器内),又需要保持颗粒之间的接触时间以进行吸附过程。在PCB浓度较高的区域,这种将PCB划分为GAC的机制更为重要。这些结果表明,可能有可能根据其独特的现场历史和位置来定制未来的屏障设计。

著录项

  • 来源
    《Journal of Environmental Management》 |2012年第2012期|p.124-133|共10页
  • 作者单位

    Department of Geology, University at Buffalo, Buffalo, NY 14260, USA;

    School of Environmental Studies, Analytical Services Unit, Biosciences Complex, Queen's University, Kingston, Ontario, Canada K7L 3N6;

    Geo-Engineering Centre Queen's-RMC, Department of Civil Engineering, Queen's University, Kingston, Ontario, Canada K7L 3N6;

    School of Environmental Studies, Analytical Services Unit, Biosciences Complex, Queen's University, Kingston, Ontario, Canada K7L 3N6;

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

    PCBs; remediation; permeable reactive barrier; activated carbon; cold regions;

    机译:PCB;补救措施;渗透反应性屏障活性炭;寒冷地区;

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