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Enhanced monitoring of hazardous waste site remediation: Electrical conductivity tomography and citizen monitoring of remediation through the EPA's community advisory group program.

机译:加强对危险废物现场修复的监控:通过EPA的社区咨询小组计划,对电导率层析成像和市民对修复的监控。

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摘要

In situ chemical oxidation using permanganate has become a common method for degrading trichloroethene (TCE) in contaminated aquifers. Its effectiveness, however, is dependent upon contact between the oxidant and contaminant. Monitoring permanganate movement after injection is often hampered by aquifer heterogeneity and insufficient well coverage. Time lapse electrical conductivity tomography increases the spatial extent of monitoring beyond well locations. This technique can create two- or three-dimensional images of the electrical conductivity within the aquifer to monitor aquifer chemistry changes caused by permanganate injection and oxidation reactions.;In-phase and quadrature electrical conductivity were measured in homogeneous aqueous and porous media samples to determine the effects of TCE and humate oxidation by permanganate on both measures of conductivity. Further effects of clean sand, 10% kaolinite (v/v), and 10% smectite (v/v) on both types of conductivity were studied as well. Finally, in-phase electrical conductivity was measured over time after injecting permanganate solution into two-dimensional tanks containing artificial groundwater with and without TCE to observe the movement of the permanganate plume and its interaction with TCE and to examine the effectiveness of time-lapse conductivity tomography for monitoring the plume's movement.;In-phase electrical conductivity after oxidation reactions involving permanganate, TCE, and humate could be accurately modeled in homogeneous batch samples. Use of forward modeling of in-phase conductivity from permanganate concentrations may be useful for improving recovery of conductivity values during survey inversion, but further work is needed combining the chemistry modeling with solute transport models. Small pH-related quadrature conductivity decreases were observed after TCE oxidation, and large quadrature conductivity increases were observed as a result of sodium ion addition; however, quadrature conductivity could not be related to concentrations of permanganate or reaction products.;Additionally, EPA Superfund sites participating in the Community Advisory Group (CAG) program were examined to determine how communities may have benefitted from the program. While CAG participation was correlated with slower achievement of EPA cleanup milestones, many CAGs successfully achieved five standardized social goals. CAGs that achieved these social goals varied in composition but were similar in their focus on community outreach and ability to extend their influence beyond CAG meetings.
机译:使用高锰酸盐的原位化学氧化已成为降解受污染含水层中三氯乙烯(TCE)的常用方法。但是,其有效性取决于氧化剂和污染物之间的接触。注入后监测高锰酸盐运动常常受含水层非均质性和井盖不足的困扰。随时间推移的电导率层析成像技术可以扩大监测范围,超出井位。该技术可以在含水层内创建二维或三维电导率图像,以监测由高锰酸盐注入和氧化反应引起的含水层化学变化。在均匀的水性和多孔介质样品中测量同相和正交电导率,以确定TCE和腐殖酸盐被高锰酸盐氧化对两种电导率的影响。还研究了干净的沙子,10%的高岭石(v / v)和10%的蒙脱石(v / v)对两种电导率的进一步影响。最后,在将高锰酸盐溶液注入装有或不带有三氯乙酸的人造地下水的二维水箱中后,随时间测量同相电导率,以观察高锰酸盐羽流的运动及其与三氯乙烯的相互作用,并检验随时间推移电导率的有效性层析成像以监测羽流的运动。可以在均相的批量样品中准确模拟涉及高锰酸盐,TCE和腐殖酸盐的氧化反应后的同相电导率。使用高锰酸盐浓度的同相电导率的正向模型的使用可能有助于提高反演过程中电导率值的恢复,但是还需要进一步的工作,将化学模型与溶质运移模型相结合。在TCE氧化后,观察到与pH有关的正交电导率减小,而由于添加钠离子,观察到较大的正交电导率增大;但是,正交电导率与高锰酸盐或反应产物的浓度无关。此外,还对参与社区咨询小组(CAG)计划的EPA超级基金站点进行了检查,以确定社区如何从该计划中受益。尽管CAG的参与与EPA清理里程碑的实现较慢有关,但许多CAG成功地实现了五个标准化的社会目标。实现这些社会目标的CAG的组成各不相同,但在关注社区外延以及将影响力扩展到CAG会议以外的能力方面却相似。

著录项

  • 作者

    Hort, Ryan D.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Engineering Environmental.;Geophysics.;Sociology Public and Social Welfare.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:51:42

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