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In situ controlled-release schemes for controlling the spread of organic contaminants in roundwater

机译:用于控制地下水中有机污染物扩散的原位控制释放方案

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In situ chemical oxidation with KMnO4 is being used for the remediation of groundwater contaminated with chlorinated solvents. Most applications involve schemes with active flushing of source zones. This study illustrates new possibilities for using 'controlled release' approaches with oxidants for plume control and more generally in water treatment. KMnO4 is extremely soluble in water. Controlled-release permanganate solids rely on diffusional release modes, which effectively add treatment chemicals slowly in reactive barriers. We have investigated a variety of practical approaches to employ slow release forms in reactive barrier systems. An integral part of this work has involved the development of a code capable of modeling controlled-release systems has been developed to fully explore issues involving the controlled, reactive transport, and mixing of active agents in complex aquifer settings. The minimal dispersion in the system and the geometry of the solids provided unique challenges in the modeling. This study examines several possibilities of mixing the MnO4 -with a TCE plume in a reactive barrier. The first creates a well-mixed, stable MnO4-zone with predetermined size (D×L=8m×2m) and concentration ranges (1.5~20 mg/L) by cyclical patterns of pumping (e.g., four one-day injection/withdrawal pumping periods over 24 d). This type of mixing zone can be maintained for long times with periodic well mixing and replacements of exhausted controlled-release forms. Another promising approach to mixing couples funnel-and-gates with controlled-release system. Two-dimensional solid forms are designed with the model to achieve almost complete mixing and an optimum MnO4- concentration.The development of this general code together with the novel mixing schemes opens possibilities for other types of controlled-release barriers created by reductants, nutrients, bioactive chemicals, and agents for in situ redox manipulations. Coupled use of the generalized code with hydrologic data will help to optimize the design and operation of controlled-release systems in practice.
机译:用KMnO4进行的原位化学氧化被用于修复被氯化溶剂污染的地下水。大多数应用程序涉及主动冲洗源区域的方案。这项研究说明了将“控释”方法与氧化剂一起用于羽流控制以及更广泛地用于水处理的可能性。 KMnO4极易溶于水。控释高锰酸盐固体依赖于扩散释放模式,可以有效地在反应性屏障中缓慢添加处理化学品。我们研究了在反应性屏障系统中采用缓释形式的多种实用方法。这项工作不可或缺的一部分涉及开发能够对控释系统进行建模的代码,该代码已开发出来,可以全面探讨涉及复杂含水层环境中受控,反应性运输和活性剂混合的问题。系统中的最小分散度和固体的几何形状在建模中提出了独特的挑战。这项研究探讨了将MnO4与TCE羽流混合在反应性屏障中的几种可能性。第一种通过循环泵送方式(例如,四次一天的注射/抽出)创建一个具有预定尺寸(D×L = 8m×2m)和浓度范围(1.5〜20 mg / L)的混合均匀的稳定MnO4-区。抽水周期超过24天)。这种类型的混合区域可以通过定期的井混合和替换用尽的控释形式而长时间保持。另一种有希望的混合方式是将漏斗和闸门与控释系统混合。该模型设计了二维固体形式,以实现几乎完全混合和最佳MnO4-浓度。此通用代码的开发以及新颖的混合方案为还原剂,营养物质,生物活性化学品和原位氧化还原处理剂。通用代码与水文数据的结合使用将有助于在实践中优化控释系统的设计和操作。

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