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电动力学在修复地下土壤中氯代烯烃污染的应用 - 综述。

Electrokinetics applied in remediation of subsurface soil contaminated with chlorinated ethenes - A review.

机构信息

Department of Civil Engineering, Building 118, Technical University of Denmark, 2800, Lyngby, Denmark.

Department of Contaminated Sites & Groundwater, Orbicon, Linnés Allé 2, 2630, Taastrup, Denmark.

出版信息

Chemosphere. 2019 Nov;235:113-125. doi: 10.1016/j.chemosphere.2019.06.075. Epub 2019 Jun 11.

DOI:10.1016/j.chemosphere.2019.06.075
PMID:31255751
Abstract

Electrokinetics is being applied in combination with common insituremediation technologies, e.g. permeable reactive barriers, bioremediation and in-situ chemical oxidation, to overcome experienced limitations in remediation of chlorinated ethenes in low-permeable subsurface soils. The purpose of this review is to evaluate state-of-theart for identification of major knowledge gaps to obtain robust and successful field-implementations. Some of the major knowledge gaps include the behavior and influence of induced transient changes in soil systems, transport velocities of chlorinated ethenes, and significance of site-specific parameters on transport velocities, e.g. heterogeneous soils and hydrogeochemistry. Furthermore, the various ways of reporting voltage distribution and transport rates complicate the comparison of transport velocities across studies. It was found, that for the combined EK-techniques, it is important to control the pH and redox changes caused by electrolysis for steady transport, uniform distribution of the electric field etc. Specifically for electrokinetically enhanced bioremediation, delivery of lactate and biodegrading bacteria is of the same order of magnitude. This review shows that enhancement of remediation technologies can be achieved by electrokinetics, but major knowledge gaps must be examined to mature EK as robust methods for successful remediation of chlorinated ethene contaminated sites.

摘要

电动力学正在与常见的原位修复技术结合使用,例如可渗透反应屏障、生物修复和原位化学氧化,以克服在低渗透性地下土壤中修复氯化乙烯时遇到的经验限制。本综述的目的是评估确定主要知识空白的最新技术,以获得稳健且成功的现场实施。一些主要的知识空白包括土壤系统中诱导瞬变变化的行为和影响、氯化乙烯的迁移速度以及特定于地点的参数对迁移速度的重要性,例如非均质地层和水文地球化学。此外,报告电压分布和传输速率的各种方式使得跨研究比较传输速度变得复杂。结果发现,对于组合的 EK 技术,控制由电解引起的 pH 和氧化还原变化对于稳定传输、电场的均匀分布等非常重要。特别是对于电动力学增强生物修复,乳酸和生物降解细菌的输送处于相同的量级。本综述表明,电动力学可以增强修复技术,但必须检查主要的知识空白,以使 EK 成为成功修复氯化乙烯污染场地的稳健方法。

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