首页> 外文期刊>Journal of Contaminant Hydrology >Assessment of chlorinated ethenes degradation after field scale injection of activated carbon and bioamendments: Application of isotopic and microbial analyses
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Assessment of chlorinated ethenes degradation after field scale injection of activated carbon and bioamendments: Application of isotopic and microbial analyses

机译:氯化种族的评估脱晶术后活性炭和生物制碳的降解:同位素和微生物分析的应用

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Over the last decade, activated carbon amendments have successfully been applied to retain chlorinated ethene subsurface contamination. The concept of this remediation technology is that activated carbon and bioamendments are injected into aquifer systems to enhance biodegradation. While the scientific basis of the technology is established, there is a need for methods to characterise and quantify the biodegradation at field scale. In this study, an integrated approach was applied to assess in situ biodegradation after the establishment of a cross sectional treatment zone in a TCE plume. The amendments were liquid activated carbon, hydrogen release donors and a Dehalococcoides containing culture. The integrated approach included spatial and temporal evaluations on flow and transport, redox conditions, contaminant concentrations, biomarker abundance and compound-specific stable isotopes. This is the first study applying isotopic and microbial techniques to assess field scale biodegradation enhanced by liquid activated carbon and bioamendments. The injection enhanced biodegradation from TCE to primarily cis-DCE. The Dehalococcoides abundances facilitated characterisation of critical zones with insufficient degradation and possible explanations. A conceptual model of isotopic data together with distribution and transport information improved process understanding; the degradation of TCE was insufficient to counteract the contaminant input by inflow into the treatment zone and desorption from the sediment. The integrated approach could be used to document and characterise the in situ degradation, and the isotopic and microbial data provided process understanding that could not have been gathered from conventional monitoring tools. However, quantification of degradation through isotope data was restricted for TCE due to isotope masking effects. The combination of various monitoring tools, applied frequently at high-resolution, with system understanding, was essential for the assessment of biodegradation in the complex, non-stationary system. Furthermore, the investigations revealed prospects for future research, which should focus on monitoring contaminant fate and microbial distribution on the sediment and the activated carbon.
机译:在过去十年中,已成功地应用了活性炭修正案以保留氯化乙烯地下污染。该修复技术的概念是将活性炭和生物分解成含水层系统,以增强生物降解。虽然建立了该技术的科学依据,但需要对现场规模进行表征和量化生物降解的方法。在这项研究中,应用了综合方法来在TCE羽流中建立横截面处理区域之后评估原位生物降解。该修正案是液体活性炭,氢释放供体和含有培养的去卤化合物。综合方法包括对流动和运输,氧化还原条件,污染物浓度,生物标志物丰度和复合特异性稳定同位素的空间和时间评估。这是第一种应用同位素和微生物技术来评估液体活性炭和生物液体增强的场比例生物降解。注射增强了来自TCE的生物降解,主要是CIS-DCE。脱卤素丰富的促进临界区的表征具有不足的降解和可能的解释。同位素数据的概念模型以及分布和运输信息改进了过程理解; TCE的降解不足以将流入的污染物抵消进入治疗区并从沉淀物中解吸。综合方法可用于记录和表征原位劣化,并且同位素和微生物数据提供了无法从传统监测工具收集的过程理解。然而,由于同位素掩蔽效应,通过同位素数据的量化通过同位素数据进行量化。在高分辨率高分辨率下频繁应用的各种监测工具的组合对于评估复杂的非静止系统中的生物降解至关重要。此外,调查揭示了未来研究的前景,这应该专注于监测污染物命运和微生物分布对沉积物和活性炭。

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