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首页> 外文期刊>Applied and Environmental Microbiology >Biotransformation of tetrachloroethylene to trichloroethylene, dichloroethylene, vinyl chloride, and carbon dioxide under methanogenic conditions.
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Biotransformation of tetrachloroethylene to trichloroethylene, dichloroethylene, vinyl chloride, and carbon dioxide under methanogenic conditions.

机译:在产甲烷条件下将四氯乙烯生物转化为三氯乙烯,二氯乙烯,氯乙烯和二氧化碳。

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Tetrachloroethylene (PCE) and trichloroethylene (TCE), common industrial solvents, are among the most frequent contaminants found in groundwater supplies. Due to the potential toxicity and carcinogenicity of chlorinated ethylenes, knowledge about their transformation potential is important in evaluating their environmental fate. The results of this study confirm that PCE can be transformed by reductive dehalogenation to TCE, dichloroethylene, and vinyl chloride (VC) under anaerobic conditions. In addition, [14C]PCE was at least partially mineralized to CO2. Mineralization of 24% of the PCE occurred in a continuous-flow fixed-film methanogenic column with a liquid detention time of 4 days. TCE was the major intermediate formed, but traces of dichloroethylene isomers and VC were also found. In other column studies under a different set of methanogenic conditions, nearly quantitative conversion of PCE to VC was found. These studies clearly demonstrate that TCE and VC are major intermediates in PCE biotransformation under anaerobic conditions and suggest that potential exists for the complete mineralization of PCE to CO2 in soil and aquifer systems and in biological treatment processes.
机译:常见的工业溶剂四氯乙烯(PCE)和三氯乙烯(TCE)是地下水供应中最常见的污染物之一。由于氯化乙烯的潜在毒性和致癌性,因此了解其转化潜力对于评估其环境命运至关重要。这项研究的结果证实,在厌氧条件下,PCE可以通过还原性脱卤作用转化为TCE,二氯乙烯和氯乙烯(VC)。此外,[14C] PCE至少部分矿化为CO2。在连续流动固定膜产甲烷色谱柱中,液体滞留时间为4天,发生了24%的PCE矿化。 TCE是形成的主要中间体,但也发现了痕量的二氯乙烯异构体和VC。在其他一组产甲烷条件下的柱研究中,发现PCE几乎转化为VC。这些研究清楚地表明,TCE和VC是厌氧条件下PCE生物转化的主要中间体,并暗示了在土壤和含水层系统以及生物处理过程中PCE完全矿化为CO2的潜力。

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