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Development of a wetland constructed for the treatment of groundwater contaminated by chlorinated ethenes

机译:开发湿地以处理被氯化乙烯污染的地下水

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An upward-flowing subsurface supply wetland designed to mimic natural wetland systems shows evidence of sequential dechlorination of PCE in contaminated groundwater.An inherent microzonation in the rhizosphere of plants that extend roots over 1 m into the soil apparently sustains communities of microbes responsible for both anaerobic and aerobic activity.PCE dechlorination and production of methane near the bottom of the soil column suggest that anaerobic or reducing conditions exist there,but core samples indicate roots may create oxygen-enriched zones throughout the depth of the wetland.Methane is available to stimulate oxidative co-metabolism via methane monooxygenases and those enzymes may be responsible for removal of trichloroethene (TCE) microzones where higher levels of oxygen is supplied by abundant roots.Samples taken during different seasons show elevated degradation during the warmer months but mid-winter samples show significant removal of PCE and its breakdown products.Herbaceous plants derived from local wetland species grew well and did not appear to be visibly harmed by the PCE or its by-products.Core sampling of the root system indicates that more roots are found when a mixture of wetland plant species are planted.Bench-scale experiments with 14C labeled TCE show that wetland plants can also play a role in bioremediation by venting volatiles to the atmosphere.We suggest that minor modifications such as increased organic matter in the soil may lead to more rapid establishment of wetland performance.
机译:向上流动的地下供应湿地旨在模拟自然湿地系统,显示了受污染的地下水中PCE连续脱氯的证据。植物根际中固有的微区带,其根部延伸到土壤中超过1 m,显然维持了负责这两种厌氧菌的微生物群落PCE脱氯和土壤柱底部附近甲烷的产生表明那里存在厌氧或还原条件,但核心样品表明根可能在整个湿地的深度形成富氧区。甲烷可用于刺激氧化通过甲烷单加氧酶进行的共代谢和这些酶可能负责去除三氯乙烯(TCE)微区,在这些微区中,大量根系提供了更高的氧气含量。在不同季节采集的样品显示在温暖的月份中降解加剧,但在冬季中期样品中显示出明显的降解去除PCE及其故障产品来自当地湿地物种的树状植物生长良好,似乎没有受到PCE或其副产品的明显损害。根系的核心采样表明,种植多种湿地植物物种时会发现更多的根。用14C标记的三氯乙烯(TCE)进行的大规模实验表明,湿地植物也可以通过将挥发物排放到大气中来在生物修复中发挥作用。

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