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Removal of atrazine in water by combination of activated carbon and dielectric barrier discharge

机译:活性炭和电介质阻挡层放电相结合去除水中的r去津

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Efficiency of modern wastewater treatment plants to remove or decompose persistent contaminants in low concentration is often insufficient to meet the demands imposed by governmental laws. Novel, efficient and cheap methods are required to address this global issue. We developed a new type of plasma reactor, in which atrazine decomposition by atmospheric dielectric barrier discharge (DBD) in dry air is combined with micropollutant adsorption on activated carbon textile and with extra bubbling of generated ozone. Investigation of reaction kinetics and by-product analysis shows that increasing input power with a factor 3.5 leads to deeper atrazine oxidation without significantly changing energy yield of atrazine removal. By-products of first and later generations are detected with HPLC-MS analysis in water and adsorbed on the activated carbon textile. Our reactor is compared in energy efficiency with reactors described in literature, showing that combination of plasma discharge with pollutant adsorption and ozone recycling is attractive for future applications of water treatment. (C) 2015 Elsevier B.V. All rights reserved.
机译:现代废水处理厂去除或分解低浓度持久性污染物的效率通常不足以满足政府法律的要求。需要新颖,高效且廉价的方法来解决这一全球问题。我们开发了一种新型的等离子体反应器,该方法将干燥空气中大气介电阻挡放电(DBD)中的at去津分解与活性炭织物上的微污染物吸附以及产生的臭氧额外起泡结合在一起。对反应动力学和副产物分析的研究表明,将输入功率提高3.5倍会导致更深的at去津氧化,而不会显着改变去除at去津的能量收率。在水中通过HPLC-MS分析检测第一代和后代的副产物,并将其吸附在活性炭织物上。我们的反应堆在能源效率上与文献中描述的反应堆进行了比较,表明等离子体排放与污染物吸附和臭氧循环的结合对于水处理的未来应用具有吸引力。 (C)2015 Elsevier B.V.保留所有权利。

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