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Removal mechanisms and kinetics of trace tetracycline by two types of activated sludge treating freshwater sewage and saline sewage

机译:两种活性污泥处理淡水污水和含盐污水的去除机理和动力学。

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摘要

Understanding the removal mechanisms and kinetics of trace tetracycline by activated sludge is critical to both evaluation of tetracycline elimination in sewage treatment plants and risk assessment/management of tetracycline released to soil environment due to the application of biosolids as fertilizer. Adsorption is found to be the primary removal mechanism while biodegradation, volatilization, and hydrolysis can be ignored in this study. Adsorption kinetics was well described by pseudo-second-order model. Faster adsorption rate (k2 = 2.04 × 10−2 g min−1 μg−1) and greater adsorption capacity (qe = 38.8 μg g−1) were found in activated sludge treating freshwater sewage. Different adsorption rate and adsorption capacity resulted from chemical properties of sewage matrix rather than activated sludge surface characteristics. The decrease of tetracycline adsorption in saline sewage was mainly due to Mg2+ which significantly reduced adsorption distribution coefficient (Kd) from 12,990 ± 260 to 4,690 ± 180 L kg−1. Species-specific adsorption distribution coefficients followed the order of . Contribution of zwitterionic tetracycline to the overall adsorption was >90 % in the actual pH range in aeration tank. Adsorption of tetracycline in a wide range of temperature (10 to 35 °C) followed the Freundlich adsorption isotherm well.Electronic supplementary materialThe online version of this article (doi:10.1007/s11356-012-1213-5) contains supplementary material, which is available to authorized users.
机译:了解活性污泥对痕量四环素的去除机理和动力学对于评估污水处理厂中四环素的消除以及由于使用生物固体作为肥料释放到土壤环境中的四环素的风险评估/管理都至关重要。发现吸附是主要的去除机理,而在这项研究中可以忽略生物降解,挥发和水解。吸附动力学很好地描述了拟二阶模型。更快的吸附速率(k2 = 2.04×10 −2 g min -1 μg -1 )和更大的吸附容量(qe =38.8μgg在处理淡水污水的活性污泥中发现了 -1 。不同的吸附速率和吸附能力是由于污水基质的化学性质而不是活性污泥表面特性所致。盐溶液中四环素的吸附减少主要是由于Mg 2 + 将吸附分配系数(Kd)从12,990±260显着降低到4,690±180 L kg -1 。特定物种的吸附分布系数遵循的顺序。在曝气池的实际pH范围内,两性离子四环素对总吸附的贡献大于90%。 Freundlich吸附等温线在很宽的温度范围(10至35°C)下吸附四环素电子补充材料本文的在线版本(doi:10.1007 / s11356-012-1213-5)包含补充材料可供授权用户使用。

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