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Xenobiotic removal efficiencies in wastewater treatment plants: Residence time distributions as a guiding principle for sampling strategies

机译:废水处理厂中异种生物的去除效率:停留时间分布作为采样策略的指导原则

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摘要

The effect of mixing regimes and residence time distribution (RTD) on solute transport in wastewater treatment plants (WWTPs) is well understood in environmental engineering. Nevertheless, it is frequently neglected in sampling design and data analysis for the investigation of polar xenobiotic removal efficiencies in WWTPs. Most studies on the latter use 24-h composite samples in influent and effluent. The effluent sampling period is often shifted by the mean hydraulic retention time assuming that this allows a total coverage of the influent load. However, this assumption disregards mixing regime characteristics as well as flow and concentration variability in evaluating xenobiotic removal performances and may consequently lead to biased estimates or even negative elimination efficiencies. The present study aims at developing a modeling approach to estimate xenobiotic removal efficiencies from monitoring data taking the hydraulic RTD in WWTPs into consideration. For this purpose, completely mixed tanks-in-series were applied to address hydraulic mixing regimes in a Luxembourg WWTP. Hydraulic calibration for this WWTP was performed using wastewater conductivity as a tracer. The RTD mixing approach was coupled with first-order biodegradation kinetics for xenobiotics covering three classes of biodegradability during aerobic treatment. Model simulations showed that a daily influent load is distributed over more than one day in the effluent. A 24-h sampling period with an optimal time offset between influent and effluent covers less than the half of the influent load in a dry weather scenario. According to RTD calculations, an optimized sampling strategy covering four consecutive measuring days in the influent would be necessary to estimate the full-scale elimination efficiencies with sufficient accuracy. Daily variations of influent flow and concentrations can substantially affect the reliability of these sampling results. Commonly reported negative removal efficiencies for xenobiotics might therefore be a consequence of biased sampling schemes. In this regard, the present study aims at contributing to bridge the gap between environmental chemistry and engineering practices.
机译:混合方案和停留时间分布(RTD)对废水处理厂(WWTPs)中的溶质运移的影响在环境工程领域已广为人知。然而,在污水处理厂中极性异物去除效率的研究中,在采样设计和数据分析中经常被忽略。后者的大多数研究都在进水和出水中使用24小时复合样品。假定可以完全覆盖进水负荷,出水采样时间通常会偏移平均水力停留时间。但是,该假设在评估异种生物去除性能时忽略了混合方案的特征以及流量和浓度的可变性,因此可能导致估计偏差甚至消除效率降低。本研究旨在开发一种建模方法,以通过考虑污水处理厂中的水力RTD的监测数据来估计异种生物去除效率。为此,在卢森堡污水处理厂中采用了串联的完全混合储罐来解决液压混合方式。使用废水电导率作为示踪剂,对该废水处理厂进行水力校准。 RTD混合方法与异源生物的一级生物降解动力学相结合,涵盖了好氧处理过程中的三类生物降解性。模型仿真表明,每天的进水负荷分布在废水中的一天以上。在干旱天气情况下,在进水口和出水口之间有最佳时间偏移的24小时采样周期不到进水负荷的一半。根据RTD计算,需要有一个涵盖进水口连续四个测量天的优化采样策略,以足够的精度估算满量程的消除效率。进水流量和浓度的每日变化会大大影响这些采样结果的可靠性。因此,通常报道的异种生物去除效率为负值可能是采样方案有偏见的结果。在这方面,本研究旨在缩小环境化学与工程实践之间的差距。

著录项

  • 来源
    《Water Research》 |2011年第18期|p.6152-6162|共11页
  • 作者单位

    Resource Center for Environmental Technologies (CRTE), CRP Henri Tudor, 66, rue de Luxembourg, 4221 Esch-sur-Alzette, Luxembourg;

    Resource Center for Environmental Technologies (CRTE), CRP Henri Tudor, 66, rue de Luxembourg, 4221 Esch-sur-Alzette, Luxembourg;

    Resource Center for Environmental Technologies (CRTE), CRP Henri Tudor, 66, rue de Luxembourg, 4221 Esch-sur-Alzette, Luxembourg;

    Hydromantis, Environmental Software Solutions, Inc., 1 James Street South, Suite #1601, Hamilton, ON, Canada LSP 4R5;

    Department of Analytical and Ecological Chemistry, University of Trier, Behringstr. 21, 54296 Trier, Germany;

    modelEAU, Departement de genie ciuil et de genie des eaux, Universite Laval, Quebec, QC, Canada G1V 0A6;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    hydraulic residence time; sampling; xenobiotics; conductivity; removal efficiency; optimal experimental design;

    机译:水力停留时间;采样;异生素电导率去除效率;最佳实验设计;
  • 入库时间 2022-08-17 13:48:28

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