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Chemometrics quality assessment of wastewater treatment plant effluents using physicochemical parameters and UV absorption measurements

机译:使用理化参数和紫外线吸收测量法对废水处理厂废水进行化学计量学质量评估

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摘要

Chemometric techniques like Principal Component Analysis (PCA) and Partial Least Squares Regression (PLS) are used to explore, analyze and model relationships among different water quality parameters in wastewater treatment plants (WWTP). Different data sets generated by laboratory analysis and by an automatic multi-parametric monitoring system with a new designed optical device have been investigated for temporal variations on water quality parameters measured in the water influent and effluent of a WWTP over different time scales. The obtained results allowed the discovery of the more important relationships among the monitored parameters and of their cyclic dependence on time (daily, monthly and annual cycles) and on different plant management procedures. This study intended also the modeling and prediction of concentrations of several water components and parameters, especially relevant for water quality assessment, such as Dissolved Organic Matter (DOM), Total Organic Carbon (TOC) nitrate, detergent, and phenol concentrations. PLS models were built to correlate target concentrations of these constituents with UV spectra measured in samples collected at (1) laboratory conditions (in synthetic water mixtures); and at (2) WWTP conditions (in real water samples from the plant). Using synthetic water mixtures, specific wavelengths were selected with the aim to establish simple and reliable prediction models, which gave good relative predictions with errors of around 3-4% for nitrates, detergent and phenols concentrations and of around 15% for the DOM in external validation. In the case of nitrate and TOC concentrations modeling in real water samples from the effluent of the WWTP using the reduced spectral data set, results were also promising with low prediction errors (less than 20%).
机译:使用化学计量学技术(例如主成分分析(PCA)和偏最小二乘回归(PLS))来探索,分析和建模废水处理厂(WWTP)中不同水质参数之间的关系。对于由污水处理厂的进水口和出水口测得的水质参数随时间变化的时间变化,已经研究了实验室分析和带有新设计的光学设备的自动多参数监测系统生成的不同数据集。获得的结果可以发现受监控参数之间更重要的关系,以及它们与时间(每天,每月和每年的周期)以及不同工厂管理程序之间的周期性依赖关系。这项研究还旨在对几种水成分和参数的浓度进行建模和预测,特别是与水质评估有关的,例如溶解有机物(DOM),总有机碳(TOC)硝酸盐,去污剂和苯酚浓度。建立PLS模型以将这些成分的目标浓度与在(1)实验室条件下(在合成水混合物中)收集的样品中测得的UV光谱相关联;在(2)污水处理厂条件下(来自工厂的真实水样)。使用合成水混合物,选择特定的波长,目的是建立简单而可靠的预测模型,该模型可提供良好的相对预测,硝酸盐,去污剂和酚的浓度误差约为3-4%,外部DOM的误差约为15%验证。在使用减少的光谱数据集对污水处理厂废水中真实水样中的硝酸盐和总有机碳浓度建模的情况下,结果也有望以较低的预测误差(小于20%)实现。

著录项

  • 来源
    《Journal of Environmental Management 》 |2014年第1期| 33-44| 共12页
  • 作者单位

    IDAEA-CSIC, Jordi Girona 18-26, 08034 Barcelona, Spain;

    Catalan Institute for Water Research (ICRA) H2O Building, Scientific and Technological Park of the University of Girona, Emili Grahit 101, E-17003 Girona, Spain;

    Catalan Institute for Water Research (ICRA) H2O Building, Scientific and Technological Park of the University of Girona, Emili Grahit 101, E-17003 Girona, Spain;

    IDAEA-CSIC, Jordi Girona 18-26, 08034 Barcelona, Spain,Catalan Institute for Water Research (ICRA) H2O Building, Scientific and Technological Park of the University of Girona, Emili Grahit 101, E-17003 Girona, Spain;

    Adasa Sistemas S.A.U., Barcelona, Spain;

    Adasa Sistemas S.A.U., Barcelona, Spain;

    TRARGISA, Girona, Spain;

    IDAEA-CSIC, Jordi Girona 18-26, 08034 Barcelona, Spain;

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

    Chemometrics; PCA; PLS; Wastewater; Water quality; UVVIS;

    机译:化学计量学PCA;PLS;废水;水质;紫外可见;

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