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Developing a Statistical Model to Improve Drinking Water Quality for Water Distribution System by Minimizing Heavy Metal Releases

机译:通过最大限度地减少重金属释放,开发统计模型提高水分配系统饮用水质量

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摘要

This paper proposes a novel statistical approach for blending source waters in a public water distribution system to improve water quality (WQ) by minimizing the release of heavy metals (HMR). Normally, introducing a new source changes the original balanced environment and causes adverse effects on the WQ in a water distribution system. One harmful consequence of blending source water is the release of heavy metals, including lead, copper and iron. Most HMR studies focus on the forecasting of unfavorable effects using precise and complicated nonlinear equations. This paper uses a statistical multiple objectives optimization, namely Multiple Source Waters Blending Optimization (MSWBO), to find optimal blending ratios of source waters for minimizing three HMRs in a water supply system. In this paper, three response surface equations are applied to describe the reaction kinetics of HMR, and three dual response surface equations are used to track the standard deviations of the three response surface equations. A weighted sum method is performed for the multi-objective optimization problem to minimize three HMRs simultaneously. Finally, the experimental data of a pilot distribution system is used in the proposed statistical approach to demonstrate the model’s applicability, computational efficiency, and robustness.
机译:本文提出了一种新的统计方法,用于通过最小化重金属(HMR)释放来改善水质(HMR)的水质(WQ)。通常,引入新来源改变原始平衡环境,并对水分配系统中的WQ产生不利影响。混合源水的一个有害后果是重金属的释放,包括铅,铜和铁。大多数HMR研究专注于使用精确和复杂的非线性方程来预测不利影响的预测。本文使用统计多目标优化,即多个源水的混合优化(MSWBO),以便为在供水系统中最小化三HMRS的源水域的最佳混合比。在本文中,应用了三个响应表面方程来描述HMR的反应动力学,并且使用三个双响应表面方程来跟踪三个响应表面方程的标准偏差。对多目标优化问题执行加权和方法,以同时最小化三个HMR。最后,在提议的统计方法中使用了试验系统的实验数据,以展示模型的适用性,计算效率和鲁棒性。

著录项

  • 作者

    Wei Peng; Rene Mayorga;

  • 作者单位
  • 年度 2018
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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