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首页> 外文期刊>Environmental Modelling & Software >Coupled data-driven and process-based model for fluorescent dissolved organic matter prediction in a shallow subtropical reservoir
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Coupled data-driven and process-based model for fluorescent dissolved organic matter prediction in a shallow subtropical reservoir

机译:耦合数据驱动和基于过程的浅亚热带储层中的荧光溶解有机物质预测模型

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摘要

Monitoring and understanding the dissolved organic matter (DOM) cycle in a drinking water reservoir is crucial to water authorities, since most water treatment practices aim to remove DOM to prevent the formation of potentially harmful disinfection by-products. A vertical profiling system (VPS) installed in reservoirs can continuously detect the fluorescent DOM (fDOM) and determine the fDOM transport process. Although the VPS can interprete fDOM concentrations, water treatment operators still collect and rely upon DOM datasets that are manually sampled throughout the year. A long-term historical database provides an opportunity to develop a three-dimensional fDOM prediction model. In the present study, we collected and analysed VPS and sampling data and developed and assessed an innovative coupled data-driven and process-based model. These models were able to forecast future fDOM in both temperate and extreme weather conditions. Modelling scenario analysis concluded that deeper layers of the reservoir as well as areas close to the riverine zone had higher fDOM concentrations than any other zones during storm events. Simulated fDOM can be a proxy for dissolved organic carbon concentration. The model also determined that inflow creeks were predominant fDOM sources during storm events and continuing winds transported the fDOM from bottom to surface water layers. This study has implications for reservoir and water treatment plant operators seeking to gain a better understanding of the DOM cycle in a reservoir and to more efficiently manage DOM removal.
机译:监测和了解饮用水储层中溶解的有机物(DOM)循环对水当局至关重要,因为大多数水处理实践旨在去除DOM以防止形成潜在有害的消毒副产品。安装在储存器中的垂直分析系统(VPS)可以连续检测荧光DOM(FDOM)并确定FDOM运输过程。虽然VPS可以将FDOM浓度倾销,但水处理运营商仍然收集并依赖于全年手动抽样的DOM数据集。长期历史数据库提供了开发三维FDOM预测模型的机会。在本研究中,我们收集和分析了VPS和采样数据,并开发并评估了创新的耦合数据驱动和基于过程的模型。这些模型能够在温带和极端天气条件下预测未来的FDOM。建模情景分析得出结论,水库的深层层以及靠近河流区的区域具有更高的FDOM浓度,而不是风暴事件中的任何其他区域。模拟FDOM可以是溶解有机碳浓度的代理。该模型还确定流入小溪在风暴事件期间是主要的FDOM来源,并且持续的风将FTOM从底部传送到地表水层。本研究对水库和水处理厂的影响有影响,寻求更好地了解水库中的DOM周期,并更有效地管理DOM去除。

著录项

  • 来源
    《Environmental Modelling & Software 》 |2021年第7期| 105053.1-105053.16| 共16页
  • 作者单位

    Griffith Univ Sch Engn & Built Environm Southport Qld 4222 Australia|Griffith Univ Cities Res Inst Southport Qld 4222 Australia;

    Griffith Univ Sch Engn & Built Environm Southport Qld 4222 Australia|Griffith Univ Cities Res Inst Southport Qld 4222 Australia;

    Griffith Univ Sch Engn & Built Environm Southport Qld 4222 Australia|Griffith Univ Cities Res Inst Southport Qld 4222 Australia;

    Griffith Univ Sch Engn & Built Environm Southport Qld 4222 Australia|Griffith Univ Cities Res Inst Southport Qld 4222 Australia;

    Seqwater Catchment Sci 117 Brisbane St Ipswich Qld 4305 Australia;

  • 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

    Dissolved organic matter; Vertical profiling system; Transport processes; Mixing processes;

    机译:溶解有机物;垂直分析系统;运输过程;混合过程;

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