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Real-Time Optimal Valve Operation and Booster Disinfection for Water Quality in Water Distribution Systems

机译:供水系统中水质的实时最佳阀门操作和增压消毒

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Historically, a water distribution system's (WDS) hydraulic performance has been the primary operational concern. Over the past two decades, however, more attention has been paid to water quality behavior in WDS and today, water quality level is an equally important issue for many water utilities. In most cases, maintaining disinfectant levels is usually of interest to avoid the bacteria regrowth and to protect against the potential cross-contamination events. However, disinfectants, such as chlorine, decay over time and produce potentially harmful disinfectant by-products when they react with organic material in the water. Therefore, maintaining a minimum chlorine residual requirement throughout the WDS is a complex but important task. When online booster disinfection is combined with source disinfection, it has been shown that the total chlorine dosage can be reduced while maintaining minimum chlorine residuals across the system. Here, optimal valve operation has been combined with booster disinfection to improve the system water quality. Valves can be operated to alter the flow distribution in the network; prevent the isolation of water; and direct disinfectant laden water to locations where it is needed. A real-time optimal valve operation and booster disinfection problem is formulated as a single objective optimization model. The objective is to minimize chlorine injection mass at sources or to minimize excessive chlorine concentrations at withdrawal points while maintaining minimum chlorine concentrations and pressures throughout the system. The problem is solved using a genetic algorithm (GA). The application to a medium-sized WDS shows that optimal operation of existing valves combined with booster disinfection can improve water quality while requiring lower chlorine doses and resulting in little significant pressure reduction. Also, real-time operations can adapt to the temporal and spatial variations of system demands.
机译:从历史上看,配水系统(WDS)的水力性能一直是主要的操作问题。然而,在过去的二十年中,WDS中的水质行为得到了更多的关注,如今,水质水平对于许多自来水公司来说是同样重要的问题。在大多数情况下,通常需要保持消毒剂水平以避免细菌再生并防止潜在的交叉污染事件。但是,诸如氯的消毒剂会随着时间的流逝而衰减,并在与水中的有机物质反应时产生潜在有害的消毒副产物。因此,在整个WDS中保持最低的氯残留量是一项复杂而重要的任务。当在线加强消毒与源消毒相结合时,已证明可以减少总氯剂量,同时在整个系统中保持最小的氯残留量。在此,最佳阀门操作与增压消毒相结合,以改善系统水质。可以通过操作阀门来改变网络中的流量分配。防止水隔离;并将装有消毒剂的水引导到需要的地方。实时最佳阀门操作和增压消毒问题被表述为一个单一目标优化模型。目的是使源头的氯气注入量最小化,或使抽出点的过量氯气浓度最小,同时在整个系统中保持最小的氯气浓度和压力。使用遗传算法(GA)解决了该问题。在中型WDS上的应用表明,现有阀门的最佳操作与增压消毒相结合,可以改善水质,同时所需的氯剂量更低,并且几乎没有明显的压力降低。而且,实时操作可以适应系统需求的时间和空间变化。

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