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首页> 外文期刊>Journal of water supply >Intelligent data mining of vertical profiler readings to predict manganese concentrations in water reservoirs
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Intelligent data mining of vertical profiler readings to predict manganese concentrations in water reservoirs

机译:垂直轮廓仪读数的智能数据挖掘,可预测水库中的锰浓度

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Continuously monitoring and managing manganese (Mn) concentrations in drinking water supply reservoirs are paramount for water suppliers since high soluble Mn loads lead to discoloration of potable water. Despite the Mn level currently being manually sampled throughout the year, in subtropical monomictic lakes such as Hinze Dam, critical Mn concentrations in the epilimnion, where the water is drawn, are typically recorded only during winter lake circulation. A vertical profiling system (VPS) installed can continuously collect physical parameters that determine the transport process of Mn in the lake. Therefore, a long-term historical database gives opportunities for the development of a Mn prediction model. In the present study, VPS and sampling data were collected and analysed, and prediction models applying nonlinear regression techniques and data-driven equations were developed and assessed. They were able to accurately forecast future Mn concentrations from 1 to 7 days ahead and in particular the critical peak concentrations in the epilimnion during the lake destratification. The model also displays the probabilities of the Mn to exceed certain key-thresholds, thus assisting operators in Mn treatment decision-making. Such a tool is very beneficial for the water supplier, since costly and time-consuming water samplings for monitoring Mn concentrations can be avoided, thus relying only on the real time VPS-based model outputs.
机译:对饮用水供应商而言,连续监测和管理饮用水储罐中的锰(Mn)浓度至关重要,因为高可溶性Mn含量会导致饮用水变色。尽管目前全年都在全年手动采样锰水平,但在亚热带单峰湖泊(如Hinze大坝)中,通常仅在冬季湖泊环流期间才记录抽取水的上覆层中的临界Mn浓度。安装的垂直轮廓分析系统(VPS)可以连续收集确定Mn在湖泊中的传输过程的物理参数。因此,长期的历史数据库为锰预测模型的发展提供了机会。在本研究中,收集并分析了VPS和采样数据,并开发和评估了应用非线性回归技术和数据驱动方程的预测模型。他们能够准确地预测未来1到7天的未来Mn浓度,尤其是在湖泊去层化过程中epi石中的关键峰值浓度。该模型还显示锰超过某些关键阈值的概率,从而帮助操作员进行锰处理决策。这种工具对水供应商非常有利,因为可以避免用于监测Mn浓度的昂贵且费时的水采样,因此仅依赖基于VPS的实时模型输出。

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