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Development of an optimum control software package for coagulant dosing process in water purification system

机译:净水系统混凝剂投加过程最佳控制软件包的开发

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In the water purification plant raw water is promptly purified by injection of chemicals. The amount of chemicals is directly related to water qualities such as turbidity, temperature, pH and alkalinity, However, the process of chemical reaction to the turbidity is not yet to be clarified. Since the process of coagulant dosage has no feedback signal, the amount of chemicals can not be calculated from water quality data which were sensed from the plant. Accordingly, it has to be judged and determined by jar-test data which were performed by skilled operators. In this paper, an optimum control S/W package was developed using jar-test results in order to predict the optimum dosage of coagulant, PAC(Polymerized Aluminium Chloride). Considering the relations to the reaction of coagulation and flocculation; six independent variables (turbidity, temperature, pH, alkalinity of raw water, PAC feed rate, turbidity in flocculation) are used in developing a neural network model for coagulant dosing process in water purification system. This model is utilized to predict an optimum coagulant dosage which enables one to minimize turbidity of water in flocculator. The efficacy of the proposed control scheme was examined by the field test.
机译:在净水厂中,可通过注入化学药品迅速净化原水。化学物质的含量与浊度,温度,pH值和碱度等水质直接相关,但是,对浊度的化学反应过程尚不清楚。由于凝结剂的添加过程没有反馈信号,因此无法根据从工厂感测到的水质数据来计算化学药品的量。因此,必须由熟练的操作员进行的震击试验数据来判断和确定。在本文中,使用广口瓶测试结果开发了一种最佳的控制S / W包装,以便预测凝结剂PAC(聚合氯化铝)的最佳剂量。考虑与凝结和絮凝反应的关系;六个独立变量(浊度,温度,pH,原水碱度,PAC进料速率,絮凝中的浊度)用于开发净水系统中凝结剂投加过程的神经网络模型。该模型用于预测最佳混凝剂剂量,该剂量可使絮凝器中水的浊度最小化。通过现场测试检查了所提出的控制方案的有效性。

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