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Advanced process control techniques for water treatment using artificial neural networks

机译:使用人工神经网络进行水处理的先进过程控制技术

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Virtually all water utilities are looking at improving the operation of their plants to keep control of costs and to meet stringent water quality regulations. Better process control and automation of the plants can help achieve these goals. However, traditional control techniques such as proportional-integral-derivative (PID) can be inadequate when automating certain water treatment processes such as turbidity, organics, or hardness removal in a clarification process. Advanced process control techniques are alternatives to mitigate this impediment. At the cornerstone of many advanced process control techniques is a model of the process being controlled, which can be developed using artificial neural networks (ANNs). This paper describes various advanced process control techniques, the potentially large role of ANN models in implementing these techniques, and issues and solutions when using ANN in a real-time control system.
机译:几乎所有自来水公司都在考虑改善其工厂的运营,以控制成本并满足严格的水质法规。工厂更好的过程控制和自动化可以帮助实现这些目标。但是,当使某些水处理过程(例如浊度,有机物或澄清过程中的硬度去除)自动化时,诸如比例积分微分(PID)之类的传统控制技术可能不足。先进的过程控制技术是减轻此障碍的替代方法。许多先进过程控制技术的基础是受控过程的模型,可以使用人工神经网络(ANN)对其进行开发。本文介绍了各种先进的过程控制技术,ANN模型在实现这些技术中的潜在重要作用,以及在实时控制系统中使用ANN时的问题和解决方案。

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