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Modeling of Biological Water and Wastewater Treatment Processes Using Artificial Neural Networks

机译:基于人工神经网络的生物废水处理过程建模

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摘要

A growing world population, unrelenting urbanization, increasing scarcity of good quality water resources, and rising fertilizer applications are the driving forces behind the accelerating upward trend in the use of efficient methods of water and wastewater treatment such as biological processes. Due to the complexity of the reactions in biological processes, a few studies have been performed involving the modeling of biological removal of water pollutants. Thus, the application of the artificial neural networks (ANNs) to predict the performance of the biological systems has been attempted. ANNs are computer-based systems that are designed to simulate the learning process of neurons in the human brain. One of the characteristics of modeling based on ANNs is that it does not require the mathematical description of the phenomena involved in the process. This review article describes the application of ANNs for modeling of biological water and wastewater treatment processes. Examples of early applications of ANNs in modeling and simulation of biological water and wastewater treatment processes in the presence of various microalgae, macroalgae, bacteria, microbes, yeasts, anaerobic sludge, aerated submerged biofilms, and submerged membrane bioreactors are reviewed.
机译:不断增长的世界人口,不懈的城市化进程,优质水资源的日益匮乏以及肥料的使用不断增加,是使用高效的水和废水处理方法(例如生物过程)加速上升趋势的驱动力。由于生物过程中反应的复杂性,已经进行了一些涉及对水污染物的生物去除建模的研究。因此,已经尝试将人工神经网络(ANN)应用于预测生物系统的性能。人工神经网络是基于计算机的系统,旨在模拟人脑中神经元的学习过程。基于人工神经网络的建模的特征之一是,它不需要对过程中涉及的现象进行数学描述。这篇综述文章描述了人工神经网络在生物水和废水处理过程建模中的应用。审查了人工神经网络在各种微藻,大型藻,细菌,微生物,酵母,厌氧污泥,曝气生物膜和曝气膜生物反应器存在下的建模和模拟中,在生物水和废水处理过程的建模和模拟中的早期应用实例。

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