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Hybrid fuzzy neural network for diagnosis - Application to the anaerobic treatment of wine distillery wastewater in a fluidized bed reactor

机译:混合模糊神经网络诊断-流化床反应器在酿酒废水厌氧处理中的应用。

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摘要

In this paper, we present a hybrid approach that uses both fuzzy logic and artificial neural networks for online detection and analysis of problems occurring in a 120 liter anaerobic digestion fluidized bed reactor for the treatment of wine distillery wastewater. The raw data available on the process (i.e., pH, temperature, recirculation flow rate, input flow rate and gas flow rate) are preprocessed using fuzzy logic to build a vector of features (i.e., a pattern vector). This feature vector is classified into a prespecified category (i.e., a class) which is a state of the system, according to discrimination fuzzy rules. An artificial neural network is then used to classify the process states and to identify the faulty or dangerous ones. This approach was developed to handle in real time problems such as, for example, foam forming, sudden changes in the effluent to be treated (due to a change in concentration), pipe clogging (due to struvite formation) or bed temperature regulation (due to improper setting of the control parameters).
机译:在本文中,我们提出一种使用模糊逻辑和人工神经网络的混合方法,用于在线检测和分析在120升厌氧消化流化床反应器中用于处理酒厂废水的问题。使用模糊逻辑对过程中可用的原始数据(即pH,温度,再循环流速,输入流速和气体流速)进行预处理,以构建特征向量(即模式向量)。根据判别模糊规则,将该特征向量分类为作为系统状态的预定类别(即一类)。然后使用人工神经网络对过程状态进行分类,并识别故障或危险状态。开发这种方法是为了实时处理诸如泡沫形成,待处理废水的突然变化(由于浓度变化),管道堵塞(由于鸟粪石形成)或床温调节(由于设置不正确的控制参数)。

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