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神经网络模糊控制系统在监测废水处理和沼气生产中厌氧混合反应器的过程响应和控制中的应用。

Neural-fuzzy control system application for monitoring process response and control of anaerobic hybrid reactor in wastewater treatment and biogas production.

机构信息

Division of Biotechnology, School of Bioresources and Technology, King Mongkut's University of Technology Thonburi, Thakam, Bangkhuntien, Bangkok 10150, Thailand.

出版信息

J Environ Sci (China). 2010;22(12):1883-90. doi: 10.1016/s1001-0742(09)60334-x.

Abstract

Based on the developed neural-fuzzy control system for anaerobic hybrid reactor (AHR) in wastewater treatment and biogas production, the neural network with backpropagation algorithm for prediction of the variables pH, alkalinity (Alk) and total volatile acids (TVA) at present day time t was used as input data for the fuzzy logic to calculate the influent feed flow rate that was applied to control and monitor the process response at different operations in the initial, overload influent feeding and the recovery phases. In all three phases, this neural-fuzzy control system showed great potential to control AHR in high stability and performance and quick response. Although in the overloading operation phase II with two fold calculating influent flow rate together with a two fold organic loading rate (OLR), this control system had rapid response and was sensitive to the intended overload. When the influent feeding rate was followed by the calculation of control system in the initial operation phase I and the recovery operation phase III, it was found that the neural-fuzzy control system application was capable of controlling the AHR in a good manner with the pH close to 7, TVA/Alk < 0.4 and COD removal > 80% with biogas and methane yields at 0.45 and 0.30 m3/kg COD removed.

摘要

基于开发的用于废水处理和沼气生产的厌氧混合反应器 (AHR) 的神经模糊控制系统,使用具有反向传播算法的神经网络来预测当前时间 t 的变量 pH、碱度 (Alk) 和总挥发性酸 (TVA),作为模糊逻辑的输入数据来计算流入的进料流量,以控制和监测不同操作条件下的过程响应,包括初始阶段、过载进料阶段和恢复阶段。在所有三个阶段,该神经模糊控制系统都表现出了在高稳定性、性能和快速响应方面控制 AHR 的巨大潜力。尽管在具有两倍计算进料流量和两倍有机负荷率 (OLR) 的过载操作阶段 II 中,该控制系统具有快速响应能力并且对预期的过载敏感。当在初始操作阶段 I 和恢复操作阶段 III 中遵循控制系统的进料速率计算时,发现神经模糊控制系统应用能够以良好的方式控制 AHR,使 pH 值接近 7,TVA/Alk < 0.4,COD 去除率 > 80%,沼气和甲烷产率分别为 0.45 和 0.30 m3/kg COD 去除。

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