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Artificial intelligence based model for optimization of COD removal efficiency of an up-flow anaerobic sludge blanket reactor in the saline wastewater treatment

机译:基于人工智能的基于盐水废水处理中的膨胀厌氧污泥橡胶反应器COD去除效率的模型

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摘要

The complex non-linear behavior presented in the biological treatment of wastewater requires an accurate model to predict the system performance. This study evaluates the effectiveness of an artificial intelligence (AI) model, based on the combination of artificial neural networks (ANNs) and genetic algorithms (GAs), to find the optimum performance of an up-flow anaerobic sludge blanket reactor (UASB) for saline wastewater treatment. Chemical oxygen demand (COD) removal was predicted using conductivity, organic loading rate (OLR) and temperature as input variables. The ANN model was built from experimental data and performance was assessed through the maximum mean absolute percentage error (= 9.226%) computed from the measured and model predicted values of the COD. Accordingly, the ANN model was used as a fitness function in a GA to find the best operational condition. In the worst case scenario (low energy requirements, high OLR usage and high salinity) this model guaranteed COD removal efficiency values above 70%. This result is consistent and was validated experimentally, confirming that this ANN-GA model can be used as a tool to achieve the best performance of a UASB reactor with the minimum requirement of energy for saline wastewater treatment.
机译:在废水的生物处理中呈现的复杂非线性行为需要准确的模型来预测系统性能。本研究评估了人工智能(AI)模型的有效性,基于人工神经网络(ANNS)和遗传算法(气体)的组合,找到了隆起的厌氧污泥毯反应器(UASB)的最佳性能盐水废水处理。使用电导率,有机加载速率(OLR)和温度作为输入变量预测化学需氧量(COD)去除。 ANN模型由实验数据构建,通过从测量的测量和模型预测值计算的最大平均绝对百分比误差(= 9.226%)来评估性能。因此,ANN模型用作GA中的适合功能,以找到最佳的操作条件。在最坏的情况下(低能量要求,高OLR使用和高盐度)此型号保证COD去除效率值高于70%。该结果是一致的并且通过实验验证,确认该Ann-GA型号可用作实现UASB反应器的最佳能量要求的盐水废水处理的最佳性能的工具。

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