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Performance evaluation and modeling of a submerged membrane bioreactor treating combined municipal and industrial wastewater using radial basis function artificial neural networks

机译:径向基函数人工神经网络对淹没式生物反应器处理市政和工业废水的性能评估和建模

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摘要

Treatment process models are efficient tools to assure proper operation and better control of wastewater treatment systems. The current research was an effort to evaluate performance of a submerged membrane bioreactor (SMBR) treating combined municipal and industrial wastewater and to simulate effluent quality parameters of the SMBR using a radial basis function artificial neural network (RBFANN). The results showed that the treatment efficiencies increase and hydraulic retention time (HRT) decreases for combined wastewater compared with municipal and industrial wastewaters. The BOD, COD, NH4+N and total phosphorous (TP) removal efficiencies for combined wastewater at HRT of 7 hours were 96.9%, 96%, 96.7% and 92%, respectively. As desirable criteria for treating wastewater, the TBOD/TP ratio increased, the BOD and COD concentrations decreased to 700 and 1000 mg/L, respectively and the BOD/COD ratio was about 0.5 for combined wastewater. The training procedures of the RBFANN models were successful for all predicted components. The train and test models showed an almost perfect match between the experimental and predicted values of effluent BOD, COD, NH4+N and TP. The coefficient of determination (R2) values were higher than 0.98 and root mean squared error (RMSE) values did not exceed 7% for train and test models.
机译:处理过程模型是确保废水处理系统正常运行和更好控制的有效工具。当前的研究是努力评估水下膜生物反应器(SMBR)处理市政和工业废水的性能,并使用径向基函数人工神经网络(RBFANN)来模拟SMBR的出水水质参数。结果表明,与城市和工业废水相比,混合废水的处理效率提高,水力停留时间(HRT)降低。 BOD,COD,<数学xmlns:mml =“ http://www.w3.org/1998/Math/MathML” id =“ M2”溢出=“ scroll”> N H 4 + -< / mo> N 和在7个小时的HRT下联合废水的总磷(TP)去除效率分别为96.9%,96%,96.7%和92% 。作为处理废水的理想标准,TBOD / TP比增加,BOD和COD浓度分别降至700和1000 mg / L,合并废水的BOD / COD比约为0.5。 RBFANN模型的训练过程对于所有预测的组件都是成功的。训练模型和测试模型显示出废水BOD,COD的实验值与预测值之间几乎完美匹配, N H 4 + - N 和TP。训练模型和测试模型的确定系数(R 2 )值均高于0.98,并且均方根误差(RMSE)值不超过7%。

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