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Treatment of Textile Wastewater by Nanofiltration Membranes: A Neural Network Approach

机译:纳滤膜处理纺织废水的神经网络方法

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Textile industries represent an important environmental problem due to their high water consumption. In order to economically water consumption, wastewater treatment is necessary for water reuse in the textile industries. Predicting the performance of nanofiltration membrane, as an effective separation process, is necessary for the design and depiction of process. Prediction of the rejection of degradable components is especially important. In this work, an Artificial Neural Network (ANN) is used to predict the rejection of Chemical Oxygen Demand (COD) in a cross-flow nanofiltration membrane at textile wastewater effluent stream. Rejections are predicted as a function of feed pressure and permeate flux with cross flow velocity. ANN predictions of the COD rejection are compared with experimental results obtained using two different nanofiltration membranes (NF-90 and DK-5). The results show a good agreement between experimental data and the output from the neural network simulation.
机译:纺织工业由于其高耗水量而成为一个重要的环境问题。为了经济地用水,废水处理对于纺织工业中的水回用是必需的。预测纳滤膜的性能,作为有效的分离工艺,对于工艺的设计和描述是必要的。预测可降解成分的排斥率尤其重要。在这项工作中,使用人工神经网络(ANN)来预测纺织废水废水中错流纳滤膜中化学需氧量(COD)的排阻。根据进料压力和渗透通量与横流速度的关系,预测出回弹率。 ANN对COD排斥的预测与使用两种不同的纳滤膜(NF-90和DK-5)获得的实验结果进行了比较。结果表明,实验数据与神经网络仿真的输出具有良好的一致性。

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