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Solar Photocatalytic Degradation of Organic Contaminants in Landfill Leachate Using TiO 2 Nanoparticles by RSM and ANN

机译:RSM和ANN使用TiO 2纳米粒子垃圾填埋渗滤液中有机污染物的太阳能光催化降解

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In the present study, artificial neural network (ANN) and response surface methodology (RSM) models were used to investigate the heterogeneous photocatalysis performance in removal of chemical oxygen demand (COD) from landfill leachate using compound parabolic collector. Effect of the three parameters, i.e. pH, catalyst dosage and irradiation time were studied for COD removal efficiency and these parameters are optimized by the RSM. The optimum values of pH 5, the dosage of 0.75 g/L and irradiation time of 100 minutes is capable to remove 32.19% of COD from the leachate. A good agreement is shown by the analysis of variance for the regression coefficient R 2 for predicted value (0.92268) and adjusted value (0.9776). The proposed RSM and ANN model R 2 values were found to be 0.9882 and 0.9974 respectively, which confirms the ideality of RSM and ANN. The results also confirm that the input and output data from RSM could be appropriate to build the ANN model. Further BOD 5 /COD ratio is studied for the biodegradability of leachate and it was found that increase of biodegradability value from 0.17 to 0.47 was at pH 3, catalyst dosage of 1 g/L and irradiation time of 150 minutes.
机译:在本研究中,人工神经网络(ANN)和响应面方法(RSM)模型用于研究异质光催化性能,以使用复合抛物线收集器从垃圾填埋场渗滤液中去除化学需氧量(COD)。三种参数的效果,即研究了COD去除效率的pH,催化剂剂量和照射时间,并通过RSM优化这些参数。 pH 5的最佳值,0.75g / L的剂量和100分钟的照射时间能够从渗滤液中去除32.19%的鳕鱼。通过对预测值(0.9268)和调整值(0.9776)的回归系数R 2的差异来分析良好的一致性。所提出的RSM和ANN模型R 2值分别为0.9882和0.9974,这证实了RSM和ANN的理想性。结果还确认RSM的输入和输出数据可能适合构建ANN模型。研究了浸出物的生物降解性的进一步BOD 5 / COD比率,发现从0.17至0.47的生物降解性值的增加在pH 3,催化剂剂量为1g / L和150分钟的辐照时间。

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