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Modeling and optimization of chromium adsorption onto clay using response surface methodology, artificial neural network, and equilibrium isotherm models

机译:使用响应面方法,人工神经网络和平衡等温线模型对铬吸附在粘土上的建模和优化

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Response surface methodology (RSM) was used for optimization of the adsorbent dosage, initial solution pH, initial ion concentration, and contact time in removal of Cr (III) with local nanoclay. The adsorption process was modeled by RSM and artificial neural network (ANN). The process was done in batch mode by central composite design (CCD) and the same design was applied for training ANN. The optimum condition was determined to be 500mg/L for adsorbent dosage, initial pH of 5, initial chromium concentration of 180mg/L and 20 min of contact time. In these conditions q(RSM) = 238.7780mg/g and q(ANN) = 237.5152mg/g which indicate removal percentage of 72.45% and 72.07%, respectively. RRSM2=0.9784 and RANN2=0.9834 indicate that the two models can predict the adsorption of Cr3+ properly. The two parameter Langmuir, Freundlich, Dubinin-Radushkevich (D-R), Temkin and three parameter Redlich-Peterson (R-PT), Sips and Toth isotherm models were applied to equilibrium data by minimizing the sum of squared errors (SSE), sum of the absolute errors (SAE), average relative errors (ARE), Hybrid fractional error function (HYBRID), Marquardt's percent standard deviation (MPSD), and nonlinear chi-square test error functions. The results showed that the HYBRID error function gives the lowest value and the R-PT model fits the data better than other isotherm models.
机译:响应表面方法(RSM)用于优化吸附剂剂量,初始溶液pH,初始离子浓度以及与局部纳米粘土去除Cr(III)的接触时间。通过RSM和人工神经网络(ANN)对吸附过程进行建模。该过程由中央复合设计(CCD)以批处理方式完成,并且相同的设计也用于训练ANN。确定最佳条件为吸附剂剂量为500mg / L,初始pH为5,初始铬浓度为180mg / L,接触时间为20分钟。在这些条件下,q(RSM)= 238.7780mg / g和q(ANN)= 237.5152mg / g,分别表明去除率分别为72.45%和72.07%。 RRSM2 = 0.9784和RANN2 = 0.9834表明这两个模型可以正确预测Cr3 +的吸附。通过最小化平方误差之和(SSE),最小和绝对误差(SAE),平均相对误差(ARE),混合分数误差函数(HYBRID),马夸特百分标准偏差(MPSD)和非线性卡方检验误差函数。结果表明,HYBRID误差函数给出了最小值,R-PT模型比其他等温线模型更适合数据。

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