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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Development of experimental design approach and ANN-based models for determination of Cr(VI) ions uptake rate from aqueous solution onto the solid biodiesel waste residue
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Development of experimental design approach and ANN-based models for determination of Cr(VI) ions uptake rate from aqueous solution onto the solid biodiesel waste residue

机译:实验设计方法和基于ANN的模型的开发,用于确定水溶液中Cr(VI)离子对固体生物柴油废渣的吸收率

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摘要

In the present work, the evaluation capacities of two optimization methodologies such as RSM and ANN were employed and compared for predication of Cr(VI) uptake rate using defatted pongamia oil cake (DPOC) in both batch and column mode. The influence of operating parameters was investigated through a central composite design (CCD) of RSM using Design Expert 8.0.7.1 software. The same data was fed as input in ANN to obtain a trained the multilayer feed-forward networks back-propagation algorithm using MATLAB. The performance of the developed ANN models were compared with RSM mathematical models for Cr(VI) uptake rate in terms of the coefficient of determination (R~2), root mean square error (RMSE) and absolute average deviation (AAD). The estimated values confirm that ANN predominates RSM representing the superiority of a trained ANN models over RSM models in order to capture the non-linear behavior of the given system.
机译:在目前的工作中,采用了两种优化方法(如RSM和ANN)的评估能力,并比较了使用脱脂浮游油饼(DPOC)在批处理和柱模式下对Cr(VI)吸收率的预测。使用Design Expert 8.0.7.1软件通过RSM的中央复合设计(CCD)研究了运行参数的影响。相同的数据作为ANN中的输入,以使用MATLAB获得经过训练的多层前馈网络反向传播算法。根据确定系数(R〜2),均方根误差(RMSE)和绝对平均偏差(AAD),将开发的ANN模型的性能与RSM数学模型的Cr(VI)吸收率进行比较。估计值证实,ANN代表了经过训练的ANN模型优于RSM模型的RSM,以便捕获给定系统的非线性行为。

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