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Review of algorithms for modeling metal distribution equilibria in liquid-liquid extraction processes

机译:液-液萃取过程中金属分布平衡建模算法的综述

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This work focuses on general guidelines to be considered for application of least-squares routines and artificial neural networks (ANN) in the estimation of metal distribution equilibria in liquid-liquid extraction process. The goal of the procedure in the statistical method is to find the values of the equilibrium constants (K_i) for the reactions involved in the metal extraction which minimizes the differences between experimental distribution coefficient (D_(exp)) and theoretical distribution coefficients according to the mechanism proposed (D_(theor)). In the first part of the article, results obtained with the most frequently routine reported in the bibliography are compared with those obtained using the algorithms previously discussed. In the second part, the main features of a single back-propagation neural network for the same purpose are discussed, and the results obtained are compared with those obtained with the classical methods.
机译:这项工作集中于在最小二乘子程序和人工神经网络(ANN)在液-液萃取过程中金属分布平衡的估计中应考虑的一般准则。统计方法中该程序的目标是找到金属萃取中涉及的反应的平衡常数(K_i)的值,从而根据实验方法最小化实验分布系数(D_(exp))和理论分布系数之间的差异。建议的机制(D_(theor))。在本文的第一部分中,将参考书目中报告的最常用例程获得的结果与使用先前讨论的算法获得的结果进行比较。在第二部分中,讨论了出于相同目的的单个反向传播神经网络的主要特征,并将获得的结果与经典方法获得的结果进行了比较。

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