Statistical Analysis of Adsorption Experimental Data – the Influence of the Selection of Error Function on Optimized Isotherm Parameters

D. Myśliwiec, Stanisław Chibowsk
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Abstract

Abstract Experimental adsorption data were analysed by fitting them to nonlinear forms of Langmuir and Freundlich isotherms. Optimization of the parameters was performed by nonlinear least square regression with different forms of error function, namely: vertical, horizontal, orthogonal, normal and squared normal. The results showed, that isotherm parameters may be affected by the selection of error function and that they are more sensitive to its’ form in case of Langmuir equation. We did not find any correlation between a type of the function and performance of the regression – procedure requires optimization for every experimental dataset and every model being fitted.
吸附实验数据的统计分析——误差函数的选取对优化等温线参数的影响
通过拟合Langmuir和Freundlich等温线的非线性形式,对实验吸附数据进行了分析。采用非线性最小二乘法对参数进行优化,误差函数分别为垂直、水平、正交、正态和平方正态。结果表明,等温线参数可能受到误差函数选择的影响,对于Langmuir方程,误差函数的形式对等温线参数更为敏感。我们没有发现函数类型和回归性能之间的任何相关性-过程需要对每个实验数据集和每个拟合模型进行优化。
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