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首页> 外文期刊>Chemical Engineering Communications >Ozonation Kinetics of Acid Red 27 Azo Dye: A Novel Methodology Based on Artificial Neural Networks for the Determination of Dynamic Kinetic Constants in Bubble Column Reactors
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Ozonation Kinetics of Acid Red 27 Azo Dye: A Novel Methodology Based on Artificial Neural Networks for the Determination of Dynamic Kinetic Constants in Bubble Column Reactors

机译:酸性红27偶氮染料的臭氧化动力学:基于人工神经网络的鼓泡塔反应器动态动力学常数测定的新方法

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摘要

A procedure for the determination of initial parameter values for quadratically convergent optimization methods is proposed using artificial neural networks coupled with a non-stationary gas-liquid reaction model. The evaluation of the regression and the mean squared error coefficients of the neural network during its training process allow the parameter sensitivity analysis of the gas-liquid model. This analysis examines how many and which parameters of the model will be available depending on the observable information of the mathematical model. Numerical simulations show the relevance of the initial values and the non-linearity of the objective function. The methodology has been applied to the study of the reaction of the azo-dye Acid Red 27 with ozone in acid media. The rate constant is in the order of (1.6 +/- 0.1) 10(3)M(-1)s(-1) under the experimental conditions.
机译:提出了使用人工神经网络结合非平稳气液反应模型确定二次收敛优化方法初始参数值的程序。在训练过程中对神经网络的回归和均方误差系数进行评估,可以对气液模型进行参数敏感性分析。此分析根据数学模型的可观察信息检查模型的数量以及哪些参数可用。数值模拟表明了初始值和目标函数的非线性之间的关系。该方法已用于研究偶氮染料酸性红27与臭氧在酸性介质中的反应。在实验条件下,速率常数约为(1.6 +/- 0.1)10(3)M(-1)s(-1)。

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