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Fuzzy Neural Network Model of 4-CBA Concentration for Industrial Purified Terephthalic Acid Oxidation Process

刘瑞兰苏宏业牟盛静贾涛陈渭泉褚健

2004Acta Scientiarum Naturalium Universitatis SunyatseniEnvironmental Science被引 1

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摘要

A fuzzy neural network (FNN) model is developed to predict the 4-CBA concentration of the oxidation unit in purified terephthalic acid process. Several technologies are used to deal with the process data before modeling.First,a set of preliminary input variables is selected according to prior knowledge and experience. Secondly,a method based on the maximum correlation coefficient is proposed to detect the dead time between the process variables and response variables. Finally, the fuzzy curve method is used to reduce the unimportant input variables.The simulation results based on industrial data show that the relative error range of the FNN model is narrower than that of the American Oil Company (AMOCO) model. Furthermore, the FNN model can predict the trend of the 4-CBA concentration more accurately.

引用本文(GB/T 7714)

刘瑞兰, 苏宏业, 牟盛静, 等. Fuzzy Neural Network Model of 4-CBA Concentration for Industrial Purified Terephthalic Acid Oxidation Process[J]. Acta Scientiarum Naturalium Universitatis Sunyatseni, 2004.

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