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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Holdup prediction in inverse fluidization using non-Newtonian pseudoplastic liquids: Empirical correlation and ANN modeling
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Holdup prediction in inverse fluidization using non-Newtonian pseudoplastic liquids: Empirical correlation and ANN modeling

机译:使用非牛顿拟塑性液体进行逆流化过程中的持留量预测:经验相关和ANN建模

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摘要

The bed expansion characteristics in inverse fluidization using non-Newtonian liquids are reported. Experiments have been carried out using single and binary systems of four different polymeric solids and four different nonNewtonian pseudoplastic liquids in two different columns. Empirical correlation has been developed to determine the bed expansion characteristics as a function of physical and dynamic variables of the system. A multilayer perceptron trained with backpropagation and Levenberg Marquardt algorithm have been used for the Artificial Neural Network (ANN) analysis. Four different standard transfer functions in a single hidden layer are used. The ANN model with Levenberg Marquardt algorithm with transfer function 2 having 12 processing elements in hidden layer gives good predictability of the bed height. Statistical analysis indicates that both the empirical correlation and the ANN prediction give acceptable results. (C) 2014 Elsevier B.V. All rights reserved.
机译:报道了使用非牛顿液体进行逆流化时的床膨胀特性。已经在两个不同的色谱柱中使用四种不同的聚合物固体和四种不同的非牛顿假塑性液体的单一和二元系统进行了实验。已经开发了经验相关性来确定床膨胀特性作为系统物理和动态变量的函数。经过反向传播训练和Levenberg Marquardt算法训练的多层感知器已用于人工神经网络(ANN)分析。在单个隐藏层中使用了四个不同的标准传递函数。具有Levenberg Marquardt算法的ANN模型具有在隐藏层中具有12个处理元素的传递函数2,可以很好地预测床高。统计分析表明,经验相关性和ANN预测都给出了可接受的结果。 (C)2014 Elsevier B.V.保留所有权利。

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