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    Percolation Threshold of AOT Microemulsions with n-Alkyl Acids as Additives Prediction by Means of Artificial Neural Networks

    Autor: 
    Moldes, Óscar A
    ;
    Astray, Gonzalo
    ;
    Cid, Antonio
    ;
    Iglesias-Otero, Manuel A
    ;
    Morales, Jorge
    ;
    Mejuto, Juan C
    Fecha: 
    09/2013
    Palabra clave: 
    microemulsion; electrical percolation; prediction; artificial neural network (ANN); AOT; organic acid; JCR; Scopus
    Revista / editorial: 
    Tenside Surfactants Detergents
    Tipo de Ítem: 
    Articulo Revista Indexada
    URI: 
    https://reunir.unir.net/handle/123456789/5566
    DOI: 
    https://doi.org/10.3139/113.110268
    Dirección web: 
    http://www.hanser-elibrary.com/doi/abs/10.3139/113.110268?journalCode=tsd
    Resumen:
    Different artificial neural networks architectures have been assayed to predict percolation temperature of AOT/iC(8)/H2O microemulsions in the presence of n-alkyl acids with a chain length between 0 and 24 carbons, using a multilayer perceptron with five easy-acquired entrance variables (number of carbons, log P, length of the hydrocarbon chain, plc, and acid concentration). The evaluation of the neural networks was carried out by means of RMSE and IDP, resulting that the architecture with better results consists in five input neurons, two middle layers (with five and ten neuron respectively) and one output neuron. Results prove that Artificial Neural Networks are a useful tool elaborating models to predict percolation temperature of microemulsion systems in the presence of additives.
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