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Modeling Isosteric Heat of Soya Bean for Desorption Energy Estimation Using Neural Network Approach Chilean J. Agric. Res.
Amiri Chayjan,Reza; Esna-Ashari,Mahmood.
Sorption isotherm of soya bean (Glycine max (L.) Merr.) was obtained by the dynamic experimental method. Artificial Neural Networks (ANNs) were used for modeling soya bean equilibrium moisture content (EMC). Thermodynamic equations and trained ANN for prediction of two thermodynamic properties of net isosteric heat and entropy of soya bean were utilized. The ANN models were better compared with mathematical models. In this study, the isosteric heat and entropy of sorption of soya bean were separately predicted by two power models as a EMC function. Predictive power of the models was high (R² ≈ 0.99). At the moisture content above 11% (dry basis, db), isosteric heat and entropy of sorption of soya bean were smoothly decreased, while they were...
Tipo: Journal article Palavras-chave: Back propagation; Entropy; Isosteric heat; Sorption isotherm; Soya bean.
Ano: 2010 URL: http://www.scielo.cl/scielo.php?script=sci_arttext&pid=S0718-58392010000400012
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