Repository of Research and Investigative Information

Repository of Research and Investigative Information

Shahid Sadoughi University of Medical Sciences

Using an artificial neural network for the evaluation of the parameters controlling PVA/chitosan electrospun nanofibers diameter

(2015) Using an artificial neural network for the evaluation of the parameters controlling PVA/chitosan electrospun nanofibers diameter. E-Polymers. pp. 127-138.

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Official URL: https://www.scopus.com/inward/record.uri?eid=2-s2....

Abstract

The purpose of this study was to investigate the validity of an artificial neural network (ANN) method in the prediction of nanofiber diameter to assess the parameters involved in controlling fiber form and thickness. A mixture of polymers including poly(vinyl alcohol) (PVA) and chitosan (CS) at different ratios was chosen as the nanofiber base material. The various samples of nanofibers were fabricated as training and testing datasets for ANN modeling. Different networks of ANN were designed to achieve the purposes of this study. The best network had three hidden layers with 8, 16 and 5 nodes in each layer, respectively. The mean squared error and correlation coefficient between the observed and the predicted diameter of the fibers in the selected model were equal to 0.09008 and 0.93866, respectively, proving the efficacy of the ANN technique in the prediction process. Finally, three-dimensional graphs of the electrospinning parameters involved and nanofiber diameter were plotted to scrutinize the implications. © 2015 by De Gruyter 2015.

Item Type: Article
Keywords: Electrospinning; Mean square error; Models; Neural networks; Polyvinyl alcohols; Spinning (fibers), ANN; Correlation coefficient; Electrospinning parameters; Electrospun nanofibers; Poly (vinyl alcohol) (PVA); PVA/Chitosan; Three dimensional graphs; Training and testing, Nanofibers
Page Range: pp. 127-138
Journal or Publication Title: E-Polymers
Volume: 15
Number: 2
Publisher: European Polymer Federation
Depositing User: ms soheila Bazm
URI: http://eprints.ssu.ac.ir/id/eprint/9396

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