Issue 17, 2012

A simplified model for analyzing the flow behavior of electrorheological fluids containing silicananoparticle-decorated polyaniline nanofibers

Abstract

A new rheological model was applied to the analysis of the electrorheological behavior of a fluid containing silica nanoparticle-decorated polyaniline nanofibers. The model's predictions were compared with the experimental data, revealing that the proposed model correctly predicted the shear stress behavior both quantitatively and qualitatively. The shear stress data of the electrorheological fluid showing aligned fibers' structural reformation as a function of the shear rate agreed well with the new model which required fewer parameters than the CCJ (Cho–Choi–Jhon) model. The static yield stress was found to be quadratically dependent on the field strength, in agreement with the predictions of the polarization model. A scaling function was used to model the yield stress behavior of the electrorheological fluid over a range of electric fields, and it correctly predicted the static yield stress behavior both quantitatively and qualitatively.

Graphical abstract: A simplified model for analyzing the flow behavior of electrorheological fluids containing silica nanoparticle-decorated polyaniline nanofibers

Article information

Article type
Paper
Submitted
30 Nov 2011
Accepted
02 Feb 2012
First published
08 Mar 2012

Soft Matter, 2012,8, 4659-4663

A simplified model for analyzing the flow behavior of electrorheological fluids containing silica nanoparticle-decorated polyaniline nanofibers

Y. P. Seo, H. J. Choi and Y. Seo, Soft Matter, 2012, 8, 4659 DOI: 10.1039/C2SM07275K

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