Electrorheological properties of suspensions prepared from polythiophene conductive polymer

Electrorheological (ER) fluids are typically composed of polarizable particles dispersed in a non-conducting fluid. Upon the application of an electric field, chain-like or fibrillar aggregates of the suspended particles are oriented along the direction of the electric field, thereby inducing viscoe...

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Main Authors: Datchanee Chotpattananont, Anuvat Sirivat
Format: Conference Proceeding
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/62220
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spelling th-cmuir.6653943832-622202018-09-11T09:23:47Z Electrorheological properties of suspensions prepared from polythiophene conductive polymer Datchanee Chotpattananont Anuvat Sirivat Engineering Electrorheological (ER) fluids are typically composed of polarizable particles dispersed in a non-conducting fluid. Upon the application of an electric field, chain-like or fibrillar aggregates of the suspended particles are oriented along the direction of the electric field, thereby inducing viscoelasticity and a drastic increase in viscosity. In our study, Poly(3-thiophene acetic acid), PTAA, has been developed for using as ER material. The rheological properties of this PTAA suspension upon the application of electric field were investigated under various deformations; oscillatory shear flow, steady shear, and creep. We found that PTAA based ER fluid exhibited viscoelastic behavior and showed the excellent responses under an applied electric field. Moreover, the ER response of this PTAA fluid was amplified with increases in electric field strength, particle concentration, and particle conductivity. Under the oscillatory shear, the dynamic moduli, G' and G", increased dramatically by 10 orders of magnitude, when the field strength was increased to 2 kV/mm. The suspensions exhibited a transition from fluid-like to solid-like behavior as the field strength increased. While under steady shear flow, the yield stress increased with electric field strength, E, and particle volume fraction, (φ, according to a scaling law of the form, τy Eoφ. Furthermore, the creep curves of this ER fluid consisted of both elastic and viscous responses and this fluid exhibits partially elastic recovery after the removal of applied stress. The creep properties strongly depended on the magnitude of an applied stress. Copyright © 2005 by ASME. 2018-09-11T09:23:47Z 2018-09-11T09:23:47Z 2005-01-01 Conference Proceeding 10716939 2-s2.0-33645685732 10.1115/IMECE2005-79491 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=33645685732&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/62220
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Engineering
spellingShingle Engineering
Datchanee Chotpattananont
Anuvat Sirivat
Electrorheological properties of suspensions prepared from polythiophene conductive polymer
description Electrorheological (ER) fluids are typically composed of polarizable particles dispersed in a non-conducting fluid. Upon the application of an electric field, chain-like or fibrillar aggregates of the suspended particles are oriented along the direction of the electric field, thereby inducing viscoelasticity and a drastic increase in viscosity. In our study, Poly(3-thiophene acetic acid), PTAA, has been developed for using as ER material. The rheological properties of this PTAA suspension upon the application of electric field were investigated under various deformations; oscillatory shear flow, steady shear, and creep. We found that PTAA based ER fluid exhibited viscoelastic behavior and showed the excellent responses under an applied electric field. Moreover, the ER response of this PTAA fluid was amplified with increases in electric field strength, particle concentration, and particle conductivity. Under the oscillatory shear, the dynamic moduli, G' and G", increased dramatically by 10 orders of magnitude, when the field strength was increased to 2 kV/mm. The suspensions exhibited a transition from fluid-like to solid-like behavior as the field strength increased. While under steady shear flow, the yield stress increased with electric field strength, E, and particle volume fraction, (φ, according to a scaling law of the form, τy Eoφ. Furthermore, the creep curves of this ER fluid consisted of both elastic and viscous responses and this fluid exhibits partially elastic recovery after the removal of applied stress. The creep properties strongly depended on the magnitude of an applied stress. Copyright © 2005 by ASME.
format Conference Proceeding
author Datchanee Chotpattananont
Anuvat Sirivat
author_facet Datchanee Chotpattananont
Anuvat Sirivat
author_sort Datchanee Chotpattananont
title Electrorheological properties of suspensions prepared from polythiophene conductive polymer
title_short Electrorheological properties of suspensions prepared from polythiophene conductive polymer
title_full Electrorheological properties of suspensions prepared from polythiophene conductive polymer
title_fullStr Electrorheological properties of suspensions prepared from polythiophene conductive polymer
title_full_unstemmed Electrorheological properties of suspensions prepared from polythiophene conductive polymer
title_sort electrorheological properties of suspensions prepared from polythiophene conductive polymer
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=33645685732&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/62220
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