Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid

The concept of phase condensation of larger size particles in a poly-dispersed magnetic fluid (also known as ferrofluid) is employed as a tool to investigate the interaction of nanoparticles with micro particles in magnetorheological (MR) fluid. Two different shapes iron micron sized particles are u...

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Main Authors: Zarana Laherisheth, Kinnari Parekh, R. V. Upadhyay
Format: Article
Language:English
Published: AIP Publishing LLC 2017-02-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4975635
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spelling doaj-2681a92e9df8405aaccb7072f1f85aea2020-11-25T01:01:09ZengAIP Publishing LLCAIP Advances2158-32262017-02-0172025206025206-1010.1063/1.4975635094701ADVRole of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluidZarana Laherisheth0Kinnari Parekh1R. V. Upadhyay2P. D. Patel Institute of Applied Sciences, Charotar University of Science and Technology, CHARUSAT-Campus, Changa 388 421, IndiaK. C. Patel Research & Development Centre, Charotar University of Science and Technology, CHARUSAT-Campus, Changa 388421, IndiaP. D. Patel Institute of Applied Sciences, Charotar University of Science and Technology, CHARUSAT-Campus, Changa 388 421, IndiaThe concept of phase condensation of larger size particles in a poly-dispersed magnetic fluid (also known as ferrofluid) is employed as a tool to investigate the interaction of nanoparticles with micro particles in magnetorheological (MR) fluid. Two different shapes iron micron sized particles are used in MR fluid formulation: spherical and flake shaped. The magnetic fluid is used as a base carrier having three different magnetic nanoparticles volume fraction (0.2%, 0.6% and 0.8%). The study suggests that the interaction of magnetic nanoparticles with micron sized particle depends on the geometrical shape of the particle as well as surface roughness. The sedimentation ratio of flake shaped MR fluid increases with nanoparticles volume fractions while for spherical particles it remains virtually constant. The supernatant fluid analysis suggests that, larger sized particle fraction from magnetic fluid are attached to the surface of micron sized flake shape particles, which results in reduction of sliding friction between the particles and small sized fraction clouds around the flake. The atomic force microscopy results suggest that the surface roughness of flake shape particles are nearly 5 times higher than spherical shape particles. The role of these two different interactions is reflected in the sedimentation ratio of MR fluid.http://dx.doi.org/10.1063/1.4975635
collection DOAJ
language English
format Article
sources DOAJ
author Zarana Laherisheth
Kinnari Parekh
R. V. Upadhyay
spellingShingle Zarana Laherisheth
Kinnari Parekh
R. V. Upadhyay
Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
AIP Advances
author_facet Zarana Laherisheth
Kinnari Parekh
R. V. Upadhyay
author_sort Zarana Laherisheth
title Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
title_short Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
title_full Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
title_fullStr Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
title_full_unstemmed Role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
title_sort role of inter-particle force between micro and nano magnetic particles on the stability of magnetorheological fluid
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2017-02-01
description The concept of phase condensation of larger size particles in a poly-dispersed magnetic fluid (also known as ferrofluid) is employed as a tool to investigate the interaction of nanoparticles with micro particles in magnetorheological (MR) fluid. Two different shapes iron micron sized particles are used in MR fluid formulation: spherical and flake shaped. The magnetic fluid is used as a base carrier having three different magnetic nanoparticles volume fraction (0.2%, 0.6% and 0.8%). The study suggests that the interaction of magnetic nanoparticles with micron sized particle depends on the geometrical shape of the particle as well as surface roughness. The sedimentation ratio of flake shaped MR fluid increases with nanoparticles volume fractions while for spherical particles it remains virtually constant. The supernatant fluid analysis suggests that, larger sized particle fraction from magnetic fluid are attached to the surface of micron sized flake shape particles, which results in reduction of sliding friction between the particles and small sized fraction clouds around the flake. The atomic force microscopy results suggest that the surface roughness of flake shape particles are nearly 5 times higher than spherical shape particles. The role of these two different interactions is reflected in the sedimentation ratio of MR fluid.
url http://dx.doi.org/10.1063/1.4975635
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AT kinnariparekh roleofinterparticleforcebetweenmicroandnanomagneticparticlesonthestabilityofmagnetorheologicalfluid
AT rvupadhyay roleofinterparticleforcebetweenmicroandnanomagneticparticlesonthestabilityofmagnetorheologicalfluid
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