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Title: On the theory of magnetoviscous effect in magnetorheological suspensions
Authors: Zubarev, A.
Iskakova, L.
López-López, M. T.
Kuzhir, P.
Bossis, G.
Issue Date: 2014
Publisher: Society of Rheology
Citation: On the theory of magnetoviscous effect in magnetorheological suspensions / A. Zubarev, L. Iskakova, M. T. López-López, et al. — DOI 10.1122/1.4889902 // Journal of Rheology. — 2014. — Vol. 58. — Iss. 6. — P. 1673-1692.
Abstract: A theoretical model of magnetoviscous effect in a suspension of nonBrownian linearly magnetizable particles is suggested. A simple shear flow in the presence of an external magnetic field aligned with the velocity gradient is considered. Under the action of the applied field, the particles are supposed to form dense highly elongated droplike aggregates. Two different scenarios of the aggregates' destruction under shearing forces are considered, namely, a "bulk" destruction of aggregates into pieces and an "erosive" destruction connected to the rupture of individual particles from the aggregate surface. Both models are based on a balance of forces acting either on the whole aggregate or on individual particles. The two approaches lead to qualitatively different Mason number (Ma) behaviors of the magnetic suspensions: The suspension viscosity scales as either Ma-2/3for the bulk destruction of aggregates or Ma-4/5for the erosive destruction. In any case, we do not recover Bingham behavior (Ma-1) often predicted by chain models of the magneto- or electrorheology. Our theoretical results are discussed in view of comparison with existing theories and experimental results in the wide range of Mason numbers. © 2014 The Society of Rheology.
Access: info:eu-repo/semantics/openAccess
SCOPUS ID: 84907020120
PURE ID: 409917
ISSN: 1486055
DOI: 10.1122/1.4889902
Appears in Collections:Научные публикации, проиндексированные в SCOPUS и WoS CC

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