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Migration of non-Brownian particles localized inside sheared droplets

Title
Migration of non-Brownian particles localized inside sheared droplets
Type
Article in International Scientific Journal
Year
2022
Authors
Van Ammel, H
(Author)
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Ferreira, J
(Author)
FEUP
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Kruitwagen, A
(Author)
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Fransen, S
(Author)
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Moldenaers, P
(Author)
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Kuhn, S
(Author)
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Cardinaels, R
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Journal
Vol. 156
ISSN: 0301-9322
Publisher: Elsevier
Indexing
Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
Publicação em Scopus Scopus - 0 Citations
Other information
Authenticus ID: P-00X-0WD
Abstract (EN): The migration of non-Brownian particles inside a droplet subjected to shear flow is investigated. The viscosity ratio, particle concentration, particle to droplet size ratio and capillary number are systematically varied. It was observed that particles migrate in the vorticity direction either towards or away from the equatorial plane. The main factor determining the migration direction is the viscosity ratio. The particle concentration and applied capillary number have no influence on the equilibrium distribution and only affect the time necessary to reach this distribution. In order to identify the flow profile, both velocity and shear rate magnitudes to which the particles inside the droplet are subjected, are numerically simulated using the Volume-of-Fluid method in a particle-free droplet/matrix system. The numerical predictions of the flow are used to evaluate the presence of possible driving mechanisms for cross-streamline particle motion, such as particle inertia and shear rate gradi-ents. Depending on the conditions, the simulations reveal significant differences in the streamline profiles and shear rate gradients within the droplet. The observed steady state particle distributions can partially be explained by shear-induced migration towards zones of low shear rates and/or low streamline curvature. However, in complex flows, such as inside a deformed droplet, different migration mechanisms can occur simultaneously. Hence, confinement inside the droplet and potential secondary flows may also play a role.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 19
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