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  Steady azimuthal flow field induced by a rotating sphere near a rigid disk or inside a gap between two coaxially positioned rigid disks

Daddi-Moussa-Ider, A., Sprenger, A. R., Richter, T., Löwen, H., & Menzel, A. M. (2021). Steady azimuthal flow field induced by a rotating sphere near a rigid disk or inside a gap between two coaxially positioned rigid disks. Physics of Fluids, 33, 082011. doi:10.1063/5.0062688.

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Daddi-Moussa-Ider, Abdallah1, Author                 
Sprenger, Alexander R., Author
Richter, Thomas, Author
Löwen, Hartmut, Author
Menzel, Andreas M., Author
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1Department of Living Matter Physics, Max Planck Institute for Dynamics and Self-Organization, Max Planck Society, ou_2570692              

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 Abstract: Geometric confinements play an important role in many physical and biological processes and significantly affect the rheology and behavior of colloidal suspensions at low Reynolds numbers. On the basis of the linear Stokes equations, we investigate theoretically and computationally the viscous azimuthal flow induced by the slow rotation of a small spherical particle located in the vicinity of a rigid no-slip disk or inside a gap between two coaxially positioned rigid no-slip disks of the same radius. We formulate the solution of the hydrodynamic problem as a mixed-boundary-value problem in the whole fluid domain, which we subsequently transform into a system of dual integral equations. Near a stationary disk, we show that the resulting integral equation can be reduced into an elementary Abel integral equation that admits a unique analytical solution. Between two coaxially positioned stationary disks, we demonstrate that the flow problem can be transformed into a system of two Fredholm integral equations of the first kind. The latter are solved by means of numerical approaches. Using our solution, we further investigate the effect of the disks on the slow rotational motion of a colloidal particle and provide expressions of the hydrodynamic mobility as a function of the system geometry. We compare our results with corresponding finite-element simulations and observe very good agreement.

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 Dates: 2021
 Publication Status: Issued
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 Identifiers: DOI: 10.1063/5.0062688
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Title: Physics of Fluids
Source Genre: Journal
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Pages: - Volume / Issue: 33 Sequence Number: - Start / End Page: 082011 Identifier: ISSN: 1070-6631
ISSN: 1089-7666