Print Email Facebook Twitter Effect of hydrodynamic slip on the rotational dynamics of a thin Brownian platelet in shear flow Title Effect of hydrodynamic slip on the rotational dynamics of a thin Brownian platelet in shear flow Author Kamal, Catherine (Queen Mary University of London) Gravelle, Simon (Queen Mary University of London) Botto, L. (TU Delft Complex Fluid Processing) Date 2021 Abstract The classical theory by Jeffery predicts that, in the absence of Brownian fluctuations, a thin rigid platelet rotates continuously in a shear flow, performing periodic orbits. However, a stable orientation is possible if the surface of the platelet displays a hydrodynamic slip length comparable to or larger than the thickness of the platelet. In this article, by solving the Fokker-Plank equation for the orientation distribution function and corroborating the analysis with boundary integral simulations, we quantify a threshold Péclet number, above which such alignment occurs. We found that for smaller than, but larger than a second threshold, a regime emerges where Brownian fluctuations are strong enough to break the platelet's alignment and induce rotations, but with a period of rotation that depends on the value of. For below this second threshold, slip has a negligible effect on the orientational dynamics. We use these thresholds to classify the dynamics of graphene-like nanoplatelets for realistic values of and apply our results to the quantification of the orientational contribution to the effective viscosity of a dilute suspension of nanoplatelets with slip. We find a non-monotonic variation of this term, with a minimum occurring when the slip length is comparable to the thickness of the particle. Subject Key words suspensionsparticle/fluid flow To reference this document use: http://resolver.tudelft.nl/uuid:47e4024f-7a44-4fd1-801a-d1f2830ce2ee DOI https://doi.org/10.1017/jfm.2021.327 ISSN 0022-1120 Source Journal of Fluid Mechanics, 919 Part of collection Institutional Repository Document type journal article Rights © 2021 Catherine Kamal, Simon Gravelle, L. Botto Files PDF effect_of_hydrodynamic_sl ... r_flow.pdf 2.57 MB Close viewer /islandora/object/uuid:47e4024f-7a44-4fd1-801a-d1f2830ce2ee/datastream/OBJ/view