Abstract
Particle suspensions in non-Newtonian liquid matrices are frequently encountered in nature and industrial applications. We here study the Taylor–Couette flow (TCF) of semidilute spherical particle suspensions (volume fraction
$\leq 0.1$
) in viscoelastic, constant-viscosity liquids (Boger fluids). We describe the influence of particle load on various flow transitions encountered in TCF of such fluids, and on the nature of these transitions. Particle addition is found to delay the onset of first- and second-order transitions, thus stabilising laminar flows. It also renders them hysteretic, suggesting an effect on the nature of bifurcations. The transition to elasto-inertial turbulence (EIT) is shown to be delayed by the presence of particles, and the features of EIT altered, with preserved spatio-temporal large scales. These results imply that particle loading and viscoelasticity, which are known to destabilise the flow when considered separately, can on the other hand compete with one another and ultimately stabilise the flow when considered together.
Funder
Engineering and Physical Sciences Research Council
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics
Cited by
4 articles.
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1. Elastically modulated wavy vortex flow;Journal of Non-Newtonian Fluid Mechanics;2024-08
2. Coherent structures of elastoinertial instabilities in Taylor–Couette flows;Journal of Fluid Mechanics;2024-05-07
3. Experimental insights into elasto-inertial transitions in Taylor–Couette flows;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2023-01-30
4. Taylor–Couette flow of hard-sphere suspensions: overview of current understanding;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2023-01-30