Bubbly and Buoyant Particle-Laden Turbulent Flows
arXiv:2005.13774 · doi:10.1146/annurev-conmatphys-031119-050637
Abstract
Fluid turbulence is commonly associated with stronger drag, greater heat transfer, and more efficient mixing than in laminar flows. In many natural and industrial settings, turbulent liquid flows contain suspensions of dispersed bubbles and light particles. Recently, much attention has been devoted to understanding the behavior and underlying physics of such flows by use of both experiments and high-resolution direct numerical simulations. This review summarizes our present understanding of various phenomenological aspects of bubbly and buoyant particle-laden turbulent flows. We begin by discussing different dynamical regimes, including those of crossing trajectories and wake-induced oscillations of rising particles, and regimes in which bubbles and particles preferentially accumulate near walls or within vortical structures. We then address how certain paradigmatic turbulent flows, such as homogeneous isotropic turbulence, channel flow, Taylor-Couette turbulence, and thermally driven turbulence, are modified by the presence of these dispersed bubbles and buoyant particles. We end with a list of summary points and future research questions.
29 pages, 14 figures
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- Water entry of spheres into a rotating liquid
- How do the finite-size particles modify the drag in Taylor-Couette turbulent flow
- Recent developments of turbulent emulsions in Taylor-Couette flow
- Taylor dispersion of bubble swarms rising in quiescent liquid
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- Wake instability of a fixed spherical droplet with a high drop-to-fluid viscosity ratio
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