Bulletin of the American Physical Society
71st Annual Meeting of the APS Division of Fluid Dynamics
Volume 63, Number 13
Sunday–Tuesday, November 18–20, 2018; Atlanta, Georgia
Session L37: Particle-Turbulence Interaction II
4:05 PM–6:41 PM,
Monday, November 19, 2018
Georgia World Congress Center
Room: B409
Chair: Babak Shotorban, University of Alabama, Huntsville
Abstract ID: BAPS.2018.DFD.L37.9
Abstract: L37.00009 : Dispersion of air bubbles in isotropic turbulence
5:49 PM–6:02 PM
Presenter:
Varghese Mathai
(Univ of Twente, Brown University)
Authors:
Varghese Mathai
(Univ of Twente, Brown University)
Sander Huisman
(Univ of Twente)
Chao Sun
(Tsinghua Univ)
Detlef Lohse
(Univ of Twente)
Mickael Bourgoin
(ENS Lyon)
Bubbles play an important role in the transport of chemicals and nutrients in many natural and industrial flows. Their dispersion is crucial to understand the mixing processes in these flows. Here we report on the dispersion of millimetric air bubbles in a homogeneous and isotropic turbulent flow with Taylor Reynolds number varied from 110 to 310. We find that the mean squared displacement (MSD) of the bubbles far exceeds that of fluid tracers in turbulence. The MSD shows two regimes. At short times, it grows ballistically, while at larger times, it approaches the diffusive regime. Strikingly, for the bubbles, the ballistic-to-diffusive transition occurs one decade earlier than for the fluid. We reveal that both the enhanced dispersion and the early transition to the diffusive regime can be traced back to the unsteady wake-induced-motions of the bubbles. Further, the diffusion transition for bubbles is not set by the integral time scale of the turbulence (as it is for fluid tracers and microbubbles), but instead, by a timescale of eddy-crossing of the rising bubbles. The present findings provide a Lagrangian perspective towards understanding mixing in turbulent bubbly flows.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DFD.L37.9
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