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Terminal shape and velocity of a rising bubble by phase-field-based incompressible Lattice Boltzmann model

Authors :
Baowei Song
Feng Ren
Michael C. Sukop
Source :
Advances in Water Resources. 97:100-109
Publication Year :
2016
Publisher :
Elsevier BV, 2016.

Abstract

This article describes the simulation of three-dimensional buoyancy-driven bubble rise using a phase-field-based incompressible Lattice Boltzmann model. The effect of the Cahn–Hilliard mobility parameter, which is the rate of diffusion relaxation from non-equilibrium toward equilibrium state of chemical potential, is evaluated in detail. In contrast with previous work that pursues a high density ratio of binary fluids in the hydrodynamic equation, we apply a large dynamic viscosity ratio, together with a matched density pair and a separate compensating gas phase buoyant force, and the numerical results fit previous experimental results well. Through analysis, it is noted that for cases with moderate Reynolds number, a large value of mobility keeps a relatively sharp interface, while smaller values of mobility would result in diffusive interfacial regions. Moreover, for cases with large Reynolds number, small bubbles at the tail tend to separate more easily when the value of mobility is larger. This article offers some potentially useful details for performing phase-field-based simulations.

Details

ISSN :
03091708
Volume :
97
Database :
OpenAIRE
Journal :
Advances in Water Resources
Accession number :
edsair.doi...........85bd51b15b1d6916c8e19875b70f4222
Full Text :
https://doi.org/10.1016/j.advwatres.2016.08.012