Please use this identifier to cite or link to this item: http://dx.doi.org/10.25673/37922
Title: Lattice Boltzmann solver for multiphase flows : application to high Weber and Reynolds numbers
Author(s): Hosseini, Seyed AliLook up in the Integrated Authority File of the German National Library
Safari, Hesameddin
Thévenin, DominiqueLook up in the Integrated Authority File of the German National Library
Issue Date: 2021
Type: Article
Language: English
URN: urn:nbn:de:gbv:ma9:1-1981185920-381652
Subjects: Lattice Boltzmann method
Multiphase flows
Phase field
Conservative Allen–Cahn
Abstract: The lattice Boltzmann method, now widely used for a variety of applications, has also been extended to model multiphase flows through different formulations. While already applied to many different configurations in lowWeber and Reynolds number regimes, applications to higher Weber/Reynolds numbers or larger density/viscosity ratios are still the topic of active research. In this study, through a combination of a decoupled phase-field formulation—the conservative Allen–Cahn equation—and a cumulant-based collision operator for a low-Mach pressure-based flow solver, we present an algorithm that can be used for higher Reynolds/Weber numbers. The algorithm was validated through a variety of test cases, starting with the Rayleigh–Taylor instability in both 2D and 3D, followed by the impact of a droplet on a liquid sheet. In all simulations, the solver correctly captured the flow dynamics andmatched reference results very well. As the final test case, the solver was used to model droplet splashing on a thin liquid sheet in 3D with a density ratio of 1000 and kinematic viscosity ratio of 15, matching the water/air system at We = 8000 and Re = 1000. Results showed that the solver correctly captured the fingering instabilities at the crown rim and their subsequent breakup, in agreement with experimental and numerical observations reported in the literature.
URI: https://opendata.uni-halle.de//handle/1981185920/38165
http://dx.doi.org/10.25673/37922
Open Access: Open access publication
License: (CC BY 4.0) Creative Commons Attribution 4.0(CC BY 4.0) Creative Commons Attribution 4.0
Sponsor/Funder: OVGU-Publikationsfonds 2021
Journal Title: Entropy
Publisher: MDPI
Publisher Place: Basel
Volume: 23
Issue: 2
Original Publication: 10.3390/e23020166
Page Start: 1
Page End: 16
Appears in Collections:Fakultät für Verfahrens- und Systemtechnik (OA)

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