NUMERICAL MODELING OF BUBBLE DYNAMICS USING INTERFACE CAPTURING METHOD

被引:0
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作者
Ningegowda, Bittagowdanahalli Manjegowda [1 ,2 ]
Mariani, Francesco [2 ]
Battistoni, Michele [2 ]
Anbalagan, Munirathinam [3 ]
Babu, Jonaligadda Musali [5 ]
Kamesh, Minnal Ranjanbabu [1 ]
Kumar, Nitish [1 ]
Pachpute, Sharad [4 ]
机构
[1] Department of Mechanical Engineering, Dayananda Sagar College of Engineering, Karnataka, Bengaluru,560111, India
[2] Department of Engineering, University of Perugia, Perugia,06125, Italy
[3] Department of Mechanical Engineering, DSEU Pusa Campus, New Delhi,110012, India
[4] Babcock Power APAC, OMR, Lotter India, Tamil Nadu, Chennai,600096, India
[5] Department of Mechanical Engineering, Vel Tech, Rangarajan Dr. Sagunthala R & D Institute of Science and Technology, Vellanur, Avadi, Tamil Nadu, Chennai,600062, India
关键词
Bubbles (in fluids) - Computational fluid dynamics - Numerical methods - Phase interfaces - Piecewise linear techniques - Stars - Viscosity;
D O I
10.1615/InterJFluidMechRes.2024053087
中图分类号
学科分类号
摘要
In the present numerical study, a dynamics of single gas bubble (circular in 2D and spherical in 3D) rising in a stagnant viscous liquid due to the buoyancy is presented using various volume of fluid (VOF) based computational fluid dynamics (CFD) solvers such as commercial Converge and Star CCM+, and open source OpenFOAM® platform. To capture the interface dynamics, either an interpolated curved interface based on the high-resolution interface framework or a mass conservative VOF approach witha planar sharp interface based geometric reconstruction ofthe piecewise-linear interface calculation (PLIC)scheme was used. Both qualitative and quantitative analysis of air bubble rising upward inside the quiescent water column at ratios of low density, ρr = 10 and high density, ρr = 1000 are simulated and evaluated similar to report by Hysing et al. The proposed numerical models can simulate a wide range of density and viscosity ratios. In this study, a robustness and accuracy of the solvers are evaluated and comparative study between open source OpenFOAM® solver with commercial solvers such as Converge and Star CCM+. Based on the present numerical results, the gas bubble base undergoes severe deformations for the high density ratio, ρr = 1000 and high viscosity ratio, µr = 100 compared to low density ratio, ρr = 10 and low viscosity ratio, µr = 10. Any of the solvers can be used to simulate complex multiphase flow situations encountered in many industrial applications. © 2024 by Begell House, Inc.
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页码:31 / 42
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