TY - JOUR
T1 - Euler-Euler Les of bubble column bubbly flows by considering sub-grid scale turbulent dispersion effect on modulating bubble transport
AU - Long, Shanshan
AU - Yang, Xiaogang
AU - Yang, Jie
AU - Li, Bin
AU - Shi, Weibin
AU - Sommerfeld, Martin
PY - 2023/3/20
Y1 - 2023/3/20
N2 - It has now been recognised that the turbulent dispersion force plays an important role in interphase momentum transfer. As the turbulent eddies in the surrounding of bubbles interact strongly with the bubbles in bubbly flow, the bubble trajectories and bubble oscillation take place accordingly as the consequence of continuous deformation of the bubble surfaces. When using large eddy simulation for modelling bubbly flow, the SGS filtered velocity fluctuations of liquid phase can be interpreted as many small eddies that may act on the surface of bubbles, consequently giving rise to bubble shape variations and the dispersion of bubbles. This study employs Euler/Euler large-eddy simulation (LES) modelling to demonstrate that the turbulent dispersion force model can be used to effectively indicate the influence of turbulent eddies on bubble dynamics, in particular the bubble cluster oscillations, which leads to remarkable improvements in the prediction of bubble lateral dispersion behaviour. The use of spatially filtered-averaging to model the [[EQUATION]] term related to turbulent bubble dispersion is proposed with a modification on SGS eddy viscosity to reflect turbulent dispersion due to bubble induced turbulence. The results of the time-averaged LES modelled bubble velocities and bubble volume fraction profiles are in good agreement with the experimental data while the turbulent kinetic energy spectrum obtained at different locations on the centreline of the bubble column still exhibits the conventional -5/3 scaling for shear induced turbulence and a -3 scaling for bubble induced turbulence.
AB - It has now been recognised that the turbulent dispersion force plays an important role in interphase momentum transfer. As the turbulent eddies in the surrounding of bubbles interact strongly with the bubbles in bubbly flow, the bubble trajectories and bubble oscillation take place accordingly as the consequence of continuous deformation of the bubble surfaces. When using large eddy simulation for modelling bubbly flow, the SGS filtered velocity fluctuations of liquid phase can be interpreted as many small eddies that may act on the surface of bubbles, consequently giving rise to bubble shape variations and the dispersion of bubbles. This study employs Euler/Euler large-eddy simulation (LES) modelling to demonstrate that the turbulent dispersion force model can be used to effectively indicate the influence of turbulent eddies on bubble dynamics, in particular the bubble cluster oscillations, which leads to remarkable improvements in the prediction of bubble lateral dispersion behaviour. The use of spatially filtered-averaging to model the [[EQUATION]] term related to turbulent bubble dispersion is proposed with a modification on SGS eddy viscosity to reflect turbulent dispersion due to bubble induced turbulence. The results of the time-averaged LES modelled bubble velocities and bubble volume fraction profiles are in good agreement with the experimental data while the turbulent kinetic energy spectrum obtained at different locations on the centreline of the bubble column still exhibits the conventional -5/3 scaling for shear induced turbulence and a -3 scaling for bubble induced turbulence.
KW - Bubble Column
KW - Bubble oscillation
KW - LES simulation
KW - Turbulent dispersion
UR - http://www.scopus.com/inward/record.url?eid=2-s2.0-85150779720&partnerID=MN8TOARS
U2 - 10.2139/ssrn.4393892
DO - 10.2139/ssrn.4393892
M3 - Article
SN - 1556-5068
JO - SSRN Electronic Journal
JF - SSRN Electronic Journal
ER -