کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
667749 | 1458543 | 2011 | 13 صفحه PDF | دانلود رایگان |
The dynamics of bubble formation from a submerged nozzle in a highly viscous liquid with relatively fast inflow gas velocity is studied numerically. The numerical simulations are carried out using a sharp interface coupled level set/volume-of-fluid (CLSVOF) method and the governing equations are solved through a hydrodynamic scheme with formal second-order accuracy. Numerical results agree well with experimental results and it is shown that the sharp interface CLSVOF method enables one to reproduce the bubble formation process for a wide range of inflow gas velocities. From numerical results, one can improve their understanding of the mechanisms regarding the dynamics of bubble formation. For example, it is found that for some sets of parameters that the bubble formation process reaches steady state after several bubbles are released from the nozzle. At steady state, bubbles uniformly rise freely in the viscous liquid. It is observed that the fluid flow around a formed bubble has a significant role in determining the overall dynamic process of bubble formation; e.g. the effect of the fluid flow from the preceding bubble can be seen on newly formed bubbles.
► Bubble formation from a nozzle in a viscous liquid is studied computationally.
► The numerical method accurately predicts the shape/volume of newly formed bubbles.
► The wake effect of preceding bubbles on newly formed bubbles is numerically studied.
► Bubble detachment is automatically “captured” without user intervention.
Journal: International Journal of Multiphase Flow - Volume 37, Issue 9, November 2011, Pages 1059–1071