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Validation of a dynamic model for vapor bubble growth and collapse under microgravity conditions

机译:微重力条件下汽泡生长和破裂的动力学模型的验证

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A complete set of ordinary differential equations, based on modifications of existing models, is used to investigate bubble growth and collapse under microgravity conditions in this paper. As in previous work, effects of inertia, surface tension and viscosity are taken into consideration in the momentum equation of the liquid phase outside of vapor bubble, while effects of "moving interface", interface curvature and thermal resistance of surrounding liquid are considered in the evaporation of the vapor bubble. A dimensionless fitting constant b is introduced to account for area change of the moving vapor/liquid interface and the diffusive nature of the interface layer. The values of these fitting constants for bubble growth and bubble collapse in water and ethanol are obtained by matching predicted temporal variations of bubble radii with experimental data. The predicted interfacial dynamics during bubble growth and bubble collapse is analyzed. Different stages during the bubble growth process are characterized. During the early stage of bubble collapse, the simulated bubble radii show some "fluctuations", which can be attributed to the "rebound effect" of pressure balance in the bubble owing to the initial condition of a sudden drop in temperature.
机译:本文基于对现有模型的修改,使用一整套常微分方程来研究微重力条件下的气泡生长和破裂。与以前的工作一样,在汽泡外部液相的动量方程中考虑了惯性,表面张力和粘度的影响,同时考虑了“运动界面”,界面液体的界面曲率和热阻的影响在汽泡蒸发中。引入无因次拟合常数b以说明运动的气/液界面的面积变化和界面层的扩散性质。通过将气泡半径的预测时间变化与实验数据进行匹配,可以获得在水和乙醇中气泡生长和气泡破裂的这些拟合常数的值。分析了气泡增长和气泡破裂过程中的预测界面动力学。表征气泡生长过程中的不同阶段。在气泡破裂的早期,模拟的气泡半径显示出一些“波动”,这可以归因于由于温度突然下降的初始条件,气泡中压力平衡的“回弹效应”。

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