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Rising speed and dissolution rate of a carbon dioxide bubble in slightly contaminated water

机译:二氧化碳气泡在轻度污染水中的溶解速度和上升速度

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The rising speed and dissolution rate of a carbon dioxide bubble in slightly contaminated water were investigated experimentally and numerically. We developed an experimental system that uses a charged-coupled device (CCD) camera coupled with a microscope to track the rising bubble. By precisely measuring the bubble size and rising speed, we were able to accurately estimate the drag coefficient and the Sherwood number for the dissolution rate of gas bubbles at Reynolds numbers below 100 in the transient regime, where the bubble changes from behaving as a fluid sphere to behaving as a solid particle. We also numerically estimated the drag coefficient and Sherwood number of the 'stagnant cap model' by directly solving the coupled Navier-Stokes and convection-diffusion equations. We compared our experimental results with our numerical results and proposed equations for estimating the drag coefficient and Sherwood number of the bubble affected by contamination and clarified that the gas-liquid interface of the carbon dioxide bubble in water is immobile. We also show that the experimental and numerical results are in good agreement and the stagnant cap model can explain the mechanism of the transient process where the bubble behaviour changes from that of a fluid sphere to that of a solid particle.
机译:实验和数值研究了二氧化碳气泡在轻度污染水中的上升速度和溶解速率。我们开发了一个实验系统,该系统使用电荷耦合器件(CCD)相机和显微镜来跟踪上升的气泡。通过精确测量气泡的大小和上升速度,我们能够准确估计在瞬态下雷诺数低于100时气泡溶解速率的阻力系数和舍伍德数表现为固体颗粒。我们还通过直接求解耦合的Navier-Stokes和对流扩散方程来对“停滞帽模型”的阻力系数和Sherwood数进行数值估算。我们将实验结果与数值结果进行了比较,并提出了用于估算受污染影响的气泡的阻力系数和舍伍德数的方程式,并阐明了二氧化碳气泡在水中的气液界面是固定的。我们还表明,实验结果与数值结果吻合良好,停滞帽模型可以解释瞬态过程的机理,在该过程中,气泡行为从流体球变为固体颗粒。

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