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首页> 外文期刊>Journal of Fluid Science and Technology >Effect of diffusing layer thickness on the density-driven natural convection of miscible fluids in porous media: Modeling of mass transport
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Effect of diffusing layer thickness on the density-driven natural convection of miscible fluids in porous media: Modeling of mass transport

机译:扩散层厚度对多孔介质中可混溶流体的密度驱动自然对流的影响:传质模型

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摘要

In this study, density-driven natural convection in porous media associated with Rayleigh–Taylor instability was visualized by X-ray computed tomography to investigate the effect of the thickness of the diffusing interface on convection. The thickness of the interface was changed by molecular diffusion with time, and the effective diffusivity in a porous medium was estimated. Compared with the thick interface, for the thin interface, many fine fingers formed and extended rapidly in a vertical direction. The onset time of natural convection increased proportionally with the thickness of the interface, being correlated with Rayleigh number and Péclet number. For the thinner initial interface, the finger number density increased more rapidly after onset and reached a higher value. Next, we discussed the mass transport in Rayleigh–Taylor convection to show how dispersion affects mass transport based on finger extension velocity and concentration in fingers. Increasing the interface thickness delayed the onset of convection, while the finger extension velocity remained the same. The reduced finger extension velocity changed nonlinearly with the Péclet number, reflecting the effect of dispersion. High transverse dispersion and longitudinal dispersion quickly reduced finger density. Transverse dispersion between ascending and descending fingers decreased the density; the density decreased linearly along the finger on both sides of the symmetric plane. As a result, the Sherwood number was proportional to the Rayleigh number, whereas the coefficient changed nonlinearly with Péclet number because of dispersion, reflecting the nonlinear dependences of the reduced velocity and the reduced density difference on Péclet number.
机译:在这项研究中,通过X射线计算机断层摄影术观察了与瑞利-泰勒不稳定性相关的多孔介质中密度驱动的自然对流,以研究扩散界面厚度对流的影响。界面的厚度通过分子扩散随时间而改变,并且估计了在多孔介质中的有效扩散率。与较厚的界面相比,对于较薄的界面,许多细指在垂直方向上迅速形成并延伸。自然对流的开始时间与界面的厚度成比例地增加,与瑞利数和佩克莱特数相关。对于较薄的初始界面,手指编号密度在发作后增加更快,并达到更高的值。接下来,我们讨论了瑞利-泰勒对流中的物质传输,以显示分散如何根据手指延伸速度和手指集中度影响物质传输。增大界面厚度会延迟对流的发生,而手指的伸展速度却保持不变。减小的手指伸展速度随佩克利数非线性变化,反映了分散的影响。高横向色散和纵向色散会迅速降低手指密度。上升手指和下降手指之间的横向分散降低了密度。密度沿对称平面两侧的手指线性减小。结果,舍伍德数与瑞利数成正比,而系数由于分散而随佩克利数非线性变化,反映出降低的速度和减小的密度差对佩克利数的非线性依赖性。

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