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微通道传质的高效多尺度计算结果。

Efficient multiscale calculation results for microchannel mass transfer.

机构信息

College of Mechanical Engineering, Changzhou University, Changzhou, Jiangsu Province, 213164, China.

出版信息

Sci Rep. 2021 May 11;11(1):10023. doi: 10.1038/s41598-021-89447-2.

Abstract

When the channel height is reduced to a small value such as on the scales of 10 nm or 100 nm, the physical adsorbed layers on the channel walls will participate in the flow, although intermediate between them is a continuum fluid flow. The multiscale simulation results are presented for this multiscale mass transfer in a narrow slit pore based on the derived flow equations. The results are respectively compared with those calculated from conventional continuum flow theory and from the theory based on the solid layer assumption, when the fluid-wall interaction is respectively weak, medium and strong. The total mass flow rate of the two adsorbed layers is also compared with the mass flow rate of the intermediate continuum fluid. The obtained results show the importance of the incorporation of the adsorbed layer flow by the multiscale scheme when calculating the transferred mass in a microchannel.

摘要

当通道高度减小到 10nm 或 100nm 等小尺寸时,通道壁上的物理吸附层将参与流动,尽管它们之间存在连续的流体流动。本文基于推导的流动方程,给出了在狭窄狭缝孔中这种多尺度传质的多尺度模拟结果。当流体-壁相互作用分别较弱、中等和较强时,分别将结果与传统连续流理论和基于固体层假设的理论计算结果进行了比较。还比较了两个吸附层的总质量流率与中间连续流体的质量流率。所得结果表明,在计算微通道中传递的质量时,多尺度方案中包含吸附层流动的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b277/8113599/7d6586cd2ceb/41598_2021_89447_Fig1_HTML.jpg

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