4.6 Article

How do the fluid dynamics change for gravity- destabilized film flow on structured surfaces? An experimental investigation using light-induced fluorescence

期刊

CHEMICAL ENGINEERING RESEARCH & DESIGN
卷 196, 期 -, 页码 390-403

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ELSEVIER
DOI: 10.1016/j.cherd.2023.06.052

关键词

Fluid dynamics; Film flow; Structured surface; Rayleigh-Taylor instability; Negative inclination angle

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Extensive research has been conducted to understand the fluid dynamics of liquid film flow in structured packings, focusing mainly on gravity-stabilized flow. However, gravity-destabilized flow, which occurs in about half of the cases in column with structured packings, has been studied less frequently. This study investigates the fundamental fluid dynamics of gravity-destabilized liquid film flows on different surfaces and compares the experimental results with numerical results from literature.
Liquid film flow is the dominant flow regime in distillation and absorption processes within structured packings. Extensive research has been carried out to improve the un-derstanding of the involved fluid dynamics. Up to now, these investigations mainly fo-cused on gravity-stabilized film flow, i.e., the liquid phase flows over a packing in counter-current flow with a gas phase. In contrast, gravity-destabilized film flow is studied much less frequently although this type of flow applies to about half of the cases in a column with structured packings. Here, the liquid runs along the underside of the packing, also in counter-current flow with the gas phase. To close the gap in the experimental data, this contribution investigates the fundamental fluid dynamics of gravity-destabilized liquid film flows on a smooth plate, a 2D wave texture, and a 3D pyramidal texture. Results on critical convective inclination angle, drained liquid mass flow, and liquid film thickness without counter-current gas flow are reported and compared to numerical results from literature. In the experiments, the Reynolds number is varied from 28.4 to 113.5 using a surfactant-modified aqueous system. The 2D structure showed decreased liquid flow stability compared to the smooth surface. However, the 3D structure seems to have a stabilizing effect on the flow. & COPY; 2023 Institution of Chemical Engineers. Published by Elsevier Ltd. All rights reserved.

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