4.7 Article

Gas-liquid two-phase flow across a bank of micropillars

Journal

PHYSICS OF FLUIDS
Volume 19, Issue 4, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.2722424

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Adiabatic nitrogen-water two-phase flow across a bank of staggered circular micropillars, 100 mu m long with a diameter of 100 mu m and a pitch-to-diameter ratio of 1.5, was investigated experimentally for Reynolds number ranging from 5 to 50. Flow patterns, void fraction, and pressure drop were obtained, discussed, and compared to large scale as well as microchannel results. Two-phase flow patterns were determined by flow visualization, and a flow map was constructed as a function of gas and liquid superficial velocities. Significant deviations from conventional scale systems, with respect to flow patterns and trend lines, were observed. A unique flow pattern, driven by surface tension, was observed and termed bridge flow. The applicability of conventional scale models to predict the void fraction and two-phase frictional pressure drop was also assessed. Comparison with a conventional scale void fraction model revealed good agreement, but was found to be in a physically wrong form. Thus, a modified physically based model for void fraction was developed. A two-phase frictional multiplier was found to be a strong function of mass flux, unlike in previous microchannel studies. It was observed that models from conventional scale systems did not adequately predict the two-phase frictional multiplier at the microscale, thus, a modified model accounting for mass flux was developed. (c) 2007 American Inst of Phys.

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