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首页> 外文期刊>International Journal of Multiphase Flow >Influence of film thickness and cross-sectional geometry on hydrophilic microchannel condensation
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Influence of film thickness and cross-sectional geometry on hydrophilic microchannel condensation

机译:膜厚和截面几何形状对亲水性微通道冷凝的影响

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摘要

Condensation in hydrophilic microchannel is strongly influenced by the channel cross-sectional geometry and the condensing surfaces hydrophobicity, which govern the evolution of the liquid film. This work makes progress on studying the relationship between channel geometry and condensation through flow regime visualizations, film-thickness measurements with optical interferometery, and temperature profile measurements with heat flux distribution construction. The hydrophilic microchannels have aspect ratios ranging from 1 to 5 and hydraulic diameters from 100μm through 300μm. The experimental measurement qualitatively matches the prediction of previous theoretical models accounting for the surface tension effect, which highlights the importance of surface tension force and channel geometry in the microchannel condensation. Pressure drop and mean heat flux measurements show that a larger channel is favorable for minimizing the pressure drop, while a smaller channel size and higher aspect ratio are desirable for maximizing the mean heat flux. The optimization of the channel geometry for a given application lies in the trade-off between these two factors.
机译:亲水性微通道中的冷凝受通道横截面几何形状和冷凝表面疏水性的强烈影响,这些因素决定了液膜的演变。这项工作在通过流态可视化,光学干涉仪的膜厚测量以及热通量分布构造的温度剖面测量研究通道几何形状与冷凝之间的关系方面取得了进展。亲水微通道的纵横比为1至5,水力直径为100μm至300μm。实验测量在质量上与考虑表面张力效应的先前理论模型的预测相符,这突出了表面张力和通道几何形状在微通道冷凝中的重要性。压降和平均热通量的测量结果表明,较大的通道有利于最大程度地降低压降,而较小的通道尺寸和较高的长宽比则是使平均热通量最大化的理想方法。对于给定应用,通道几何形状的优化在于这两个因素之间的权衡。

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