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Modeling of the evaporation rate of liquid droplets on anodized heated surfaces

机译:阳极氧化表面上液滴蒸发速率的建模

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The present study investigates the sessile droplet evaporation and mass transfer characteristics on the anodized hole-patterned surfaces and proposes a theoretical model based on the experimental data. Polished aluminum specimens and oxalic acid are utilized to generate anodized surfaces with three cases by changing area fractions and hole diameter. The anodized hole surface contributes to enhancing surface wettability with higher capillary force inside the holes on the surface. The droplet evaporation rate increases with a reduction in the hole diameter. It is found that the previous models of the evaporation heat transfer rate on the bare surface do not fit well with the experimental results for the anodic oxidation surface. The solid-liquid-air interfacial equations involving the Gibbs energy are newly established for development of a new evaporation model that considers of the liquid displacement length. The results are validated against the previous results, showing that the new model has an error range of 6%. From the results, the smaller the hole diameter, or the deeper the hole depth, the capillary force increases, thereby widening the surface area of the droplet and promoting the evaporative heat transfer of the droplet.
机译:本研究研究了阳极氧化孔型表面上的固着液滴蒸发和传质特性,并基于实验数据提出了理论模型。抛光的铝样品和草酸可通过改变面积分数和孔径来产生三种情况的阳极氧化表面。阳极氧化的孔表面通过孔内部的较高毛细力有助于增强表面的可湿性。液滴的蒸发速度随着孔径的减小而增加。已经发现,先前的在裸露表面上的蒸发传热速率模型与阳极氧化表面的实验结果不太吻合。为建立考虑液体位移长度的新蒸发模型,新建立了涉及吉布斯能量的固-液-气界面方程。该结果与先前的结果进行了验证,表明新模型的误差范围为6%。根据结果​​,孔直径越小或孔深度越深,毛细作用力增加,从而使液滴的表面积变宽并且促进液滴的蒸发热传递。

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