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首页> 外文期刊>International Journal of Heat and Mass Transfer >Droplet evaporation on a structured surface: The role of near wall vortexes in heat and mass transfer
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Droplet evaporation on a structured surface: The role of near wall vortexes in heat and mass transfer

机译:结构化表面上的液滴蒸发:靠近壁涡旋在热量和传质中的作用

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摘要

Experimental studies on the evaporation of a drop located on a horizontal hot wall with cavities of different diameters of 0.5-2.5 mm were carried out. The wall temperature T_w was constant (74 °C and 83 °C). The evaporation behavior on a structured surface was compared with that on a smooth wall. Instantaneous velocity profiles have been obtained over a single cavity and in the vicinity of several cavities using the Micro Particle Image Velocity method (Micro PIV). It has been established that a hotter liquid is periodically ejected from the cavity, which increases convection inside the drop. The strongest intensification of mass transfer is specific for the largest cavities with a diameter of 2.5 mm. The behavior of the droplet evaporation on a smooth wall coincides with that on a structured surface with a cavity diameter of 0.5 mm. Until now, there have been no data that would link the convection in the drop with the vortexes in the cavity at non-isothermal evaporation and at high heat fluxes. The strongest influence of cavities is manifested in the initial period of evaporation, when a cold drop is placed on a hot wall. Over time, the evaporation rate on a structured wall approaches evaporation on a smooth (unstructured) surface. The article considers the influence of several key factors on the convection in a drop.
机译:对位于水平热墙上的液滴蒸发的实验研究进行了不同直径0.5-2.5mm的空腔。壁温T_W恒定(74°C和83°C)。将结构化表面上的蒸发行为与光滑壁上进行比较。使用微颗粒图像速度法(微PIV)在单个腔内和几个空腔附近获得瞬时速度曲线。已经确定,热液体周期性地从腔中喷射,这增加了下降内部的对流。传质的最强强化对于直径为2.5mm的最大空腔特异。光滑壁上的液滴蒸发的行为与结构化表面上的那一致,腔直径为0.5mm。到目前为止,没有任何数据将在非等温蒸发和高热量的腔内与腔内的涡流与涡旋中的对流联系起来。当冷落放置在热壁上时,腔腔的最强烈影响在蒸发的初始时期中表现出。随着时间的推移,结构化壁上的蒸发速率在平滑(非结构化)表面上蒸发。该文章考虑了几个关键因素在下降中对对流的影响。

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