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Dropwise Evaporative Cooling of Heated Surfaces with Various Wettability Characteristics Obtained by Nanostructure Modifications

机译:通过纳米结构改性获得的具有各种润湿性的受热表面的逐滴蒸发冷却

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摘要

A numerical and experimental investigation was conducted to analyze dropwise evaporative cooling of heated surfaces with various wettability characteristics. The surface wettability was tuned by nanostructure modifications. Spray-cooling experiments on these surfaces show that surfaces with better wettability have better heat transfer rate and higher critical heat flux (CHF). Single droplet impingement evaporative cooling of a heated surface was then investigated numerically with various wettability conditions to characterize the effect of contact angle on spray-cooling heat transfer. The volume of fluid (VOF) model with variable-time stepping was used to capture the time-dependent liquid-gas interface motion throughout the computational domain with the kinetic theory model used to predict the evaporation rate at the liquid-gas interface. The numerical results agree with the spray-cooling experiments that dropwise evaporative cooling is much better on surfaces with better wettability because of the better liquid spreading and convection, better liquid-solid contact, and stronger liquid evaporation.
机译:进行了数值和实验研究,以分析具有各种润湿特性的加热表面的逐滴蒸发冷却。通过纳米结构改性来调节表面润湿性。在这些表面上进行喷雾冷却实验表明,具有更好润湿性的表面具有更好的传热速率和更高的临界热通量(CHF)。然后在各种润湿性条件下对加热表面的单滴撞击蒸发冷却进行了数值研究,以表征接触角对喷雾冷却传热的影响。使用具有可变时间步进的流体体积(VOF)模型来捕获整个计算域中随时间变化的液-气界面运动,并使用动力学理论模型来预测液-气界面的蒸发速率。数值结果与喷雾冷却实验相吻合,因为具有更好的液体散布和对流,更好的液固接触和更强的液体蒸发,在具有更好润湿性的表面上逐滴蒸发冷却要好得多。

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