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SURFACE COOLING BY AN IMPINGING WATER DROP

机译:通过撞击水滴表面冷却

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We studied, using both experiments and a numerical model, the impact of water droplets on a hot stainless steel surface. Initial substrate temperatures were varied from 50°C to 120°C (low enough to prevent boiling in the drop) and impact velocities from 0.5 m/s to 4 m/s. Fluid mechanics and heat transfer during droplet impact were modelled using a "Volume-of-Fluid" (VOF) code. Numerical calculations of droplet shape and substrate temperature during impact agreed well with experimental results. Both simulations and experiments show that increasing impact velocity enhances heat flux from the substrate by only a small amount. The principal effect of raising droplet velocity is that it makes the droplet spread more during impact, increasing the wetted area across which heat transfer takes place. We also developed a simple model of heat transfer into the droplet by one-dimensional conduction across a thin boundary layer which gives estimates of droplet cooling effectiveness that agree well with results from the numerical model. The analytical model predicts that for fixed Reynolds number (Re) cooling effectiveness increases with Weber number (We). However, for large Weber numbers, when we {sup 1/2}Re, cooling effectiveness is independent of droplet velocity or size and depends only on the Prandtl number.
机译:我们研究了使用实验和数值模型,水滴对热不锈钢表面的影响。初始基板温度从50℃变化至120℃(足够低以防止沸腾),并冲击速度为0.5m / s至4m / s。使用“流体体积”(VOF)代码进行模拟液滴冲击期间的流体力学和传热。实验结果良好液滴液滴形状和衬底温度的数值计算。模拟和实验都表明,增加的冲击速度仅通过少量从基板增强热量。提高液滴速度的主要效果是它在撞击期间使液滴更多地扩散,增加了传热发生的湿润区域。我们还通过跨薄边界层的一维导通在薄边传导中开发了一种简单的热传递模型,这给出了与数值模型的结果很好的液滴冷却效果的估计。分析模型预测,对于固定的雷诺数(RE)冷却效果随着韦伯号(我们)而增加。但是,对于大型韦伯号码,当我们 {sup 1/2} Re时,冷却效果与液滴速度或尺寸无关,并且仅取决于普朗特数。

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