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Dynamic heat transfer analysis of condensed droplets growing and coalescing on water repellent surfaces

机译:疏水表面上生长和凝聚的冷凝液滴的动态传热分析

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摘要

We present the dynamic heat transfer analysis of condensed droplets growing and coalescing on hydrophobic (HPo) and superhydrophobic (SHPo) surfaces using a full 3D numerical simulation. In the model, two water droplets surrounded by fully-saturated water vapor grow on a horizontal surface through condensation until they coalesce together. The dynamic changes in the interfacial areas, temperature distributions and heat flux through each interface were analyzed. The effects of vapor phase temperature distribution, parasitic thermal resistance and surface flooding on the heat transfer rate are also quantified. The results show that a relatively high heat transfer rate through solid-vapor interface on SHPo partially compensates the low heat transfer rate through solid-liquid interface. The parasitic thermal resistance of the suggested SHPo may reduce the heat transfer performance over 30%. When the flooding occurs on HPo, the heat transfer rate rapidly decreases below a half of the value obtained at the beginning of coalescence. This work shows the importance of the heat transfer analysis considering dynamic changes in the interfacial area and resulting 3D temperature distributions, and will help develop the optimal condensation heat transfer surfaces.
机译:我们使用完整的3D数值模拟方法,对疏水性(HPo)和超疏水性(SHPo)表面上生长和凝聚的冷凝液滴的动态传热分析进行了分析。在该模型中,被完全饱和的水蒸气包围的两个水滴通过冷凝在水平表面上生长,直到它们聚结在一起。分析了通过每个界面的界面区域,温度分布和热通量的动态变化。还量化了气相温度分布,寄生热阻和表面溢流对传热速率的影响。结果表明,通过SHPo固-气界面的较高的传热速率可以部分补偿通过固液界面的较低的传热速率。建议的SHPo的寄生热阻可能会使传热性能降低30%以上。当在HPo上发生溢流时,传热速率迅速降低至低于开始聚结时获得的值的一半。这项工作表明考虑到界面区域的动态变化以及由此产生的3D温度分布,进行传热分析的重要性,并将有助于开发最佳的冷凝传热表面。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2017年第11期|934-943|共10页
  • 作者单位

    Kyung Hee University, Department of Mechanical Engineering, Yongin, South Korea;

    Kyung Hee University, Department of Mechanical Engineering, Yongin, South Korea;

    Hongik University, Mechanical and System Design Engineering, Seoul, South Korea;

    Kyung Hee University, Department of Mechanical Engineering, Yongin, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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