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首页> 外文期刊>International Journal of Heat and Mass Transfer >Jumping droplet condensation in internal convective vapor flow
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Jumping droplet condensation in internal convective vapor flow

机译:内部对流蒸汽流动跳跃液滴冷凝

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摘要

Condensation is an important process in the Rankine cycle that significantly affects overall efficiency. Condensate typically forms a liquid film due to the high surface energy of industrial condenser materials; by engineering the condenser surface with a superhydrophobic layer, however, we can increase condensation heat transfer by an order of magnitude with the jumping droplet mode of condensation. While the basic phenomenon of jumping droplet condensation has been explored in depth, its effects on heat transfer and pressure drop in confined vapor flow inside a condenser tube, as in power plant condensers, have not been considered. Here, we report an experimental study of internal forced convective condensation with hydrophilic, hydrophobic, and superhydrophobic surfaces to study condensation in the filmwise, dropwise, and jumping droplet modes, respectively. The condenser tube samples were tested in a closed system internal flow condensation setup, and the heat transfer and pressure drop behavior were characterized over various operating conditions. In the jumping droplet mode, the heat transfer coefficient was highest at lower condensation heat flux and condenser surface subcooling, but a transition to the flooded mode at higher subcooling resulted in a heat transfer coefficient comparable to filmwise condensation. For dropwise condensation in the hydrophobic tube, the condensation heat transfer coefficient increased with the vapor velocity, similar to observations in past work. In addition to a large heat transfer coefficient, the pressure drop with the superhydrophobic tube samples was the lowest. These experimental results demonstrate the viability of harnessing the jumping droplet mode of condensation to enhance heat transfer and reduce pressure drop for internal forced convective flow condensation in industrial condensers.
机译:凝结是兰尼斯循环中的一个重要过程,显着影响整体效率。缩合物通常由于工业冷凝器材料的高表面能而形成液体膜;然而,通过用超疏水层工程冷凝器表面,我们可以通过跳跃的液滴的延长液体的幅度提高冷凝热传递。虽然深入探索了跳跃液滴冷凝的基本现象,但尚未考虑其对电植物冷凝器中的电容器管内的受限蒸汽流量的传热和压降的影响。在此,我们报告了具有亲水性,疏水和超疏水表面的内部强制对流凝聚的实验研究,以分别研究胶片,滴加和跳跃液滴模式的缩合。在封闭的系统内部流动冷凝设置中测试冷凝器管样品,并在各种操作条件下表征传热和压降行为。在跳跃液滴模式中,传热系数在较低的冷凝热通量和冷凝器表面过冷中最高,但在较高的过冷处的过渡到淹没模式导致与胶片冷凝相当的传热系数。为了疏水管中的滴缩,凝结传热系数随着蒸汽速度而增加,类似于过去的工作中的观察。除了大的传热系数之外,具有超疏水管样品的压降是最低的。这些实验结果表明了利用跳跃液滴的可行性,以增强传热,减少工业冷凝器中内部强制对流流动凝结的压降。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第12期|120398.1-120398.10|共10页
  • 作者单位

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA Department of Mechanical Engineering Texas ASM University;

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA Department of Mechanical Engineering Rice University;

    Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA;

  • 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
  • 关键词

    Jumping droplet condensation; Internal convective condensation; Vapor shear;

    机译:跳跃液滴冷凝;内部对流凝结;蒸气剪;

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