首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Simulation of Drop-Size Distribution During Dropwise and Jumping Drop Condensation on a Vertical Surface: Implications for Heat Transfer Modeling
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Simulation of Drop-Size Distribution During Dropwise and Jumping Drop Condensation on a Vertical Surface: Implications for Heat Transfer Modeling

机译:垂直表面滴加和跳跃馏分馏分的模拟:传热建模的含义

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摘要

Accurate models for condensation heat transfer are necessary to improve condenser design. Drop-size distribution is an important aspect of heat transfer modeling that is difficult to measure for small drop sizes. The present work uses a numerical simulation of condensation which incorporates the possibility of coalescence and coalescence-induced jumping over a range of drop sizes. Results of the simulation are compared with previous theoretical models and the impact of the assumptions used in those models is explored. In particular, previous drop-size distribution models may predict heat transfer rates less accurately for high contact angles and for coalescence-induced jumping since coalescence occurs over a range of drop sizes and does not always result in departure. The influence of various input parameters (nucleation site distribution approach, nucleation site density, contact angle, maximum drop size, heat transfer modeling to individual drops, and minimum jumping size) on the drop-size distribution and overall heat transfer rate is explored. Assignment of the nucleation site spatial distribution and heat transfer model affect both the drop-size distribution and predicted overall heat transfer rate. Results from the simulation suggest that, when the contact angle is large (as on superhydrophobic surfaces) and no coalescence-induced jumping occurs, the heat transfer may not be as sensitive to the maximum drop-size as previously supposed. Furthermore, this work suggests that when coalescence induced jumping occurs, reducing the maximum drop size may not always increase heat transfer since drops similar in size to those removed by coalescence-induced jumping can contribute significantly to the overall heat transfer rate.
机译:需要准确的冷凝传热模型,以改善冷凝器设计。丢弃尺寸分布是传热建模的一个重要方面,难以测量小滴尺寸。目前的作品使用了缩合的数值模拟,该凝结包含聚结和聚结诱导的跳跃在一系列下降尺寸上的可能性。将模拟结果与先前的理论模型进行比较,探讨这些模型中使用的假设的影响。特别地,先前的丢弃尺寸分布模型可以预测用于高接触角度的热传递率,并且对于高接触角和聚结诱导的跳跃,因为在一系列滴尺寸上发生了聚结并且并不总是导致出发。探讨了各种输入参数(成核点分布方法,成核位点,接触角,最大跌落尺寸,传热建模到各个跌落和最小跳跃尺寸)的影响,探讨了下降尺寸分布和整体传热速率。成核网站空间分布和传热模型的分配影响滴尺寸分布和预测的总传热速率。仿真结果表明,当接触角大(如超疏水表面)并且不会发生聚结诱导的跳跃时,传热可能与先前假设的最大下降尺寸一样敏感。此外,这项工作表明,当发生聚结诱导的跳跃时,降低最大滴尺寸可能并不总是增加热传递,因为尺寸与通过聚结诱导的跳跃除去的那些相似的液滴可以显着贡献整体传热速率。

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