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首页> 外文期刊>International Journal of Heat and Mass Transfer >Study of the influence of interfacial waves on heat transfer in turbulent falling films
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Study of the influence of interfacial waves on heat transfer in turbulent falling films

机译:界面波对湍流降膜传热影响的研究

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摘要

This study explores the influence of interfacial waves on mass, momentum and heat transfer in turbulent, free-falling water films that are subjected to sensible heating. Measured temporal records of film thickness and temperature profile across the film are used to examine the film's thermal response to the passage of large waves. The temporal variations of liquid temperature and heat transfer coefficient are generally opposite to that of film thickness; the heat transfer coefficient is highest in the substrate regions upstream and downstream of large waves and lowest in the waves themselves. Increasing the film's Reynolds number increases the mean thickness and wave amplitude, and decreases the wave period, but results in appreciable attenuation in the measured liquid temperature response to the large waves. Using FLUENT, a computational model of the falling film is constructed and its predictions compared to the data. The computed results show good agreement with the measured mean film thickness, wave form and period, and both wall and mean film temperatures. The model captures the measured increase in liquid temperature in the film substrate and decrease corresponding to the large waves, but the predicted temperature response is less attenuated for higher Reynolds numbers than the measured. Velocity predictions point to acceleration of high temperature liquid from the upstream substrate toward the cold region within the large wave before losing the excess heat due to mixing downstream from the wave crest. Overall, the present study demonstrates the effectiveness of computational tools at predicting the hydrodynamic and thermal characteristics of separated flows involving a wavy liquid-vapor interface.
机译:这项研究探讨了界面波对受到显热的湍流,自由落体水膜的质量,动量和热传递的影响。测得的薄膜厚度和整个薄膜温度曲线的时间记录用于检查薄膜对大波通过的热响应。液体温度和传热系数的时间变化通常与膜厚相反。传热系数在大波上游和下游的基板区域中最高,而在波本身中最低。增大膜的雷诺数会增加平均厚度和波幅,并减小波周期,但会导致测量的液体温度对大波的响应明显下降。使用FLUENT,构建了降膜的计算模型,并将其预测与数据进行了比较。计算结果表明,与测得的平均膜厚,波形和周期以及壁温和平均膜温都吻合良好。该模型捕获了所测量的薄膜基材中液体温度的升高并对应于大波浪而降低了,但是对于较高的雷诺数,所预测的温度响应的衰减比所测量的要小。速度预测表明,由于波峰下游的混合,高温液体从上游基片向大波内的较冷区域加速,然后损失多余的热量。总的来说,本研究证明了计算工具在预测涉及波浪状液体-蒸汽界面的分离流的水动力和热特征方面的有效性。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2013年第12期|1106-1121|共16页
  • 作者单位

    Purdue University Boiling and Two-Phase Flow Laboratory (PU-BTPFL), School of Mechanical Engineering, 585 Purdue Mall, West Lafayette, IN 47907, USA;

    Purdue University Boiling and Two-Phase Flow Laboratory (PU-BTPFL), School of Mechanical Engineering, 585 Purdue Mall, West Lafayette, IN 47907, 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

    Falling films; Turbulence; Interfacial waves;

    机译:掉落的电影;湍流界面波;

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