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Stefan flow induced natural convection suppression on high-flux evaporators

机译:高通量蒸发器上Stefan流动引起的自然对流抑制

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High-flux evaporators are important for various fundamental research and industrial applications. Understanding the heat loss mechanisms, especially the contribution of natural convection during evaporation is thus a ubiquitous process to predict and optimize the performance of evaporators. However, a comprehensive analysis on natural convection heat transfer, where the vertical Stefan flow due to evaporation couples with buoyancy driven convective flow has not been carefully considered. In this work, we developed a theoretical framework to elucidate the effect of Stefan flow on natural convection during evaporation. This theory incorporates the vertical Stefan flow into the conventional boundary layer theory. We found that a significant suppression of natural convection can be induced by a weak Stefan flow owing to the increase of boundary layer thickness. To understand this phenomenon, we discuss the governing mechanisms at different Stefan flow regimes. We provide a theoretical correlation to the overall heat transfer which includes both effects of the Stefan flow velocity and the buoyancy force. We finally predict the effect of natural convection on an evaporator at different operating temperatures. The heat loss from natural convection no longer monotonically increases with the superheat temperature due to the effect of Stefan flow suppression. As a result, there is an approximately 40% overestimation of the natural convection contribution at saturation temperature using conventional theory. This work improves the fundamental understanding of the natural convection during evaporation and can help guide future high-performance evaporator designs.
机译:高通量蒸发器对于各种基础研究和工业应用都很重要。因此,了解热损失机理,尤其是蒸发过程中自然对流的作用,是预测和优化蒸发器性能的普遍过程。然而,对自然对流传热的综合分析并未认真考虑,在自然对流传热中,由于蒸发而产生的垂直Stefan流与浮力驱动的对流是耦合的。在这项工作中,我们开发了一个理论框架来阐明Stefan流量对蒸发过程中自然对流的影响。该理论将垂直Stefan流合并到常规边界层理论中。我们发现由于边界层厚度的增加,微弱的Stefan流动可引起自然对流的显着抑制。为了了解这种现象,我们讨论了不同Stefan流态下的控制机制。我们提供了与整体传热的理论相关性,包括Stefan流速和浮力的影响。我们最终预测了自然对流在不同工作温度下对蒸发器的影响。由于Stefan流动抑制的作用,自然对流的热损失不再随过热温度单调增加。结果,使用常规理论,在饱和温度下自然对流贡献被高估了大约40%。这项工作提高了对蒸发过程中自然对流的基本了解,并可以帮助指导未来的高性能蒸发器设计。

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  • 来源
    《International communications in heat and mass transfer》 |2020年第1期|104255.1-104255.13|共13页
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  • 作者单位

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

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