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A Theory of Film Condensation in Horizontal Noncircular Section Microchannels

机译:水平非圆形截面微通道中的膜凝结理论

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The paper presents a theoretical model to predict film condensation heat transfer from a vapor flowing in horizontal square and equilateral triangular section minichannels or microchannels. The model is based on fundamental analysis which assumes laminar condensate flow on the channel walls and takes account of surface tension, interfacial shear stress, and gravity. Results are given for channel sizes (side of square or triangle) in the range of 0.5-5 mm and for refrigerants R134a, R22, and R410A. The cases considered here are where the channel wall temperature is uniform and the vapor is saturated at the inlet. The general behavior of the condensate flow pattern (spanwise and streamwise profiles of the condensate film), as well as streamwise variation of local mean (over section perimeter) heat-transfer coefficient and vapor mass quality, are qualitatively in accord with expectations on physical grounds. The magnitudes of the calculated heat-transfer coefficients are in general agreement with experimental data for similar, but nonidentical, channel geometry and flow parameters.
机译:本文提出了一种理论模型,可预测在水平正方形和等边三角形截面的微通道或微通道中流动的蒸气中的膜凝结传热。该模型基于基本分析,该分析假定层流冷凝水在通道壁上流动,并考虑了表面张力,界面剪切应力和重力。给出了通道尺寸(正方形或三角形的边)在0.5-5 mm范围内以及制冷剂R134a,R22和R410A的结果。此处考虑的情况是通道壁温度均匀且入口处的蒸汽饱和。凝结水流动模式的一般行为(凝结水膜的横向和横向分布)以及局部均值(横截面周长)传热系数和蒸汽质量的沿流方向定性与物理理由相符。对于相似但不相同的通道几何形状和流动参数,计算出的传热系数的大小通常与实验数据一致。

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