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BOILING HEAT TRANSFER OF R-134A FLOWING IN HORIZONTAL SMALL-DIAMETER TUBES

机译:在水平小直径管中流动的R-134a的沸腾传热

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The boiling heat transfer of refrigerant R-134a flow in horizontal small-diameter tubes with inner diameter of 0.51, 1.12, 2.0 and 3.1 mm was experimentally investigated. Local heat transfer coefficient and pressure drop were measured at a heat flux ranging from 5 to 39 kW/m{sup}2, mass flux from 100 to 450 kg/m{sup}2s, inlet vapor quality from 0 to 0.2, and evaporating pressure of 0.49 MPa, 3.0 and 3.7 MPa. Results showed that the local heat transfer coefficient tends to decrease at lower vapor quality with the decrease in tube diameter. The effect of heat flux on local heat transfer coefficient becomes significant with the decrease in tube diameter, while the effect of mass flux is weak especially for small diameter tube. With decreasing tube diameter, the flow inside it approached homogeneous flow, and the contribution of forced convective evaporation to the boiling heat transfer decreases. With the increase in pressure near the critical pressure (3.0 to 3.7 MPa), the heat transfer coefficient increased, and the effect of mass flux on the heat transfer coefficient became weak. These results implied that the nucleate boiling was dominant under high pressure conditions. A modified Chen-type correlation taking into account the effect of tube diameter was proposed for the prediction of boiling heat transfer of R-134a in horizontal tube. The effect of tube diameter on flow boiling heat transfer coefficient was characterized by the Weber number in gas phase. Comparison with experimental results showed that this correlation could be applied to a wide range of tube diameters (0.5 to 11 mm) and pressure conditions (reduced pressure from 0.1 to 0.9).
机译:实验研究了内径为0.51,1.12,2.0和3.1mm水平小直径管中的制冷剂R-134a流量的沸腾传热。在从5至39kW / m {sup} 2的热通量下测量局部传热系数和压降,从100到450kg / m {sup} 2s,入口气相质量为0至0.2,蒸发压力为0.49MPa,3.0和3.7MPa。结果表明,局部传热系数趋于在较低的蒸汽质量下降低管直径。随着管直径的降低,热通量对局部传热系数的影响随着管道直径的降低而变得显着,而质量磁通量尤其适用于小直径管。随着管道直径的降低,它内部的流动接近均匀流动,并且强制对流蒸发到沸腾热传递的贡献降低。随着临界压力附近的压力增加(3.0至3.7MPa),传热系数增加,并且质量通量对传热系数的影响变弱。这些结果暗示,核心在高压条件下核心占优势。考虑到管直径效果的改良陈型相关性用于预测水平管中R-134a的沸腾热传递。管直径对流沸热系数的影响是通过气相中韦伯数的特征。与实验结果的比较表明,这种相关性可以应用于各种管直径(0.5至11mm)和压力条件(减压为0.1至0.9)。

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