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Experimental study of R-134a evaporation heat transfer in a narrow annular duct

机译:R-134a在狭窄环形管道中蒸发传热的实验研究

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摘要

An experiment is carried out here to investigate the evaporation heat transfer and associated evaporating flow pattern for refrigerant R-134a flowing in a horizontal narrow annular duct. The gap of the duct is fixed at 1.0 and 2.0 mm. In the experiment, the effects of the duct gap, refrigerant vapor quality, mass flux and saturation temperature and imposed heat flux on the measured evaporation heat transfer coefficient h, are examined in detail. For the duct gap of 2.0 mm, the refrigerant mass flux G is varied from 300 to 500 kg/m~2 s, imposed heat flux q from 5 to 15 kW/m~2, vapor quality x_m from 0.05 to 0.95, and refrigerant saturation temperature T_(sat) from 5 to 15 ℃. While for the gap of 1.0 mm, G is varied from 500 to 700 kg/m~2 s with the other parameters varied in the same ranges as that for δ = 2.0 mm. The experimental data clearly show that the evaporation heat transfer coefficient increases almost linearly with the vapor quality of the refrigerant and the increase is more significant at a higher G. Besides, the evaporation heat transfer coefficient also rises substantially at increasing q. Moreover, a significant increase in the evaporation heat transfer coefficient results for a rise in T_(sat), but the effects are less pronounced in the narrower duct at a low imposed heat flux and a high refrigerant mass flux. Furthermore, the evaporation heat transfer coefficient increases substantially with the refrigerant mass flux except at low vapor quality. We also note that reducing the duct gap causes a significant increase in h_r. In addition to the heat transfer data, photos of R-134a evaporating flow taken from the duct side show the change of the dominant two-phase flow pattern in the duct with the experimental parameters. Finally, an empirical correlation for the present measured heat transfer coefficient for the R-134a evaporation in the narrow annular ducts is proposed.
机译:在此进行实验以研究在水平窄环形管道中流动的制冷剂R-134a的蒸发传热和相关的蒸发流型。管道的间隙固定为1.0和2.0毫米。在实验中,详细研究了管道间隙,制冷剂蒸汽质量,质量通量和饱和温度以及施加的热通量对测量的蒸发传热系数h的影响。对于2.0 mm的管道间隙,制冷剂质量通量G从300到500 kg / m〜2 s变化,施加的热通量q从5到15 kW / m〜2,蒸汽质量x_m从0.05到0.95,制冷剂饱和温度T_(sat)为5至15℃。当间隙为1.0 mm时,G在500至700 kg / m〜2 s之间变化,其他参数在与δ= 2.0 mm相同的范围内变化。实验数据清楚地表明,蒸发传热系数几乎与制冷剂的蒸气质量成线性关系,并且在G越高时,蒸发传热系数的增加越显着。此外,当q增大时,蒸发传热系数也显着增加。此外,蒸发传热系数的显着增加导致T_(sat)的增加,但是在施加较小的热通量和较高的制冷剂质量通量的情况下,在较窄的管道中效果不明显。此外,除了低蒸汽质量以外,蒸发传热系数随着制冷剂质量通量的增加而显着增加。我们还注意到减小导管间隙会导致h_r显着增加。除传热数据外,从导管侧拍摄的R-134a蒸发流的照片还显示了导管中主要的两相流模式随实验参数的变化。最后,提出了当前测量的在狭窄环形管道中R-134a蒸发的传热系数的经验相关性。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2010年第10期|2218-2228|共11页
  • 作者

    C.A. Chen; C.Y. Lee; T.F.Lin;

  • 作者单位

    Department of Mechanical Engineering, National Chiao Tung University, Hsinchu, 1001 Ta Hsueh Road, Hsinchu 30010, Taiwan;

    Department of Mechanical Engineering, National Chiao Tung University, Hsinchu, 1001 Ta Hsueh Road, Hsinchu 30010, Taiwan;

    Department of Mechanical Engineering, National Chiao Tung University, Hsinchu, 1001 Ta Hsueh Road, Hsinchu 30010, Taiwan;

  • 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

    R-134a; evaporation heat transfer; mini-channel; evaporating flow pattern;

    机译:R-134a;蒸发传热迷你频道蒸发流型;

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