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Supercritical heat transfer of NOVEC 649 refrigerant in horizontal minichannels

机译:Novec 649制冷剂的超临界热传递水平迷你鳄鱼

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摘要

This study investigates the influence of mass flowrates, system pressures, and channel diameters on supercritical heat transfer characteristics of NOVEC 649 refrigerant in horizontal minichannels. The experimental results demonstrate that the heat transfer coefficient significantly increases by increasing mass flux. Especially in the case of a small channel diameter, increasing mass flux can also reduce the degree of heat transfer deterioration when the fluid temperature exceeds the pseudocritical temperature. The heat transfer coefficient decreases dramatically when the fluid temperature reaches the pseudocritical temperature and then increases again when the fluid temperature exceeds and gets far from the pseudocritical temperature. Moreover, the heat transfer coefficient increases significantly with the decrease in the channel diameter. The buoyancy effect has the significant impacts on the present results, especially under experimental conditions with larger channel diameters. The heat transfer deterioration is most obvious in the results of the larger diameter. The empirical correlation of supercritical heat transfer suitable for the organic working fluid of NOVEC 649 is developed based on Jackson's correlation. Most of the errors between the values predicted by the present correlation and experimental results are within 20%, and the mean absolute error is only 11.4%.
机译:本研究调查了质量流量,系统压力和通道直径对卧式少少录中Novec 649制冷剂的超临界传热特性的影响。实验结果表明,通过增加质量磁通,传热系数显着增加。特别是在小通道直径的情况下,当流体温度超过伪安温时,增加的质量磁通也可以降低传热劣化程度。当流体温度达到伪安温时,传热系数显着降低,然后当流体温度超过并远离伪安温时再次增加。此外,传热系数随着通道直径的减小而显着增加。浮力效应对目前的结果具有显着影响,尤其是在具有较大通道直径的实验条件下。在较大直径的结果中,传热劣化最明显。基于杰克逊的相关性,开发了适用于Novec 649的有机工作流体的超临界传热的经验相关性。由本相关性和实验结果预测的值之间的大多数误差在20%以内,并且平均绝对误差仅为11.4%。

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