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首页> 外文期刊>International Journal of Refrigeration >Comparative performance of air-conditioning systems with different refrigerant circuitries in liquid-separation condenser
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Comparative performance of air-conditioning systems with different refrigerant circuitries in liquid-separation condenser

机译:液 - 分离冷凝器中不同制冷剂输出空调系统的比较性能

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摘要

Liquid-separation condensation is a novel technology to enhance the condenser performance. Four liquid-separation condensers (LSCs) that had the only difference in refrigerant circuitry were designed, and they were respectively installed to the air-conditioning system and experimentally studied. The capillary tube length and the refrigerant charge were adjusted to achieve the optimum energy efficiency ratio (EER) for each system. The cooling capacity, the system power input and EER were compared at the optimum point. It is found that the four systems are most distinguished in LSCs in terms of condensing pressure and subcooling because of different refrigerant circuitries. The exergy analysis was also carried out. The results show that the refrigerant circuity in LSC has great impacts on the exergetic performance of all system components, and the order of highest exergy efficiency of the four systems is different from that of EER. The detailed characteristics of the four LSCs were further discussed at the designing condition and the practical condition in the tests. The pressure drop of LSC is dominated by the last pass that has serpentine tubes. It is concluded that a low penalty factor (PF) in LSC does not guarantee the good system performance. The optimization of refrigerant circuitry in the condenser to improve the system efficiency should use the system performance as the objective at the system level instead of PF.
机译:液体分离冷凝是一种提高冷凝器性能的新技术。设计了具有制冷剂电路唯一差异的四个液体分离冷凝器(LSC),它们分别安装在空调系统上并通过实验研究。调整毛细管长度和制冷剂电荷以实现每个系统的最佳能效比(EER)。在最佳点比较冷却能力,系统电源输入和eer。结果发现,由于不同的制冷剂电路,在冷凝压力和过冷方面,四种系统在LSC中最区别。还进行了漏洞分析。结果表明,LSC中的制冷剂循环对所有系统组件的横跨性能产生了很大的影响,并且四种系统的最高漏洞效率的顺序不同于eer。在设计条件下进一步讨论了四种LSC的详细特征和测试中的实际情况。 LSC的压降是由具有蛇纹石管的最后一盏通杆的主导。结论是,LSC中的低惩罚因素(PF)不保证良好的系统性能。冷凝器中的制冷剂电路的优化以提高系统效率,应使用系统性能作为系统级别而不是PF的目标。

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