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Air source heat pump with water heater based on a bypass-cycle defrosting system using compressor casing thermal storage

机译:空气源热泵采用水加热器,基于旁路循环除霜系统,使用压缩机套管热储存

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In this study, the defrosting system of an air source heat pump utilizing compressor casing heat storage combined with a hot gas bypass cycle (ASHP-CCHS-HGBC) was designed. The phase change material for defrosting was selected, the phase change heat storage exchanger was devised, and the ASHP-CCHS-HGBC test system was established. The power consumption, defrosting time, and the influence of the indoor exchanger outlet on the air temperature in the ASHP-CCHS-HGBC method were then compared with those of the reverse-cycle defrosting (RCD) and electric heating defrosting (EHD) methods. Experimental results reveal that the total defrosting time and consumption of the ASHP-CCHS-HGBC method was 100 s and 43.6 kJ, respectively. These values were lower by 10 s (9%) and 12.1 kJ (21.7%) relative to those of RCD. Moreover, the compressor suction temperature was increased by 10.1 degrees C during defrosting by ASHP-CCHS-HGBC. Under the normal heating operation for 2.5 h, 10 L hot water with a temperature of 30 degrees C was obtained, the compressor casing temperature was reduced by 4.6 degrees C. While defrosting, the air temperature of the indoor heat exchanger outlet declined to only 3.3 degrees C and exerted the least influence on the indoor temperature among those of the three defrosting methods. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在本研究中,设计了利用压缩机壳体蓄热与热气体旁路循环(ASHP-CCHS-HGBC)的空气源热泵的除霜系统。选择用于除霜的相变材料,设计相变储热交换器,建立了ASHP-CCHS-HGBC测试系统。然后将电力消耗,除霜时间和室内交换机出口对ASHP-CCHS-HGBC方法中的空气温度的影响与反向循环除霜(RCD)和电加热除霜(EHD)方法进行比较。实验结果表明,ASHP-CCHS-HGBC方法的总除霜时间和消耗量分别为100秒和43.6 kJ。相对于RCD的那些,这些值较低10 s(9%)和12.1kJ(21.7%)。此外,在ASHP-CCHS-HGBC除霜期间,压缩机吸入温度升高10.1℃。在25小时的正常加热操作下,获得10μl热水的温度为30℃,压缩机壳体温度降低4.6℃。在除霜时,室内热交换器出口的空气温度下降至仅3.3度C并对三种除霜方法的室内温度产生最小影响。 (c)2017 Elsevier Ltd.保留所有权利。

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