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Experimental analysis of an air-source transcritical CO_2 heat pump water heater using the hot gas bypass defrosting method

机译:热气旁路除霜法空气源跨临界CO_2热泵热水器的实验分析

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摘要

When an air-source CO_2 heat pump water heater operates at low ambient temperatures in cold regions in winter, frost can form on the coil surface of its outdoor evaporator. The frost substantially affects the operating performance and energy efficiency of CO_2 heat pump water heaters and hence periodic defrosting is essential. In this paper, defrosting characteristics of an air-source CO_2 heat pump water heater using the hot gas bypass defrosting method is experimentally studied at different ambient conditions. An experimental setup is developed for this purpose and experimental procedures are detailed. Thereafter, the pressure and temperature in the outdoor evaporator, at the compressor and gas cooler outlets are evaluated during the defrosting period. An energy analysis is then performed of different system components during the defrosting process. Results indicate that 35% of the supplied energy is used for melting the frost, and 7.6% is used to heat the evaporator tubes and fins. About 57.4% of the supplied energy is consumed to increase the internal energy of the gas cooler. The typical efficiency of the hot gas bypass defrosting method applied in the CO_2 heat pump water heater ranges from 30 to 40%. It increases with increasing dry bulb temperature, and decreasing relative humidity.
机译:当空气源CO_2热泵热水器在冬季寒冷地区在较低的环境温度下运行时,其室外蒸发器的盘管表面可能会结霜。霜会严重影响CO_2热泵热水器的运行性能和能效,因此定期除霜至关重要。本文通过热气体旁路除霜方法对空气源CO_2热泵热水器除霜特性进行了实验研究。为此目的开发了一个实验装置,并详细说明了实验程序。然后,在除霜期间评估室外蒸发器在压缩机和气体冷却器出口处的压力和温度。然后在除霜过程中对不同的系统组件执行能量分析。结果表明,所提供的能量的35%用于融化霜,而7.6%的能量用于加热蒸发器管和散热片。消耗了约57.4%的供应能量,以增加气体冷却器的内部能量。在CO_2热泵热水器中采用的热气旁路除霜方法的典型效率范围为30%至40%。它随着干球温度的升高和相对湿度的降低而增加。

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