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Heat transfer performance of an integrated solar-air source heat pump evaporator

机译:一体式太阳能空气源热泵蒸发器的传热性能

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摘要

This study proposes a dual heat source integrated heat pump evaporator using solar energy and air energy as the heat sources. Both the refrigerant and water coils were installed and arranged in the evaporator in a certain manner. During the cold season of Xiangtan (China), the heat transfer performance of the integrated heat pump evaporator was studied both experimentally and theoretically (through simulations). The results show that the evaporator's hot water supply can increase the refrigerant's evaporation temperature and heat pump's coefficient of performance (COP). With the increase in average water temperature of evaporator from 14.6 degrees C to 39.5 degrees C, the heat pump's COP increased by 15%. In the simulations conditions, the proportions of the heat released by air and the heat released by hot water are basically the same as the experimental date. Comparing the refrigerant-water refrigerant type evaporator with the water-refrigerant-refrigerant type evaporator, the former is more capable of gaining heat from low temperature water than the latter, and is more conducive to the comprehensive utilization of air and solar energy by heat pump in the cold season. Additionally, the refrigerant-water-refrigerant type evaporator has better anti-frosting capability under lower water temperatures.
机译:这项研究提出了一种使用太阳能和空气能作为热源的双热源集成热泵蒸发器。制冷剂盘管和水盘管都以某种方式安装并布置在蒸发器中。在湘潭(中国)的寒冷季节,通过实验和理论(通过模拟)研究了集成热泵蒸发器的传热性能。结果表明,蒸发器的热水供应可以提高制冷剂的蒸发温度和热泵的性能系数(COP)。随着蒸发器的平均水温从14.6摄氏度增加到39.5摄氏度,热泵的COP增加了15%。在模拟条件下,空气释放的热量和热水释放的热量的比例与实验日期基本相同。将制冷剂-水制冷剂式蒸发器与水-制冷剂-制冷剂式蒸发器进行比较,前者比后者更能从低温水中获取热量,更有利于热泵对空气和太阳能的综合利用。在寒冷的季节。此外,制冷剂-水-制冷剂型蒸发器在较低的水温下具有更好的防霜能力。

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