带不同设计蒸发器的空气热泵的运行效率

T. N. Il'ina, P. A. Orlov, A. O. Echina
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The purpose of this work is to compare the efficiency of heat pumps with an evaporative circuit heat exchanger manufactured by MITSUI (Japan) and a heat exchanger with a MOVEBIT defroster manufactured by ALTEC (Russia).Methods. The research methodology is based on large laboratory tests of an evaporator with an oscillatory circuit of the MOVEBIT system (ALTEK - Russia) and an industrial heat exchanger MITSUI (Japan), a graphical analysis of the operation of a heat pump with common evaporators, and a theoretical substantiation of the transformation ratio. To compare the main standardized performance indicators, the transformation coefficient (COP – coefficient of performance) is used, showing the ratio of received energy to applied work.Results. 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摘要

简历热泵市场的发展确保了能源价格的增长、应对全球变暖的斗争以及刺激向 "清洁能源 "过渡的国家的增长率。然而,在气候寒冷的国家,空气源热泵的使用受到蒸发器热交换器结霜的限制,而结霜会显著提高空气源热泵的供热能力和转换效率。这项工作的目的是比较装有日本三井公司生产的蒸发回路热交换器的热泵和装有俄罗斯 ALTEC 公司生产的 MOVEBIT 除霜器的热交换器的效率。研究方法基于对 MOVEBIT 系统(ALTEK - 俄罗斯)的带振荡电路的蒸发器和 MITSUI(日本)的工业热交换器进行的大型实验室测试、对带普通蒸发器的热泵运行进行的图形分析以及对转换率的理论证实。为了比较主要的标准化性能指标,使用了转换系数(COP - 性能系数),显示接收能量与做功的比率。对热泵运行结果的分析表明,当湿度保持在 φ ≈ 65% 的恒定水平,温度从 +10°C 降至 +5°C 时,无论 MOVEBIT 和 MITSUI 热交换器的类型如何,机组的热量输出都会下降,这是因为形成了冷凝水。当温度进一步降低到零度及以下时,热交换器的蒸发器上就会结冰。考虑到 MITSUI 热交换器除冰的成本,热泵机组(HPU)的转换率为 2.08。通过 MOVEBIT 系统除冰实际上不需要额外的成本,设备的转换率为 4.45,这与空气源热泵在正温度下的运行情况相似。我们的研究表明,除冰的最佳前景是利用磁致伸缩传感器进行机械振荡。采用 MOVEBIT 系统的空气源热泵的 COP 比采用 MITSUI 标准蒸发器的热泵在 0°C 及以下温度时的 COP 高出 2 倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficiency of Operation of Air Heat Pumps with Evaporators of Various Designs
Resume. The development of the heat pump market ensures the growth of energy prices, the fight against global warming and the stimulation of the growth rates of countries in transition to "clean energy sources". the most environmentally friendly and energy efficient, taking into account the cost of their installation and the impact of air source heat pumps compared to geothermal ones. However, their use in countries with cold climates is limited by the formation of frost on the evaporator unit heat exchanger, which significantly increases their heating capacity and conversion efficiency.Purpose of research. The purpose of this work is to compare the efficiency of heat pumps with an evaporative circuit heat exchanger manufactured by MITSUI (Japan) and a heat exchanger with a MOVEBIT defroster manufactured by ALTEC (Russia).Methods. The research methodology is based on large laboratory tests of an evaporator with an oscillatory circuit of the MOVEBIT system (ALTEK - Russia) and an industrial heat exchanger MITSUI (Japan), a graphical analysis of the operation of a heat pump with common evaporators, and a theoretical substantiation of the transformation ratio. To compare the main standardized performance indicators, the transformation coefficient (COP – coefficient of performance) is used, showing the ratio of received energy to applied work.Results. The analysis of the results of the heat pump operation showed that while maintaining the humidity at a constant level of φ ≈ 65% and lowering the temperature from +10°C to +5°C, a decrease in the heat output of the unit is observed, regardless of the type of MOVEBIT and MITSUI heat exchanger, which is explained by the formation of condensate. With a further decrease in temperature to zero and below, ice forms on the evaporator of the heat exchanger. Taking into account the cost of removing ice on the MITSUI heat exchanger, the transformation ratio of the heat pump unit (HPU) is 2.08. The removal of ice by the MOVEBIT system practically does not require additional costs and the transformation ratio of the installation is 4.45, which is similar to the operation of an air source heat pump at positive temperatures.Conclusion. Our studies show that the best prospect for de-icing is the application of mechanical oscillations with the use of magneto-constrictive transducers. The COP of the air source heat pump with the MOVEBIT system exceeds the COP of the heat pump with the MITSUI standard evaporator by 2 times at a temperature of 0°C and below.
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