提高用于地热和蒸发冷却技术的传统蒸汽压缩制冷系统的效率:伊拉克案例研究

Mays Alaa Ismael, Samir Gh. Yahya, Md. Azhar, I. Mahbubul, Olusegun M. Ilori
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引用次数: 0

摘要

传统的蒸汽压缩制冷循环是制冷系统中最有效的技术之一。在本实验研究中,分析了冷凝器温度对热工性能的影响。随着冷凝器温度的降低,制冷循环的整体性能提高。然而,当在极端天气(炎热和干燥)下运行时,传统蒸汽压空调机组的冷却功率和效率会显著降低。这种下降主要是由于冷凝器的温度(和压力)随着环境空气温度的升高而升高。不幸的是,伊拉克经历了最极端的夏季,特别是在6月和7月,温度达到或超过50°c。因此,在炎热的环境中,分体式空调一直使用地面冷却。蒸发冷却也被用来降低冷凝器区域内使用的交流机组的冷却剂温度。实验结果表明,采用地热换热器后,冷凝器温度由116℃降至110℃,性能系数(COP)提高41%。此外,当系统采用蒸发冷却时,冷凝器的温度从110°C降低到88°C,并且在常规蒸汽压缩制冷循环中COP提高了65%。此外,当蒸发器温度从6℃降低到3.5℃时,制冷量平均增加52%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving the Efficiency of a Conventional Vapor-Compression Refrigeration System used for Geothermal and Evaporative Cooling Techniques: Case Study in Iraq
A conventional vapor compression refrigeration cycle is among the most effective technology in refrigeration systems. In the present experimental study, thermal performance and the effect of the condenser temperature have been analyzed. With the decrease in the condenser temperature, the overall performance of the refrigeration cycle is increased. However, the cooling power and efficiency of conventional vapor pressure air conditioning units can experience a significant reduction when operating in extreme weather (hot and dry). This drop is mainly affected by the increase in the temperature (and pressure) of the condenser with an increase in the ambient air temperature. Unfortunately, Iraq experiences the most extreme summer seasons especially in the months of June and July when the temperature reaches or exceeds 50° C. So, ground cooling has been used in areas with a hot environment for split system air conditioners. Evaporative cooling was also performed to lower the coolant temperature of the AC unit used inside the condenser area. Experimental results showed that when using a geothermal heat exchanger, the temperature of the condenser is reduced from 116 to 110 ° C and the coefficient of performance (COP) is improved by 41%. In addition to this when the system uses evaporative cooling the temperature of the condenser is reduced from 110 ° C to 88° C. Moreover, a 65% improvement was made in the COP of the conventional vapor compression refrigeration cycle. Furthermore, with a decrease in the evaporator temperature from 6 to 3.5 °C there was an increase in refrigeration capacity by an average of 52%.
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