Kumma Nagarjuna, Seethala Gokul Sai, Bhagat Yatna, Sarath Sai, Kruthiventi Satya Sai Harish
Low Temperature Laboratory, Department of Mechanical Engineering, National Institute of Technology Tiruchirappalli, Trichy, 620015, India.
Department of Mechanical Engineering, Koneru Lakshmaiah Education Foundation, Greenfields, Guntur, 522502, Andhra Pradesh, India.
Environ Sci Pollut Res Int. 2023 May;30(22):63065-63083. doi: 10.1007/s11356-023-26409-3. Epub 2023 Mar 23.
European Union regulations stipulate that household refrigeration systems must operate with fluid refrigerants that possess low global warming potential (GWPs). In this work, theoretical performance of six binary and one ternary mixture (which consists of R13I1, R290, R161, R32, R1234yf, and R1234ze(E)) was investigated. The performance parameters such as coefficient of performance (COP), refrigeration effect (RE), volumetric cooling capacity (VCC), discharge temperature, pressure ratio, and specific power consumption of all considered refrigerant mixtures is studied with respect to the evaporator temperature range of -18 to 18C and the condenser temperature range of 40 to 55C. The properties corresponding to different operating conditions for the refrigerants considered in this study are estimated using REFPROP 10. The findings demonstrated that, when compared to R134a, all the investigated refrigerants exhibited very low specific power consumption (apart from M9, M10, and M14-M16), and high volumetric cooling capacity (VCC) (apart from M11 and M13) under the operating conditions of evaporator temperature -18C and condenser temperature 40C. M1-M3 and M11-M13 gave similar and within 10% deviation in coefficient of performance, while M3 and M11-M13 refrigerant mixtures offer significantly low discharge temperatures when compared to R134a. Refrigerant mixtures M2 and M11 consistently exhibited a better performance in comparison to R134a in the aspect of majority of the performance parameters considered in this study. Finally, it is understood that M2 and M11 are two possible alternative refrigerants to conventional refrigerants used in small refrigeration units (R134a and R22). Further, it is also identified that these mixtures are non-flammable, possess zero ODP and low GWP values.
欧盟法规规定,家用制冷系统必须使用全球变暖潜能值(GWP)较低的液态制冷剂运行。在这项工作中,研究了六种二元混合物和一种三元混合物(由R13I1、R290、R161、R32、R1234yf和R1234ze(E)组成)的理论性能。针对所有考虑的制冷剂混合物,在蒸发器温度范围为-18至18℃以及冷凝器温度范围为40至55℃的条件下,研究了性能参数,如性能系数(COP)、制冷量(RE)、容积冷却能力(VCC)、排气温度、压力比和比功耗。本研究中考虑的制冷剂在不同运行条件下的特性使用REFPROP 10进行估算。研究结果表明,与R134a相比,在蒸发器温度为-18℃和冷凝器温度为40℃的运行条件下,所有研究的制冷剂(除M9、M10和M14 - M16外)均表现出非常低的比功耗,以及高容积冷却能力(VCC)(除M11和M13外)。M1 - M3和M11 - M13的性能系数相似,偏差在10%以内,而与R134a相比,M3和M11 - M13制冷剂混合物的排气温度显著较低。在本研究考虑的大多数性能参数方面,制冷剂混合物M2和M11与R134a相比始终表现出更好的性能。最后,可以认为M2和M11是小型制冷装置中使用的传统制冷剂(R134a和R22)的两种可能替代制冷剂。此外,还确定这些混合物不可燃,臭氧消耗潜能值为零且全球变暖潜能值较低。