Araştırma Makalesi
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Yıl 2025, Cilt: 10 Sayı: 2, 332 - 366, 26.06.2025
https://doi.org/10.58559/ijes.1639324

Öz

Kaynakça

  • [1] Yang Z, Wu X. Retrofits and options for the alternatives to HCFC-22. Energy 2013; 59: 1-21.
  • [2] Zhang Y, Yang Z, Chen Y, He H, Zhao Y. Life cycle climate performance of R410A and its environmentally friendly alternative working fluids in a heat pump system. Sustainable Energy Technologies and Assessments 2024; 71: 104020.
  • [3] Heath EA. Amendment to the Montreal protocol on substances that deplete the ozone layer (Kigali amendment). International Legal Materials 2017; 56(1): 193-205.
  • [4] Böhringer C. The Kyoto protocol: a review and perspectives. Oxford Review of Economic Policy 2003; 19(3): 451-66.
  • [5] Mota-Babiloni A, Navarro-Esbrí J, Makhnatch P, Molés F. Refrigerant R32 as lower GWP working fluid in residential air conditioning systems in Europe and the USA. Renewable and Sustainable Energy Reviews 2017; 80: 1031-42.
  • [6] Astina IM, Alfisahri HI. New thermodynamic equation of state for refrigerant HFO-1243zf. International Journal of Thermodynamics 2023; 26(4): 19-30.
  • [7] Tamene Y, McHounchi L, Madanı H, Mehemmai M. Performances study of eco-friendly binary azeotropic mixtures used as working fluid in three refrigeration cycles. International Journal of Thermodynamics 2024; 27(4): 1-13.
  • [8] Yadav S, Liu J, Kim SC. A comprehensive study on 21st-century refrigerants - R290 and R1234yf: a review. International Journal of Heat and Mass Transfer 2022; 182: 121947.
  • [9] Arpagaus C, Bless F, Uhlmann M, Schiffmann J, Bertsch SS. High temperature heat pumps: market overview, state of the art, research status, refrigerants, and application potentials. Energy 2018; 152: 985-1010.
  • [10] Choudhari C. Experimental study of hydrocarbon r290 in water cooler refrigeration system. Journal of Thermal Engineering 2020; 6(1): 43-9.
  • [11] Polonara F, Kuijpers L, Peixoto R. Potential impacts of the Montreal protocol Kigali amendment to the choice of refrigerant alternatives. International Journal of Heat Technology 2017; 35(1): 1-8.
  • [12] Lemmon EW, Bell IH, Huber M, McLinden M. NIST standard reference database 23: reference fluid thermodynamic and transport properties. National Institute of Standards and Technology, Gaithersburg, US, 2018.
  • [13] Shaik SV, Babu TPA. Theoretical computation of performance of sustainable energy efficient R22 alternatives for residential air conditioners. Energy Procedia 2017; 138: 710-716.
  • [14] Martins LVS, Braga CHM, Pabon JJG, Machado L, Duarte WM. Assessment of total equivalent warming impact (TEWI) of alternative refrigerants for retrofit of R22 in single split air conditioning system. Journal of Building Engineering 2024; 88: 109085.
  • [15] Katircioğlu F, Cingiz Z, Çay Y, Gürel AE, Kolip A. Performance assessment of a refrigeration system charged with different refrigerants using infrared image processing techniques. Arabian Journal for Science and Engineering 2021; 46(12): 12009-28.
  • [16] Berkah Fajar TK, Restu Bagas P, Ukhi S, Alhamid MI, Lubis A. Energy and exergy analysis of an R410A small vapor compression system retrofitted with R290. Case Studies in Thermal Engineering 2020; 21: 100671.
  • [17] Guilherme ÍF, Marcucci Pico DF, dos Santos DDO, Bandarra Filho EP. A review on the performance and environmental assessment of R-410A alternative refrigerants. Journal of Building Engineering 2022; 47: 103847.
  • [18] Tian Q, Cai D, Ren L, Tang W, Xie Y, He G, et al. An experimental investigation of refrigerant mixture R32/R290 as drop-in replacement for HFC410A in household air conditioners. International Journal of Refrigeration 2015; 57: 216-28.
  • [19] Mota-Babiloni A, Mateu-Royo C, Navarro-Esbrí J, Barragán-Cervera Á. Experimental comparison of HFO-1234ze(E) and R-515B to replace HFC-134a in heat pump water heaters and moderately high temperature heat pumps. Applied Thermal Engineering 2021; 196: 117256.
  • [20] Zhang X, Li Y. A review of recent research on hydrofluoroolefin (HFO) and hydrochlorofluoroolefin (HCFO) refrigerants. Energy 2024; 311: 133423.
  • [21] Salhi K, Mohamed Ramadan K, Hadjiat MM, Hamidat A. Energetic and exergetic performance of solar-assisted direct expansion air-conditioning system with low-GWP refrigerants in different climate locations. Arabian Journal for Science and Engineering 2020; 45(7): 5385-98.
  • [22] Ibrahim OAA, Kadhim SA, Hammoodi KA, Rashid FL, Askar AH. Review of hydrocarbon refrigerants as drop-in alternatives to high-GWP refrigerants in VCR systems: The case of R290. Cleaner Engineering and Technology 2024; 23: 100825.
  • [23] Choudhari CS, Sapali SN. Performance investigation of natural refrigerant R290 as a substitute to R22 in refrigeration systems. Energy Procedia 2017; 109: 346-52.
  • [24] Aisyah N, Ariyadi HM. Performance evaluation of R1224yd as alternative to R123 and R245fa for vapor compression heat pump system. International Journal of Thermodynamics 2024; 27(1): 13-21.
  • [25] Koşan M. Investigation of using low GWP alternatives to replace R404A in the refrigeration system. International Journal of Energy Studies 2023; 8(3): 453-64.
  • [26] Stegou-sagia A, Damanakis M. Thermodynamic correlations, k – exponents, speed of sound, and COP data for binary refrigerant mixtures. International Journal of Thermodynamics 2004; 7(1): 15-22.
  • [27] Ravi G, Adhimoulame K. Thermodynamics studies on VCRS using refrigerant blends of R290, R600A, and R1234ZE. Multiscale and Multidisciplinary Modeling, Experiments and Design 2024; 7(5): 4807-18.
  • [28] Sezen K, Gungor A. Performance analysis of air source heat pump according to outside temperature and relative humidity with mathematical modeling. Energy Conversion and Management 2022; 263: 115702.
  • [29] Sezen K. Influence of airflow rates on air source heat pump operating parameters. Applied Thermal Engineering 2023; 233: 121123.
  • [30] Bell IH, Wronski J, Quoilin S, Lemort V. Pure and pseudo-pure fluid thermophysical property evaluation and the open-source thermophysical property library coolprop. Industrial and Engineering Chemistry Research 2014; 53(6): 2498-508.
  • [31] Choi YJ, Kedzierski MA, Domanski PA. A generalized pressure drop correlation for evaporation and condensation of alternative refrigerants in smooth and micro-fin tubes. National Institute of Standards and Technology, Gaithersburg, US, 1999. https://nvlpubs.nist.gov/nistpubs/Legacy/IR/nistir6333. pdf.
  • [32] Koopman T, Zhu T, Rohlfs W. Performance evaluation of air-source heat pump based on a pressure drop embedded model. Heliyon 2024; 10:4
  • [33] Daikin. RXF-E outdoor units datasheet. Daikin Industries, 2023. https://e2e.si/wp-content/uploads/2023/04/RXF-E_Data-books_EEDEN23_English.pdf.
  • [34] Daikin. FTXF-E indoor units datasheet. Daikin Industries, 2023. https://e2e.si/wp-content/uploads/2023/04/FTXF-E_Data-books_EEDEN23_English.pdf.
  • [35] Electra. WMZ series service manual. Electra Consumer Products, 2004. http://lh.airwell-res.com/sites/default/files/imported/Electra/c18/p53/WMZ%20R407C-R22-.pdf.
  • [36] Daikin. RXB-C Outdoor units datasheet. Daikin Industries, 2015. https://daikin.kh.ua/wp-content/uploads/2015/06/EEDEN15-100_RXB-C.pdf.
  • [37] Pramudantoro TP, Sukamto E, Sumeru K, Margana AS, Sukri MF. Effect of refrigerant charge variation of R32 as drop-in replacement for R22 in air conditioning system. AIP Conference Maharashtra, India, 2018.
  • [38] Saravanan AL, Murugan RS, Lal DM. Investigations on charge reduction strategies to use R290 as an alternative to R22 in a split air conditioner. Experimental Heat Transfer 2017; 30(2): 126-38.
  • [39] Koyama S, Takata N, Fukuda S. Drop-in experiments on heat pump cycle using HFO-1234ze (E) and its mixtures with HFC-32. International Refrigeration and Air Conditioning Conference Purdue, US, 2010.

Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study

Yıl 2025, Cilt: 10 Sayı: 2, 332 - 366, 26.06.2025
https://doi.org/10.58559/ijes.1639324

Öz

Air source heat pumps (ASHPs), particularly split air conditioners, are widely favored for their energy efficiency, ease of application, and capacity to provide both seasonal heating and cooling. However, their performance and environmental impact are largely determined by the refrigerants they use. This study examines the performance and operating parameters of an ASHP retrofitted with five different refrigerants—R22, R410A, R32, R290, and R1234ze(E)—using a physics-based model. R22 and R410A were considered phased-out refrigerants due to their environmental impact, while R32, R290, and R1234ze(E) were evaluated as eco-friendly pure refrigerant alternatives. Refrigerants were analyzed at outdoor temperatures of 0°C, 7°C, and 15°C, with evaporator and condenser pressure drops included to improve model accuracy. R32 demonstrated superior coefficient of performance (COP) at lower outdoor temperatures, while R1234ze(E) outperformed other refrigerants at 15°C. R1234ze(E) exhibited the highest refrigerant flow rate, nearly twice that of R290 and R32, increasing charging costs. However, its low condensing pressure allows for more economical equipment. R290 showed the lowest pressures, facilitating safer sealing despite its high flammability. Pressure drop and pipe diameter requirements are critical in system design. R1234ze(E) requires larger pipes to mitigate pressure losses, increasing system costs and refrigerant charge. R32, with minimal pressure loss, allows smaller pipes, making it cost-effective. R290, though needing slightly larger pipes than R32, operates at lower condenser and evaporator pressures, improving safety and reducing sealing challenges. This feature, combined with its low GWP, makes R290 a promising next-generation refrigerant, though its high flammability remains a concern. R32 consistently achieves the lowest condensing temperatures at lower outdoor conditions. These findings provide insights into the trade-offs between environmental benefits, performance, and operational considerations of various refrigerants.

Kaynakça

  • [1] Yang Z, Wu X. Retrofits and options for the alternatives to HCFC-22. Energy 2013; 59: 1-21.
  • [2] Zhang Y, Yang Z, Chen Y, He H, Zhao Y. Life cycle climate performance of R410A and its environmentally friendly alternative working fluids in a heat pump system. Sustainable Energy Technologies and Assessments 2024; 71: 104020.
  • [3] Heath EA. Amendment to the Montreal protocol on substances that deplete the ozone layer (Kigali amendment). International Legal Materials 2017; 56(1): 193-205.
  • [4] Böhringer C. The Kyoto protocol: a review and perspectives. Oxford Review of Economic Policy 2003; 19(3): 451-66.
  • [5] Mota-Babiloni A, Navarro-Esbrí J, Makhnatch P, Molés F. Refrigerant R32 as lower GWP working fluid in residential air conditioning systems in Europe and the USA. Renewable and Sustainable Energy Reviews 2017; 80: 1031-42.
  • [6] Astina IM, Alfisahri HI. New thermodynamic equation of state for refrigerant HFO-1243zf. International Journal of Thermodynamics 2023; 26(4): 19-30.
  • [7] Tamene Y, McHounchi L, Madanı H, Mehemmai M. Performances study of eco-friendly binary azeotropic mixtures used as working fluid in three refrigeration cycles. International Journal of Thermodynamics 2024; 27(4): 1-13.
  • [8] Yadav S, Liu J, Kim SC. A comprehensive study on 21st-century refrigerants - R290 and R1234yf: a review. International Journal of Heat and Mass Transfer 2022; 182: 121947.
  • [9] Arpagaus C, Bless F, Uhlmann M, Schiffmann J, Bertsch SS. High temperature heat pumps: market overview, state of the art, research status, refrigerants, and application potentials. Energy 2018; 152: 985-1010.
  • [10] Choudhari C. Experimental study of hydrocarbon r290 in water cooler refrigeration system. Journal of Thermal Engineering 2020; 6(1): 43-9.
  • [11] Polonara F, Kuijpers L, Peixoto R. Potential impacts of the Montreal protocol Kigali amendment to the choice of refrigerant alternatives. International Journal of Heat Technology 2017; 35(1): 1-8.
  • [12] Lemmon EW, Bell IH, Huber M, McLinden M. NIST standard reference database 23: reference fluid thermodynamic and transport properties. National Institute of Standards and Technology, Gaithersburg, US, 2018.
  • [13] Shaik SV, Babu TPA. Theoretical computation of performance of sustainable energy efficient R22 alternatives for residential air conditioners. Energy Procedia 2017; 138: 710-716.
  • [14] Martins LVS, Braga CHM, Pabon JJG, Machado L, Duarte WM. Assessment of total equivalent warming impact (TEWI) of alternative refrigerants for retrofit of R22 in single split air conditioning system. Journal of Building Engineering 2024; 88: 109085.
  • [15] Katircioğlu F, Cingiz Z, Çay Y, Gürel AE, Kolip A. Performance assessment of a refrigeration system charged with different refrigerants using infrared image processing techniques. Arabian Journal for Science and Engineering 2021; 46(12): 12009-28.
  • [16] Berkah Fajar TK, Restu Bagas P, Ukhi S, Alhamid MI, Lubis A. Energy and exergy analysis of an R410A small vapor compression system retrofitted with R290. Case Studies in Thermal Engineering 2020; 21: 100671.
  • [17] Guilherme ÍF, Marcucci Pico DF, dos Santos DDO, Bandarra Filho EP. A review on the performance and environmental assessment of R-410A alternative refrigerants. Journal of Building Engineering 2022; 47: 103847.
  • [18] Tian Q, Cai D, Ren L, Tang W, Xie Y, He G, et al. An experimental investigation of refrigerant mixture R32/R290 as drop-in replacement for HFC410A in household air conditioners. International Journal of Refrigeration 2015; 57: 216-28.
  • [19] Mota-Babiloni A, Mateu-Royo C, Navarro-Esbrí J, Barragán-Cervera Á. Experimental comparison of HFO-1234ze(E) and R-515B to replace HFC-134a in heat pump water heaters and moderately high temperature heat pumps. Applied Thermal Engineering 2021; 196: 117256.
  • [20] Zhang X, Li Y. A review of recent research on hydrofluoroolefin (HFO) and hydrochlorofluoroolefin (HCFO) refrigerants. Energy 2024; 311: 133423.
  • [21] Salhi K, Mohamed Ramadan K, Hadjiat MM, Hamidat A. Energetic and exergetic performance of solar-assisted direct expansion air-conditioning system with low-GWP refrigerants in different climate locations. Arabian Journal for Science and Engineering 2020; 45(7): 5385-98.
  • [22] Ibrahim OAA, Kadhim SA, Hammoodi KA, Rashid FL, Askar AH. Review of hydrocarbon refrigerants as drop-in alternatives to high-GWP refrigerants in VCR systems: The case of R290. Cleaner Engineering and Technology 2024; 23: 100825.
  • [23] Choudhari CS, Sapali SN. Performance investigation of natural refrigerant R290 as a substitute to R22 in refrigeration systems. Energy Procedia 2017; 109: 346-52.
  • [24] Aisyah N, Ariyadi HM. Performance evaluation of R1224yd as alternative to R123 and R245fa for vapor compression heat pump system. International Journal of Thermodynamics 2024; 27(1): 13-21.
  • [25] Koşan M. Investigation of using low GWP alternatives to replace R404A in the refrigeration system. International Journal of Energy Studies 2023; 8(3): 453-64.
  • [26] Stegou-sagia A, Damanakis M. Thermodynamic correlations, k – exponents, speed of sound, and COP data for binary refrigerant mixtures. International Journal of Thermodynamics 2004; 7(1): 15-22.
  • [27] Ravi G, Adhimoulame K. Thermodynamics studies on VCRS using refrigerant blends of R290, R600A, and R1234ZE. Multiscale and Multidisciplinary Modeling, Experiments and Design 2024; 7(5): 4807-18.
  • [28] Sezen K, Gungor A. Performance analysis of air source heat pump according to outside temperature and relative humidity with mathematical modeling. Energy Conversion and Management 2022; 263: 115702.
  • [29] Sezen K. Influence of airflow rates on air source heat pump operating parameters. Applied Thermal Engineering 2023; 233: 121123.
  • [30] Bell IH, Wronski J, Quoilin S, Lemort V. Pure and pseudo-pure fluid thermophysical property evaluation and the open-source thermophysical property library coolprop. Industrial and Engineering Chemistry Research 2014; 53(6): 2498-508.
  • [31] Choi YJ, Kedzierski MA, Domanski PA. A generalized pressure drop correlation for evaporation and condensation of alternative refrigerants in smooth and micro-fin tubes. National Institute of Standards and Technology, Gaithersburg, US, 1999. https://nvlpubs.nist.gov/nistpubs/Legacy/IR/nistir6333. pdf.
  • [32] Koopman T, Zhu T, Rohlfs W. Performance evaluation of air-source heat pump based on a pressure drop embedded model. Heliyon 2024; 10:4
  • [33] Daikin. RXF-E outdoor units datasheet. Daikin Industries, 2023. https://e2e.si/wp-content/uploads/2023/04/RXF-E_Data-books_EEDEN23_English.pdf.
  • [34] Daikin. FTXF-E indoor units datasheet. Daikin Industries, 2023. https://e2e.si/wp-content/uploads/2023/04/FTXF-E_Data-books_EEDEN23_English.pdf.
  • [35] Electra. WMZ series service manual. Electra Consumer Products, 2004. http://lh.airwell-res.com/sites/default/files/imported/Electra/c18/p53/WMZ%20R407C-R22-.pdf.
  • [36] Daikin. RXB-C Outdoor units datasheet. Daikin Industries, 2015. https://daikin.kh.ua/wp-content/uploads/2015/06/EEDEN15-100_RXB-C.pdf.
  • [37] Pramudantoro TP, Sukamto E, Sumeru K, Margana AS, Sukri MF. Effect of refrigerant charge variation of R32 as drop-in replacement for R22 in air conditioning system. AIP Conference Maharashtra, India, 2018.
  • [38] Saravanan AL, Murugan RS, Lal DM. Investigations on charge reduction strategies to use R290 as an alternative to R22 in a split air conditioner. Experimental Heat Transfer 2017; 30(2): 126-38.
  • [39] Koyama S, Takata N, Fukuda S. Drop-in experiments on heat pump cycle using HFO-1234ze (E) and its mixtures with HFC-32. International Refrigeration and Air Conditioning Conference Purdue, US, 2010.
Toplam 39 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Makine Mühendisliği (Diğer)
Bölüm Research Article
Yazarlar

Kutbay Sezen 0000-0003-1018-5793

Yayımlanma Tarihi 26 Haziran 2025
Gönderilme Tarihi 13 Şubat 2025
Kabul Tarihi 14 Nisan 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 10 Sayı: 2

Kaynak Göster

APA Sezen, K. (2025). Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study. International Journal of Energy Studies, 10(2), 332-366. https://doi.org/10.58559/ijes.1639324
AMA Sezen K. Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study. International Journal of Energy Studies. Haziran 2025;10(2):332-366. doi:10.58559/ijes.1639324
Chicago Sezen, Kutbay. “Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study”. International Journal of Energy Studies 10, sy. 2 (Haziran 2025): 332-66. https://doi.org/10.58559/ijes.1639324.
EndNote Sezen K (01 Haziran 2025) Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study. International Journal of Energy Studies 10 2 332–366.
IEEE K. Sezen, “Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study”, International Journal of Energy Studies, c. 10, sy. 2, ss. 332–366, 2025, doi: 10.58559/ijes.1639324.
ISNAD Sezen, Kutbay. “Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study”. International Journal of Energy Studies 10/2 (Haziran2025), 332-366. https://doi.org/10.58559/ijes.1639324.
JAMA Sezen K. Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study. International Journal of Energy Studies. 2025;10:332–366.
MLA Sezen, Kutbay. “Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study”. International Journal of Energy Studies, c. 10, sy. 2, 2025, ss. 332-66, doi:10.58559/ijes.1639324.
Vancouver Sezen K. Thermodynamic insights and comparative evaluation of R22, R410A, R32, R290, and R1234ze(E) in air source heat pump systems: A theoretical study. International Journal of Energy Studies. 2025;10(2):332-66.