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Year 2024, Volume: 10 Issue: 6, 1509 - 1523, 19.11.2024

Abstract

References

  • [1] Okasha A, Müller N. Simulation and performance correlation for transcritical CO2 heat pump cycle simulation and performance correlation for transcritical CO2 heat pump cycle. International Refrigeration and Air Conditioning Conference, Paper 2056; 2018.
  • [2] Baheta AT, Hassan S, Reduan AR, Woldeyohannes AD. Performance investigation of transcritical carbon dioxide refrigeration cycle. Procedia Cirp 2015;26:482485. [CrossRef]
  • [3] Santosa IM, Waisnawa IS. Performance analysis of transcritical CO2 refrigeration system for supermarket application. GEOMATE 2018;15:7075. [CrossRef]
  • [4] Singh S, Purohit N, Dasgupta MS. Comparative study of cycle modification strategies for trans-critical CO2 refrigeration cycle for warm climatic conditions. Case Stud Therm Engineer 2016;7:7891. [CrossRef]
  • [5] Sun Y, Wang J, Xie J. Performance optimizations of the transcritical CO2 two-stage compression refrigeration system and influences of the auxiliary gas cooler. Energies 2021;14:5578. [CrossRef]
  • [6] Rigola J, Raush G, Pérez-Segarra CD, Oliva A. Numerical simulation and experimental validation of vapour compression refrigeration systems. Special emphasis on CO2 trans-critical cycles. Int J Refrig 2005;28:12251237. [CrossRef]
  • [7] Liu Y, Sun Y, Tang D. Analysis of a CO2 transcritical refrigeration cycle with a vortex tube expansion. Sustainability 2019;11:2021. [CrossRef]
  • [8] Sawalha S. Theoretical evaluation of trans-critical CO2 systems in supermarket refrigeration. Part I: Modeling, simulation and optimization of two system solutions. Int J Refrig 2008;31:516524. [CrossRef]
  • [9] Wang Z, Zhao H, Wang X, Han J, Lai Y. Thermodynamic performance evaluation of the CO2 parallel compression supermarket refrigeration system with a subcooler. Int J Energy Res 2020;44:67096724. [CrossRef]
  • [10] Lin KH, Kuo CS, Hsieh WD, Wang CC. Modeling and simulation of the transcritical CO2 heat pump system. Int J Refrig 2013;36:20482064. [CrossRef]
  • [11] Shan AN. A review of trans-critical CO2 refrigeration cycle. Proceedings of the International Conference on Industrial & Mechanical Engineering and Operations Management Dhaka, Bangladesh, December 26-27, 2020.
  • [12] Ma Y, Liu Z, Tian H. A review of transcritical carbon dioxide heat pump and refrigeration cycles. Energy 2013;55:156172. [CrossRef]
  • [13] Bellos E, Tzivanidis C. A comparative study of CO2 refrigeration systems. Energy Conver Manage 2019;1:100002. [CrossRef]
  • [14] Nakagawa M, Marasigan AR, Matsukawa T. Experimental analysis on the effect of internal heat exchanger in transcritical CO2 refrigeration cycle with two-phase ejector. Int J Refrig 2011;34:15771586. [CrossRef]

Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency

Year 2024, Volume: 10 Issue: 6, 1509 - 1523, 19.11.2024

Abstract

Carbon dioxide, one of the most critical potential refrigerants, has little impact on the environment. CO2 trans-critical cycles are an essential topic in air conditioning. The current study investigates the performance of the CO2 trans-critical air conditioning cycle for various parameters. The distinct contribution of this work arises from its emphasis on the interrelated nature of the combined effect of compressor efficiency and vapor quality at the evaporator inlet on the overall performance of the CO2 trans-critical cycle; by filling this knowledge gap, the research endeavours to comprehensively understand the system’s behavior under a wide range of operation conditions. The cycle has been modelled using Engineering Equation Solver (EES) and MATLAB codes and validated against an experimental study. The results showed that the cooling capacity increases by 66% when gas-cooling pressure rises from 100 to 150 bar. Raising vapor quality from 0.1 to 0.5 and lowering the degree of superheat from 12 to 0 °C reduces the cooling capacity by 52.4% and increases the coefficient of performance by 87%. Power consumption of the compressor decreases by 50% by increasing compressor efficiency from 70% to 100% and lowering gas cooling pressure from 110 to 80 bar. While the coefficient of performance of the cycle increases by 111.7% by increasing compressor efficiency from 70 to 100% with a degree of sub-cool from 0 to 6 °C and a degree of superheat from 0 to 12 °C.

References

  • [1] Okasha A, Müller N. Simulation and performance correlation for transcritical CO2 heat pump cycle simulation and performance correlation for transcritical CO2 heat pump cycle. International Refrigeration and Air Conditioning Conference, Paper 2056; 2018.
  • [2] Baheta AT, Hassan S, Reduan AR, Woldeyohannes AD. Performance investigation of transcritical carbon dioxide refrigeration cycle. Procedia Cirp 2015;26:482485. [CrossRef]
  • [3] Santosa IM, Waisnawa IS. Performance analysis of transcritical CO2 refrigeration system for supermarket application. GEOMATE 2018;15:7075. [CrossRef]
  • [4] Singh S, Purohit N, Dasgupta MS. Comparative study of cycle modification strategies for trans-critical CO2 refrigeration cycle for warm climatic conditions. Case Stud Therm Engineer 2016;7:7891. [CrossRef]
  • [5] Sun Y, Wang J, Xie J. Performance optimizations of the transcritical CO2 two-stage compression refrigeration system and influences of the auxiliary gas cooler. Energies 2021;14:5578. [CrossRef]
  • [6] Rigola J, Raush G, Pérez-Segarra CD, Oliva A. Numerical simulation and experimental validation of vapour compression refrigeration systems. Special emphasis on CO2 trans-critical cycles. Int J Refrig 2005;28:12251237. [CrossRef]
  • [7] Liu Y, Sun Y, Tang D. Analysis of a CO2 transcritical refrigeration cycle with a vortex tube expansion. Sustainability 2019;11:2021. [CrossRef]
  • [8] Sawalha S. Theoretical evaluation of trans-critical CO2 systems in supermarket refrigeration. Part I: Modeling, simulation and optimization of two system solutions. Int J Refrig 2008;31:516524. [CrossRef]
  • [9] Wang Z, Zhao H, Wang X, Han J, Lai Y. Thermodynamic performance evaluation of the CO2 parallel compression supermarket refrigeration system with a subcooler. Int J Energy Res 2020;44:67096724. [CrossRef]
  • [10] Lin KH, Kuo CS, Hsieh WD, Wang CC. Modeling and simulation of the transcritical CO2 heat pump system. Int J Refrig 2013;36:20482064. [CrossRef]
  • [11] Shan AN. A review of trans-critical CO2 refrigeration cycle. Proceedings of the International Conference on Industrial & Mechanical Engineering and Operations Management Dhaka, Bangladesh, December 26-27, 2020.
  • [12] Ma Y, Liu Z, Tian H. A review of transcritical carbon dioxide heat pump and refrigeration cycles. Energy 2013;55:156172. [CrossRef]
  • [13] Bellos E, Tzivanidis C. A comparative study of CO2 refrigeration systems. Energy Conver Manage 2019;1:100002. [CrossRef]
  • [14] Nakagawa M, Marasigan AR, Matsukawa T. Experimental analysis on the effect of internal heat exchanger in transcritical CO2 refrigeration cycle with two-phase ejector. Int J Refrig 2011;34:15771586. [CrossRef]
There are 14 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Ahmad Bani Yaseen This is me 0000-0001-6380-4653

Mohammad Tarawneh This is me 0000-0001-7725-8550

Hussein N. Dalgamoni This is me 0000-0003-1374-2479

Khaleel Al-khasawneh This is me 0000-0003-3710-9344

Publication Date November 19, 2024
Submission Date September 19, 2023
Published in Issue Year 2024 Volume: 10 Issue: 6

Cite

APA Yaseen, A. B., Tarawneh, M., Dalgamoni, H. N., Al-khasawneh, K. (2024). Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency. Journal of Thermal Engineering, 10(6), 1509-1523.
AMA Yaseen AB, Tarawneh M, Dalgamoni HN, Al-khasawneh K. Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency. Journal of Thermal Engineering. November 2024;10(6):1509-1523.
Chicago Yaseen, Ahmad Bani, Mohammad Tarawneh, Hussein N. Dalgamoni, and Khaleel Al-khasawneh. “Performance Study of Sub-Cooled CO2 Trans-Critical Air Conditioning Cycle: The Combined Effect of Vapor Quality and Compressor Efficiency”. Journal of Thermal Engineering 10, no. 6 (November 2024): 1509-23.
EndNote Yaseen AB, Tarawneh M, Dalgamoni HN, Al-khasawneh K (November 1, 2024) Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency. Journal of Thermal Engineering 10 6 1509–1523.
IEEE A. B. Yaseen, M. Tarawneh, H. N. Dalgamoni, and K. Al-khasawneh, “Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency”, Journal of Thermal Engineering, vol. 10, no. 6, pp. 1509–1523, 2024.
ISNAD Yaseen, Ahmad Bani et al. “Performance Study of Sub-Cooled CO2 Trans-Critical Air Conditioning Cycle: The Combined Effect of Vapor Quality and Compressor Efficiency”. Journal of Thermal Engineering 10/6 (November 2024), 1509-1523.
JAMA Yaseen AB, Tarawneh M, Dalgamoni HN, Al-khasawneh K. Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency. Journal of Thermal Engineering. 2024;10:1509–1523.
MLA Yaseen, Ahmad Bani et al. “Performance Study of Sub-Cooled CO2 Trans-Critical Air Conditioning Cycle: The Combined Effect of Vapor Quality and Compressor Efficiency”. Journal of Thermal Engineering, vol. 10, no. 6, 2024, pp. 1509-23.
Vancouver Yaseen AB, Tarawneh M, Dalgamoni HN, Al-khasawneh K. Performance study of sub-cooled CO2 trans-critical air conditioning cycle: The combined effect of vapor quality and compressor efficiency. Journal of Thermal Engineering. 2024;10(6):1509-23.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering