Research Article

Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles

Volume: 5 Number: 2 May 31, 2018
TR

Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles

Abstract

Carbon dioxide has received increasing attention owing to its zero ODP and negligible GWP. Furthermore, carbon dioxide also has desirable thermodynamic properties, such as large specific heat, low viscosity, and large heat conductivity. Carbon dioxide CO2 has low critical pressure and temperature which are 7.36 MPa and 31.1°C, respectively. The low critical temperature causes the heat rejection process to occur above the critical point and heat absorption process to happen below the critical point. However, due to the high throttling loss, the energy efficiency of the basic transcritical CO2 cycle is lower than that of the conventional low pressure refrigeration cycle.

In the present study three different kinds of transcritical carbon dioxide cycles that are the transcritical cycle with expansion valve (called also the conventional transcritical cycle), the transcritical cycle with expander and the transcritical cycle with ejector are analyzed. The effect of operating parameters on the maximum performance and exergy efficiency of the three cycles is investigated. Results reveal that replacing the expansion valve by an expander or an ejector does not only improve the maximum COP and the exregy efficiency but also reduces the optimal heat rejection pressure.

Keywords

References

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Details

Primary Language

English

Subjects

Engineering

Journal Section

Research Article

Authors

Publication Date

May 31, 2018

Submission Date

March 7, 2018

Acceptance Date

March 7, 2018

Published in Issue

Year 2018 Volume: 5 Number: 2

APA
Gomrı, R. (2018). Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles. El-Cezeri, 5(2), 425-436. https://doi.org/10.31202/ecjse.402904
AMA
1.Gomrı R. Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles. El-Cezeri Journal of Science and Engineering. 2018;5(2):425-436. doi:10.31202/ecjse.402904
Chicago
Gomrı, Rabah. 2018. “Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles”. El-Cezeri 5 (2): 425-36. https://doi.org/10.31202/ecjse.402904.
EndNote
Gomrı R (May 1, 2018) Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles. El-Cezeri 5 2 425–436.
IEEE
[1]R. Gomrı, “Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles”, El-Cezeri Journal of Science and Engineering, vol. 5, no. 2, pp. 425–436, May 2018, doi: 10.31202/ecjse.402904.
ISNAD
Gomrı, Rabah. “Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles”. El-Cezeri 5/2 (May 1, 2018): 425-436. https://doi.org/10.31202/ecjse.402904.
JAMA
1.Gomrı R. Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles. El-Cezeri Journal of Science and Engineering. 2018;5:425–436.
MLA
Gomrı, Rabah. “Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles”. El-Cezeri, vol. 5, no. 2, May 2018, pp. 425-36, doi:10.31202/ecjse.402904.
Vancouver
1.Rabah Gomrı. Energy and Exergy Analyses of Different Transcritical CO2 Refrigeration Cycles. El-Cezeri Journal of Science and Engineering. 2018 May 1;5(2):425-36. doi:10.31202/ecjse.402904

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