Energy improvements of CO2 transcritical refrigeration cycles using dedicated mechanical subcooling
[EN] In this work the possibilities of enhancing the energy performance of CO2 transcritical refrigeration systems using a dedicated mechanical subcooling cycle are analysed theoretically. Using simplified models of the cycles, the modification of the optimum operating conditions of the CO2 transcri...
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Zusammenfassung: | [EN] In this work the possibilities of enhancing the energy performance of CO2 transcritical
refrigeration systems using a dedicated mechanical subcooling cycle are analysed theoretically.
Using simplified models of the cycles, the modification of the optimum operating
conditions of the CO2 transcritical cycle by the use of the mechanical subcooling are
analysed and discussed. Next, for the optimum conditions, the possibilities of improving
the energy performance of the transcritical cycle with the mechanical subcooling are
evaluated for three evaporating levels (5, 5 and 30 C) for environment temperatures
from 20 to 35 C using propane as refrigerant for the subcooling cycle. It has been observed
that the cycle combination will allow increasing the COP up to a maximum of 20% and the
cooling capacity up to a maximum of 28.8%, being both increments higher at high evaporating
levels. Furthermore, the results indicate that this cycle is more convenient for
environment temperatures above 25 C. Finally, the results using different refrigerants for
the mechanical subcooling cycle are presented, where no important differences are
observed.
The authors gratefully acknowledge Jaume I University of Spain, who financed the present study through the research project P1.B2013-10.
Llopis Doménech, R.; Cabello, R.; Sanchez, D.; Torrella Alcaraz, E. (2015). Energy improvements of CO2 transcritical refrigeration cycles using dedicated mechanical subcooling. International Journal of Refrigeration. 55:129-141. https://doi.org/10.1016/j.ijrefrig.2015.03.016 |
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