LAPSE:2023.21274
Published Article

LAPSE:2023.21274
Thermodynamic Analysis of a CO2 Refrigeration Cycle with Integrated Mechanical Subcooling
March 22, 2023
Abstract
Different alternatives are being studied nowadays in order to enhance the behavior of transcritical CO2 refrigeration plants. Among the most studied options, subcooling is one of the most analyzed methods in the last years, increasing cooling capacity and Coefficient Of Performance (COP), especially at high hot sink temperatures. A new cycle, called integrated mechanical subcooling cycle, has been developed, as a total-CO2 solution, to provide the subcooling in CO2 transcritical refrigeration cycles. It corresponds to a promising solution from the point of view of energy efficiency. The purpose of this work is to present, for the first time, thermodynamic analysis of a CO2 refrigeration cycle with integrated mechanical subcooling cycle from first and second law approaches. Using simplified models of the components, the optimum operating conditions, optimum gas-cooler pressure, and subcooling degree are determined in order to obtain the maximum COP. The main energy parameters of the system were analyzed for different evaporation levels and heat rejection temperatures. The exergy destruction was analyzed for each component, identifying the elements of the system that introduce more irreversibilities. It has been concluded that the new cycle could offer COP improvements from 11.7% to 15.9% in relation to single-stage cycles with internal heat exchanger (IHX) at 35 °C ambient temperature.
Different alternatives are being studied nowadays in order to enhance the behavior of transcritical CO2 refrigeration plants. Among the most studied options, subcooling is one of the most analyzed methods in the last years, increasing cooling capacity and Coefficient Of Performance (COP), especially at high hot sink temperatures. A new cycle, called integrated mechanical subcooling cycle, has been developed, as a total-CO2 solution, to provide the subcooling in CO2 transcritical refrigeration cycles. It corresponds to a promising solution from the point of view of energy efficiency. The purpose of this work is to present, for the first time, thermodynamic analysis of a CO2 refrigeration cycle with integrated mechanical subcooling cycle from first and second law approaches. Using simplified models of the components, the optimum operating conditions, optimum gas-cooler pressure, and subcooling degree are determined in order to obtain the maximum COP. The main energy parameters of the system were analyzed for different evaporation levels and heat rejection temperatures. The exergy destruction was analyzed for each component, identifying the elements of the system that introduce more irreversibilities. It has been concluded that the new cycle could offer COP improvements from 11.7% to 15.9% in relation to single-stage cycles with internal heat exchanger (IHX) at 35 °C ambient temperature.
Record ID
Keywords
Carbon Dioxide, COP, Energy Efficiency, integrated mechanical subcooling
Subject
Suggested Citation
Nebot-Andrés L, Calleja-Anta D, Sánchez D, Cabello R, Llopis R. Thermodynamic Analysis of a CO2 Refrigeration Cycle with Integrated Mechanical Subcooling. (2023). LAPSE:2023.21274
Author Affiliations
Nebot-Andrés L: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain [ORCID]
Calleja-Anta D: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain
Sánchez D: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain [ORCID]
Cabello R: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain
Llopis R: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain [ORCID]
Calleja-Anta D: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain
Sánchez D: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain [ORCID]
Cabello R: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain
Llopis R: Thermal Engineering Group, Mechanical Engineering and Construction Department, Jaume I University, 12071 Castellón de la Plana, Spain [ORCID]
Journal Name
Energies
Volume
13
Issue
1
Article Number
E4
Year
2019
Publication Date
2019-12-18
ISSN
1996-1073
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Original Submission
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PII: en13010004, Publication Type: Journal Article
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LAPSE:2023.21274
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https://doi.org/10.3390/en13010004
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Mar 22, 2023
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