MARATTO

article · Energy Conversion and Management X

Development and exergo-energetic analysis of an energy-efficient solar-assisted transcritical CO2 refrigeration system with two-phase ejector

20245 citationsOpen accessUniversity of Douala

Abstract

• A new solar-assisted vapor compression/ejector refrigeration system using R744 as the working fluid was developed and analyzed. • The ejector performance and the energy and exergy analysis of the system were evaluated. • The COP and energy saving values of the system for a solar irradiation of 300W/m 2 are 2.88 and 30%, respectively. • The COP reaches a value of 3.4 for an evaporation temperature of 5 °C. • The PTC is the system component that destroys the most exergy, followed by the compressor, the ejector and the gas cooler. This paper proposes and evaluates the performance of a new refrigeration and energy production system that combines the vapor compression cycle with ejector and the Brayton subcycle using CO 2 as the working fluid. In this system, the Brayton cycle uses solar radiation as thermal energy, the heat of which is transmitted to the fluid through a solar concentrator, then expanded in a turbine to produce mechanical energy favorable to the reduction of energy consumed by the compressor of the refrigeration cycle. The study aims to examine the energy and exergy performance criteria of the combined system. The developed model of the system was simulated using EES software, for an evaporation temperature of −10 °C and a cooling capacity estimated at 15 kW. The analysis of the system in case of solar radiation, presents a COP of 2.88, an improvement of 30.05 % compared to the conventional system, with an exergy efficiency of 25.6 %. In addition, the effect of several operating parameters on the system performance are discussed, including solar irradiation, mass flow fraction, ambient temperature and evaporation temperature. Simulation results show that the energy savings of the proposed system can reach a threshold value of 43 % for a mass flow fraction α = 0.9 or at a maximum solar irradiation of 1000 W/m 2 .

Research topics

  • Refrigeration and Air Conditioning Technologies
  • Advanced Thermodynamic Systems and Engines
  • Phase Equilibria and Thermodynamics

Sustainable Development Goals

Read the original research

This page summarises published work. The authoritative version sits with the publisher.

DOI: 10.1016/j.ecmx.2024.100854

Is something wrong with this record? Report it or request removal.

Discussion

Discuss this research

Have you built on this work, tried to replicate it, or seen it applied in practice? Share what you know. Verified researchers and MARATTO™ domain experts can open a discussion, and any member can reply. Contributions are reviewed before they appear.

No discussion yet. Open the first thread.