Conventional and advanced exergy analyses of transcritical CO2 ejector refrigeration system equipped with thermoelectric subcooler

Конвенциональный и расширенный эксергетический анализ транскритической эжекторной холодильной системы на CO2, оснащённой термоэлектрическим переохладителем
Xi Liu, Kaihong Yu, Xinchen Wan, Minfeng Zheng, Xuelai Li
2021-04-01

advanced exergy analysisejector refrigeration systemexergy destructionthermoelectric subcoolertranscritical CO2 refrigeration
This paper assesses the exergetic performance inside transcritical CO2 ejector refrigeration system integrated with thermoelectric subcooler (EJE + TES) through conventional and advanced exergy analyses. The results point out that 89.44% of the total exergy destruction is endogenous, which clearly demonstrates that it is not close in the interrelations among the system components. In addition, increasing the efficiency of the different components can decrease the exergy destruction by about 53.36%. The avoidable exergy destructions induced by the compressor is the highest, which indicates that priority should be given to the improvement of the compressor, followed by the thermoelectric subcooler, evaporator, ejector and gas cooler, while the expansion valve has almost no potential for improvement. This conclusion differs from that obtained by the conventional exergy method. The effects of the pinch temperature difference in each heat exchanger, as well as the compressor and ejector efficiencies on cycle theoretically exergetic performance are considered. When the compressor and ejector efficiencies increase from 0.5 to 0.9, the avoidable endogenous exergy destruction taking place in the corresponding system component are reduced by 93.61% and 82.33%, respectively. The performance of the EJE + TES system can be enhanced through reducing the pinch temperature difference.
1
Endogenous exergy destruction accounts for 89.44% of total destruction, indicating limited influence from inter-component interactions.
2
Improving component efficiencies could reduce total exergy destruction by approximately 53.36%.
3
Increasing compressor and ejector efficiencies from 0.5 to 0.9 reduces their avoidable endogenous exergy destruction by 93.61% and 82.33%, respectively; reducing heat-exchanger pinch temperature differences further enhances performance.
4
The compressor has the greatest avoidable exergy destruction, followed by the thermoelectric subcooler, evaporator, ejector, and gas cooler; the expansion valve offers almost no improvement potential.
5
The study evaluates conventional and advanced exergy performance of a transcritical CO2 ejector refrigeration system integrated with a thermoelectric subcooler.

transcritical CO2 ejector refrigeration system integrated with a thermoelectric subcooler (EJE + TES)

conventional and advanced exergy performance, including endogenous and avoidable exergy destruction and the effects of component efficiencies and heat-exchanger pinch temperature differences

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2021-04-01
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Authors
Xi Liu
Kaihong Yu
Xinchen Wan
Minfeng Zheng
Xuelai Li
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