Experimental Study on a Multi-Evaporator Refrigeration System Equipped with EEV-Based Ejector
Abstract
:1. Introduction
- The refrigerant enters the compressor at low pressure at state (1), and is compressed to the high-pressure point at state (2).
- The high-pressure refrigerant enters the condenser and is condensed to states (3) and (4), and then flows through expansion valves at states (5) and (6).
- Then, two-phase refrigerants enter two evaporators, and the refrigerants become superheated at states (7) and (8).
- Superheated refrigerants enter the EEV-based ejector and mix with each other.
- The mixed flow leaves the EEV-based ejector with a pressure lift and obtains the state (1), and the cycle is completed.
- First, a hybrid PRV- and ejector-based vapor-compression refrigeration system was established, in which PRV-based vapor-compression mode and ejector-based vapor-compression mode could be operated.
- Second, the performances of PRV- and ejector-based modes were identified through the experiments.
- Third, both the ejector and system performances were identified by varying the ejector spindle-blocking area percentage.
- Last, the system performance was verified by varying the condensing temperature.
2. Experimental Setup
- PT1000 platinum resistance temperature sensors with error of ±0.3 °C;
- pressure transducers with full scale error of 0.5%;
- two oval wheal flow meters with error of ±0.5%.
3. Geometrical Details of the EEV-Based Ejector
4. Results and Discussion
4.1. System Performance of Both Modes
4.2. Effect of Spindle-Blocking Percentage on the Ejector Entrainment Ratio and System Performance
4.3. Effect of Condensing Temperature on System Performance
5. Conclusions
- (1)
- With the increase in the cooling capacity, the COP of both modes increased. The ejector-based mode had a COP 3.6% higher than the PRV-based vapor-compression mode.
- (2)
- With the increase in the ejector spindle-blocking percentage, ER dropped by 52% and COP dropped by 30.8%. The effect of the blocking percentage on ER seemed more evident than that on COP.
- (3)
- The system COP decreased along with both the spindle-blocking area percentage and condensing temperature. In comparison, the system COP was more sensitive to the condensing temperature than the ejector spindle-blocking area percentage. Lower condensing temperature and spindle-blocking area percentage of the ejector offered better system performance.
Author Contributions
Funding
Conflicts of Interest
References
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Yan, J.; Wang, C. Experimental Study on a Multi-Evaporator Refrigeration System Equipped with EEV-Based Ejector. Entropy 2022, 24, 1302. https://doi.org/10.3390/e24091302
Yan J, Wang C. Experimental Study on a Multi-Evaporator Refrigeration System Equipped with EEV-Based Ejector. Entropy. 2022; 24(9):1302. https://doi.org/10.3390/e24091302
Chicago/Turabian StyleYan, Jia, and Chen Wang. 2022. "Experimental Study on a Multi-Evaporator Refrigeration System Equipped with EEV-Based Ejector" Entropy 24, no. 9: 1302. https://doi.org/10.3390/e24091302
APA StyleYan, J., & Wang, C. (2022). Experimental Study on a Multi-Evaporator Refrigeration System Equipped with EEV-Based Ejector. Entropy, 24(9), 1302. https://doi.org/10.3390/e24091302