Experimental Research on a Lightweight Miniature Wankel Compressor for a Vapor Compression Refrigeration System in Aerospace
Abstract
:1. Introduction
2. Development of a Lightweight Miniature Wankel Compressor
2.1. The Structure Design
2.2. The Parts Material
2.3. Motor Selection
2.4. Lightweight Compressor Development
3. Performance Experiment and Analysis
3.1. Experimental System
3.2. Influence of Refrigerant Charge on Compressor Performance
3.2.1. Evaporation Pressure and Condensation Pressure
3.2.2. Compressor Power Consumption
3.2.3. COP
3.3. Influence of Rotational Speed on Compressor Performance
3.3.1. Suction and Discharge Temperature and Pressure of Compressor
3.3.2. Compressor Power Consumption
3.3.3. COP
3.4. The Effect of Cooling Water Temperature on Compressor Performance
3.4.1. Suction and Discharge Temperature of the Compressor
3.4.2. Compressor Power Consumption
3.4.3. COP
3.5. Reliability Life Test
4. Conclusions
- (1)
- According to the working principle of the Wankel compressor and the requirements of the miniature refrigeration system, research on a lightweight, miniature, hermetic Wankel compressor has been carried out. The assembled compressor, without housing and motor, had a diameter of 65 mm, height of 85 mm and weight of 340.2 g.
- (2)
- The optimal refrigerant charge of the system was 220 g under a cooling capacity of 100 W. The minimum power consumption was achieved at approximately 40 W and the maximum COP was 2.5.
- (3)
- When the rotational speed was at 4300 rpm, the power consumption was 35 W and the maximum COP was 2.8. An increase in the rotational speed led to a decrease in the evaporation temperature and COP. When the rotational speed increased from 4300 rpm to 4800 rpm, the COP dropped sharply from 2.8 to 0.8.
- (4)
- When the inlet temperature of the cooling water was 25 °C, the maximum COP was obtained at approximately 3.2. To improve the COP, the inlet temperature of the cooling water should not be too high.
- (5)
- The reliability life test was carried out for 600 h. This reliability life test proved the reliability of the Wankel compressor.
- (6)
- The compressor was developed to solve the problem of high heat dissipation in spacecraft. Compressor performance optimization under the microgravity and high vacuum environment shall be the focus of future research.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Item | Parameter | Item | Parameter |
---|---|---|---|
Rated voltage | DC 24 V | Continuous running time | ≥5000 h |
Current | 1–5 A | Cooling capacity | ≥100 W |
Weight | ≤500 g | Maximum compression ratio | 3.5 |
Maximum exhaust temperature | 130 °C |
Part | Pre-Optimization Quality/g | Optimized Quality/g | Amount of Change/g |
---|---|---|---|
Eccentric shaft | 39.3 | 39.3 | 0 |
Triangular rotor | 46.1 | 46.1 | 0 |
Cylinder | 142.6 | 61.4 | −81.2 |
Front cover | 137.0 | 59.0 | −78.0 |
Back cover | 146.5 | 63.1 | −83.4 |
Rear outer cover | 71.2 | 71.2 | 0 |
Item | First | Second | Third |
---|---|---|---|
Housing material | 45 steel | 45 steel | duralumin |
Housing thickness | 8 mm | 4 mm | 4 mm |
Coupling | yes | yes | no |
Compressor weight | 3.925 kg | 2.855 kg | 1.490 kg |
Compressor length | 240 mm | 190 mm | 155 mm |
Components | Parameters |
---|---|
Heat sink | Channel width: 2 mm; Overall pressure drop: 1.68 × 104 Pa Heat exchange length: 0.777 m |
Compressor | Generating radius: 18 mm; Eccentricity: 3 mm |
Plate heat exchanger | Type: Brazed plate type; Heat transfer coefficient: 2500 W/m2·K Pressure Range: 3.0 MPa; Temperature range: −160~300 °C |
Capillary | Material: Red copper; Inside diameter: 0.64 × 1 mm; Calculated length: 2.75 m |
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Zhi, R.; Ma, R.; Zhang, D.; Wu, Y. Experimental Research on a Lightweight Miniature Wankel Compressor for a Vapor Compression Refrigeration System in Aerospace. Sustainability 2023, 15, 8826. https://doi.org/10.3390/su15118826
Zhi R, Ma R, Zhang D, Wu Y. Experimental Research on a Lightweight Miniature Wankel Compressor for a Vapor Compression Refrigeration System in Aerospace. Sustainability. 2023; 15(11):8826. https://doi.org/10.3390/su15118826
Chicago/Turabian StyleZhi, Ruiping, Rui Ma, Delou Zhang, and Yuting Wu. 2023. "Experimental Research on a Lightweight Miniature Wankel Compressor for a Vapor Compression Refrigeration System in Aerospace" Sustainability 15, no. 11: 8826. https://doi.org/10.3390/su15118826
APA StyleZhi, R., Ma, R., Zhang, D., & Wu, Y. (2023). Experimental Research on a Lightweight Miniature Wankel Compressor for a Vapor Compression Refrigeration System in Aerospace. Sustainability, 15(11), 8826. https://doi.org/10.3390/su15118826