Experimental Analysis of the Discharge Valve Movement of the Oil-Free Linear Compressor in the Refrigeration System
Abstract
:1. Introduction
2. Experimental Apparatus
2.1. The Linear Compressor
2.2. The Discharge Valve Structure
2.3. The Test Setup
2.4. The Data Acquisition System
3. Results and Discussion
3.1. The Movements of the Discharge Valve under Different Discharge Pressures
3.2. The Movements of the Discharge Valve under Different Frequencies
3.3. The Movements of the Discharge Valve under Different Strokes and Different Clearance Lengths
3.4. The Discharge Valve Movements with the p-t Diagram inside the Cylinder and Piston Motion
4. Conclusions
- By observing the time-domain curves of the discharge valve displacement, the dynamic behavior is visually understood. The discharge valve flutters due to the change in the form of pressure in the cylinder, which changes from static pressure to dynamic pressure. The delayed opening of the valve is caused by the valve inertia. Additional displacement fluctuations are present, which is due to the unevenness of the valve plate surface between the valve and the valve seat.
- With the decrease in the discharge pressure, the valve flutters increase due to the pressure fluctuations in the cylinder, the mean displacement of the valve increases due to the high static pressure difference between the cylinder and the discharge chamber, and the duration of the discharge increases due to the low speed of the valve.
- With the increase in the operation frequency, the duration of the discharge decreases, but the mean displacement of the valve increases due to the higher static pressure in the cylinder for the higher frequency. The oscillation period of the valve movement is almost identical under different operation frequencies; this is because the parameters of the discharge valve do not change.
- For a high stroke and a low clearance length, the duration of the discharge increases due to the increase in the volume efficiency and the increase in the duration of the discharge for a cycle, and the valve flutters increase due to the pressure fluctuations in the cylinder.
- In terms of the relationship between the valve movements, piston movements, and cylinder pressure, the delayed closing of the valve is little affected by the piston stroke, while the delayed opening of the valve is evidently affected at a low stroke (7 mm) due to the low pressure difference between the cylinder and the discharge chamber, and the delayed opening of the valve is more evident with the increase in the operating frequency. The delayed closing of the valve occurs at a high frequency (75 Hz).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Items (Unit) | Value |
---|---|
Total mass of moving part (kg) | 0.313 |
Resistance of motor coil (Ω) | 2.62 |
Motor constant (N/A) | 28.5 |
Inductance of motor coil (mH) | 3 |
Cylinder diameter (mm) | 19 |
Maximum stroke (mm) | 9 |
Flux density in gas gap (T) | 0.8 |
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Li, C.; Sun, J.; Zou, H.; Cai, J.; Zhu, T. Experimental Analysis of the Discharge Valve Movement of the Oil-Free Linear Compressor in the Refrigeration System. Sustainability 2023, 15, 5853. https://doi.org/10.3390/su15075853
Li C, Sun J, Zou H, Cai J, Zhu T. Experimental Analysis of the Discharge Valve Movement of the Oil-Free Linear Compressor in the Refrigeration System. Sustainability. 2023; 15(7):5853. https://doi.org/10.3390/su15075853
Chicago/Turabian StyleLi, Chengzhan, Jian Sun, Huiming Zou, Jinghui Cai, and Tingting Zhu. 2023. "Experimental Analysis of the Discharge Valve Movement of the Oil-Free Linear Compressor in the Refrigeration System" Sustainability 15, no. 7: 5853. https://doi.org/10.3390/su15075853
APA StyleLi, C., Sun, J., Zou, H., Cai, J., & Zhu, T. (2023). Experimental Analysis of the Discharge Valve Movement of the Oil-Free Linear Compressor in the Refrigeration System. Sustainability, 15(7), 5853. https://doi.org/10.3390/su15075853