Stratum Ventilation: Enabling Simultaneous Energy Conservation and Air Purification in Subway Cars
Abstract
:1. Introduction
2. Materials and Methods
2.1. Technical Solution
2.2. Study Method
2.3. Model Validation
3. Results
3.1. Dilution Purification Performance
3.2. Energy Conservation Performance
3.2.1. Summer Air-Conditioning (AC) Fresh-Air Cooling Load (CLf)
3.2.2. Human Heat Dissipation Cooling Load (CLp)
3.2.3. Total Cooling Load (CLtot)
4. Discussion
5. Conclusions
- (1)
- A subway car with SV could supply fresh air to seated passengers through targeted ventilation. When the ventilation rate was 7200 m3/h, the CRE was 5.85% for the seated passengers, which was higher than that observed in the CV (1.89%) at the ventilation rate of 8500 m3/h. However, the effectiveness of contaminant removal from the upper part of the car was reduced from 0.94% to 0.65%.
- (2)
- Adding a middle row of air inlets in a subway car equipped with SV caused the air supply in the car to be more uniform. The temperature field of the entire car was significantly reduced in the cooling season, and the distribution area of hot air was also reduced.
- (3)
- The hourly cooling load, according to the CFD results, indicated that the cooling energy consumption was 14.05% lower in the Type-B single subway car equipped with SV than in that equipped with CV.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Boundary Conditions | Type | Parameters | Initial Conditions | Parameters |
---|---|---|---|---|
Ceiling air supply inlet | Mass flow inlet | 0.76 kg/s, 298 K | Internal CO2 | 0% |
Air exhaust outlet at the intersection of the car body and ceiling | Pressure outlet | 0 Pa, 298 K | Internal N2 | 78% |
Air supply inlet in the middle of subway body | Mass flow inlet | 0.76 kg/s, 298 K | Internal O2 | 22% |
Air exhaust outlet below seats | Pressure outlet | 0 Pa, 298 K | Passenger exhaled CO2 | 4% |
Exhaled gas flow of passengers | Mass flow inlet | 1.07 × 10−4 kg/s, 309 K | Internal initial temperature | 309 K |
Parameter | CV | SV |
---|---|---|
Temperature of air supply (K) | 298 | 298 |
Average in-car temperature (K) | 301.5 | 300 |
Design temperature (K) | 299 | 299 |
Relative humidity (%) | 50 | 50 |
Air enthalpy (kJ·kg−1) | 52.91 | 52.91 |
Ventilation flow rate (m3·h−1) | 8500 | 7200 |
Fresh air requirement (m3·h−1) | 2600 | 2200 |
Temperature (K) | Relative Humidity (%) | Air Density (kg·m−3) | Enthalpy (kJ·kg−1) |
---|---|---|---|
308 | 68 | 1.293 | 97.85 |
Time (h) | 8:00 | 9:00 | 10:00 | 11:00 | 12:00 | 13:00 | 14:00 | 15:00 | 16:00 | 17:00 | 18:00 | 19:00 | 20:00 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Tw/K | 302.3 | 303.3 | 304.1 | 305 | 305.8 | 306.4 | 306.8 | 306.9 | 306.7 | 306.4 | 305.8 | 305 | 304.2 |
Tn,1/K | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 | 301.5 |
Tn,2/K | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 | 300 |
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Mao, Y.; Wang, S.; Liang, J.; Mao, S.; Han, Y.; Zhang, S. Stratum Ventilation: Enabling Simultaneous Energy Conservation and Air Purification in Subway Cars. Int. J. Environ. Res. Public Health 2022, 19, 14521. https://doi.org/10.3390/ijerph192114521
Mao Y, Wang S, Liang J, Mao S, Han Y, Zhang S. Stratum Ventilation: Enabling Simultaneous Energy Conservation and Air Purification in Subway Cars. International Journal of Environmental Research and Public Health. 2022; 19(21):14521. https://doi.org/10.3390/ijerph192114521
Chicago/Turabian StyleMao, Yanhui, Shengxu Wang, Jianzhou Liang, Saiqin Mao, Yukun Han, and Shengquan Zhang. 2022. "Stratum Ventilation: Enabling Simultaneous Energy Conservation and Air Purification in Subway Cars" International Journal of Environmental Research and Public Health 19, no. 21: 14521. https://doi.org/10.3390/ijerph192114521
APA StyleMao, Y., Wang, S., Liang, J., Mao, S., Han, Y., & Zhang, S. (2022). Stratum Ventilation: Enabling Simultaneous Energy Conservation and Air Purification in Subway Cars. International Journal of Environmental Research and Public Health, 19(21), 14521. https://doi.org/10.3390/ijerph192114521