A Study on the Conditions of Fog Generation and the Change Rule of Fog Zone Length in Air Intake Roadway
Abstract
:1. Introduction
2. Field Test
2.1. Test Preparation
2.2. Test Results
3. Numerical Simulation
3.1. Governing Equations
- (1)
- The air flow is a one-dimensional steady flow in the axial direction.
- (2)
- The air flow is a constant, incompressible fluid.
- (3)
- Do not count the water vapor condensation and heat dissipation.
- (4)
- Mass force is not counted.
- (5)
- The surrounding rock is isotropic and homogeneous in all directions, and the thermophysical parameters are constant.
3.2. The Model and Boundary Conditions
3.3. Identification of Source Terms
4. Fog Generation and Distribution
4.1. Model Validation
4.2. Effect of Inlet Air Relative Humidity
4.3. Effect of Inlet Air Temperature
5. Conclusions
- (1)
- A model of the fog generation and distribution law in the air intake roadway was established, and the correlation between the moisture gain of surrounding rock and the relative humidity and temperature was established, which was applied in the numerical model. The accuracy of this numerical modeling approach was substantiated through a comparison of the simulated outcomes with actual field measurements, confirming the method’s validity in predicting fog behavior within the roadway environment.
- (2)
- When the inlet air relative humidity is 68.23%, the critical inlet air temperature for determining whether the air intake roadway is fogged is 24 °C. When the inlet air temperature is 28.95 °C, the critical inlet air relative humidity to determine whether fogging occurs in the roadway is 52.44%. When the inlet air relative humidity or inlet air temperature exceeds the critical point, fogging will occur in the air intake roadway.
- (3)
- Once the inlet air relative humidity and inlet air temperature exceeded the critical point, the fog point moved forward with the increase in inlet air relative humidity and inlet air temperature. Moreover, the length of the fog zone increased parabolically with the increase in inlet air relative humidity and inlet air temperature. This observation suggests that reducing the inlet air relative humidity and inlet air temperature would yield more effective fog prevention, particularly when these parameters are maintained at lower levels.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Equipment | Measured Parameters | Range | Resolution | Accuracy |
---|---|---|---|---|
YWSD50/100 mine intrinsically safe temperature and humidity detector | airflow temperature | −30~100 °C | 0.01 °C | ±0.5 °C |
airflow relative humidity | 0%~100% | 0.01% | ±0.5% | |
Mine Infrared Thermometer CWH600 | surrounding rock temperature | −30~600 °C | 0.1 °C | ±2% |
JFY-4 ventilation multi-parameter detector | wind speed | 0.2~20 m/s | 0.1 m/s | 0.2~5 m/s: 0.1 m/s; 5~20 m/s: ±0.25 m/s |
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Wu, Y.; Zhu, H.; Zhang, B.; Hu, L.; Wang, S.; Liu, J. A Study on the Conditions of Fog Generation and the Change Rule of Fog Zone Length in Air Intake Roadway. Sustainability 2024, 16, 4192. https://doi.org/10.3390/su16104192
Wu Y, Zhu H, Zhang B, Hu L, Wang S, Liu J. A Study on the Conditions of Fog Generation and the Change Rule of Fog Zone Length in Air Intake Roadway. Sustainability. 2024; 16(10):4192. https://doi.org/10.3390/su16104192
Chicago/Turabian StyleWu, Yan, Hongqing Zhu, Baozhen Zhang, Lintao Hu, Shuwei Wang, and Jiuli Liu. 2024. "A Study on the Conditions of Fog Generation and the Change Rule of Fog Zone Length in Air Intake Roadway" Sustainability 16, no. 10: 4192. https://doi.org/10.3390/su16104192
APA StyleWu, Y., Zhu, H., Zhang, B., Hu, L., Wang, S., & Liu, J. (2024). A Study on the Conditions of Fog Generation and the Change Rule of Fog Zone Length in Air Intake Roadway. Sustainability, 16(10), 4192. https://doi.org/10.3390/su16104192