Adhesion Behavior of Underground Coal Dust with Fused Silica: Effects of Relative Humidity and Particle Size
Abstract
:1. Introduction
2. Theory and Background
3. Materials and Methods
3.1. Samples and Preparation
3.2. Method of Single Coal Dust Adhesion Force Test
3.3. Experimental Method of Bulk Coal Dust Adhesion
3.4. Characterization Techniques
4. Results and Discussion
4.1. Theoretical Calculation of Adhesion Forces between Coal Dust Particles and Fused Silica
4.2. Measurement of Adhesion Force between Coal Dust Particles and Fused Silica Using AFM
4.3. Effect of RH on the Number of Particles and Particle Size Distribution of Coal Dust Adhesion
5. Conclusions
- (1)
- The adhesion forces in this study consisted mainly of van der Waals and capillary forces. The adhesion force increased with increasing RH; adhesion was dominated by van der Waals forces at a lower RH and capillary forces at a higher RH. The amount of coal dust adhering to the fused silica surface increased with RH due to the increase in adhesion force.
- (2)
- As the size of the coal dust particles increases, the increase in gravitational force is much faster than that of the adhesion force, which made the particles with larger size less prone to adhering. Therefore, the coal dust adhering to the surface of fused silica was dominated by small-sized (lesser than 50 μm) particles.
- (3)
- The proportion of large-sized (larger than 50 μm) particles adhering to the surface increased with the increase in RH. This is due to the increase in the adhesion force with RH, which leads to an increase in the frictional force between the particles and fused silica glass, allowing the particles with larger size to adhere.
- (4)
- Due to the irregular shape and rough surface of the coal dust, the actual contact area between the coal dust and the fused silica is greatly reduced, resulting in the theoretical values of the van der Waals forces and capillary forces being much larger than the experimental values.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Case | Element Content (At%) | ||||
---|---|---|---|---|---|
C | O | Si | Al | S | |
Tip1 | 64.02 | 29.37 | 3.68 | 2.75 | 0.18 |
Tip2 | 65.20 | 28.40 | 3.90 | 2.22 | 0.28 |
Case | Force (nN) | |
---|---|---|
Tip1 (11.39 μm) | Tip2 (44.36 μm) | |
Dry air | 1625 | 6331 |
Humid air | 203 | 790 |
RH (%) | Force (nN) | |
---|---|---|
Tip1 (11.39 μm) | Tip2 (44.36 μm) | |
60 | 1193 | 4649 |
70 | 1793 | 6982 |
80 | 2318 | 9026 |
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Zhou, S.; Yang, Y.; Shang, H. Adhesion Behavior of Underground Coal Dust with Fused Silica: Effects of Relative Humidity and Particle Size. Processes 2024, 12, 735. https://doi.org/10.3390/pr12040735
Zhou S, Yang Y, Shang H. Adhesion Behavior of Underground Coal Dust with Fused Silica: Effects of Relative Humidity and Particle Size. Processes. 2024; 12(4):735. https://doi.org/10.3390/pr12040735
Chicago/Turabian StyleZhou, Shujun, Yue Yang, and Hongfei Shang. 2024. "Adhesion Behavior of Underground Coal Dust with Fused Silica: Effects of Relative Humidity and Particle Size" Processes 12, no. 4: 735. https://doi.org/10.3390/pr12040735
APA StyleZhou, S., Yang, Y., & Shang, H. (2024). Adhesion Behavior of Underground Coal Dust with Fused Silica: Effects of Relative Humidity and Particle Size. Processes, 12(4), 735. https://doi.org/10.3390/pr12040735