Investigation on Coal Fragmentation by High-Velocity Water Jet in Drilling: Size Distributions and Fractal Characteristics
Abstract
:1. Introduction
2. Material and Methods
2.1. Experimental System and Equipments
2.2. Experimental Procedures
2.3. Determination of Fragment Size and Shape Distributions
2.4. Characterization of Fragment Size and Shape Distributions
2.4.1. Generalized Extreme Value (GEV) Distribution
2.4.2. Fractal Model
3. Results
3.1. Size Distribution of Fragments
3.2. Fragment Shape
3.3. Fractal Characteristic of Coal Fragments
4. Discussion
5. Conclusions
- The NUM-based cumulative probability curves of coal fragments are more intensive in the sections with relatively small particle sizes, and then the curves become sparser with increasing particle size. With increasing jet velocity, there is an obvious shift in the distribution curves toward smaller sizes, implying that the fragments decrease as the jet impact velocity increases. Moreover, the higher the coal strength is, the larger the fragment sizes are when the jet impact energy is the same.
- The size distributions of coal fragments are mainly determined by the dominant fragment size. The dominant fragment size increases logarithmically as the jet impact velocity decreases; the curves will become flat, and the particle size range is more scattered. With the increase in coal strength, the dominant fragment size increases, but there is no obvious change in the dispersion degree of the fragment size distribution.
- The NUM-based cumulative probability curves for the shape (the ratio of the major axis to the minor axis) of coal fragments move toward the upper left with the increase in impact velocity. The curve for high impact velocity attains unity more quickly. Furthermore, there is a difference in the orders of magnitude for the cumulative probability of fragment quantity for different sizes. The larger the particle size is, the smaller its proportion is in all the fragments.
- The coal fragmentation subjected to water jets in WJD has fractal characteristics. The fractal dimension value increases linearly with the increase in jet impact velocity. The fractal dimension of coal fragments from the M7 coal seam (f = 1.1) is smaller than that from the M8 coal seam (f = 0.5) under the same jet impact energy. In addition, the fractal dimensions obviously increase with the decrease in the dominant fragment size, which can be indirectly used to reflect the dynamic fragmentation of coal.
- The size distribution, morphology and fractal characteristics of coal fragments are determined by the failure patterns of coal subjected to water jet impact. The shear fracture zone, circumferential fractures and radial fractures with a high density and conical fractures are conducive to generating powder particles, fine particles, and large fragments, respectively.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Coal Seam | Protodyakonov Coefficient | Original Gas Content (m3/t) | Coal Seam Thickness (m) | Coal Seam Angle (°) |
---|---|---|---|---|
M7 | 1.10 | 15.72 | 0.75 | 46 |
M8 | 0.50 | 16.72 | 3.09 | 46 |
No. | 7 | 8-1 | 8-2 | 8-3 | 8-4 |
---|---|---|---|---|---|
Impact velocity (m/s) | 268 | 219 | 237 | 253 | 268 |
Mass percentage | 16% | 21% | 25% | 29% | 32% |
No. | Impact Velocity (m/s) | Fragment Mass (g) | Maximum Particle Size (mm) | ||||||
---|---|---|---|---|---|---|---|---|---|
≤0.3 mm | 0.3–0.5 mm | 0.5–1 mm | 1–3 mm | 3–6 mm | 6–12 mm | >12 mm | |||
7 | 268 | 903 | 303 | 883 | 1106 | 1370 | 872 | 276 | 50.36 |
8-1 | 219 | 1631 | 402 | 723 | 2179 | 955 | 1324 | 439 | 48.13 |
8-2 | 237 | 2297 | 375 | 1299 | 2485 | 1109 | 1405 | 204 | 39.47 |
8-3 | 253 | 2950 | 404 | 1945 | 2265 | 1141 | 1386 | 170 | 41.17 |
8-4 | 268 | 3490 | 570 | 2354 | 1936 | 1150 | 1355 | 216 | 42.59 |
Impact Velocity (m/s) | Fractal Dimension | Dominant Fragment Size |
---|---|---|
219 | 2.6684 | 0.7129 |
237 | 2.6878 | 0.6632 |
253 | 2.7248 | 0.6422 |
268 | 2.7536 | 0.6381 |
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Xiao, S.; Ge, Z.; Lu, Y.; Zhou, Z.; Li, Q.; Wang, L. Investigation on Coal Fragmentation by High-Velocity Water Jet in Drilling: Size Distributions and Fractal Characteristics. Appl. Sci. 2018, 8, 1988. https://doi.org/10.3390/app8101988
Xiao S, Ge Z, Lu Y, Zhou Z, Li Q, Wang L. Investigation on Coal Fragmentation by High-Velocity Water Jet in Drilling: Size Distributions and Fractal Characteristics. Applied Sciences. 2018; 8(10):1988. https://doi.org/10.3390/app8101988
Chicago/Turabian StyleXiao, Songqiang, Zhaolong Ge, Yiyu Lu, Zhe Zhou, Qian Li, and Lei Wang. 2018. "Investigation on Coal Fragmentation by High-Velocity Water Jet in Drilling: Size Distributions and Fractal Characteristics" Applied Sciences 8, no. 10: 1988. https://doi.org/10.3390/app8101988
APA StyleXiao, S., Ge, Z., Lu, Y., Zhou, Z., Li, Q., & Wang, L. (2018). Investigation on Coal Fragmentation by High-Velocity Water Jet in Drilling: Size Distributions and Fractal Characteristics. Applied Sciences, 8(10), 1988. https://doi.org/10.3390/app8101988