The Enhancement of Lump Coal Percentage by High-Pressure Pulsed Hydraulic Fracturing for Sustainable Development of Coal Mines
Abstract
:1. Introduction
2. Engineering Background
2.1. Mining Geological Conditions
2.2. Analysis of Main Controlling Factors of LCP
3. Mechanism of LCP Enhancement via HPPHF
3.1. HPPHF Mechanism
3.2. Correlation between Coal Pre-Fracturing and LCP
4. Effects of HPPHF Parameters on Coal Fracturing
4.1. Elaboration of the Numerical Model
4.1.1. Simulation Method
4.1.2. Numerical Simulation
4.2. Comparison of Pulsed and Static Fracturing Effects
4.3. Effect of Pulse Amplitude on the Coal Fracturing Performance
4.4. Effect of Pulse Pressure Variation Frequency on the Fracturing Performance
4.5. Effect of Water Injection Pressure on the Fracturing Performance
5. Industrial Tests
5.1. Fracturing Scheme in the Working Face
5.2. HPPHF Implementation Results
6. Conclusions
- (1)
- Coal structure is the main factor controlling LCP in coal mining. In contrast to the original coal, coal masses with more developed fractures are more easily damaged under the same external force. HPPHF can reduce the coal hardness, produce fatigue damages in the coal, enhance the development degree of coal fractures, and thereby, enhance the LCP.
- (2)
- As compared to the static case, a pulsed one can effectively reduce the limiting (maximum) pressure required for the coal fracturing. By imposing the repeated pulsed loading on the coal rock, large-scale damages can be generated at low energy consumption. Pulse amplitude, pulse frequency, and water injection pressure influence the high-pressure pulsed fracturing performance. Among the above three parameters, water injection pressure imposes the most significant effect on fracturing performance, followed by pulse amplitude and frequency.
- (3)
- Finally, industrial tests were performed on the No. 5210 working face to validate HPPHF performance. After implementing HPPHF, LCP and especially the amount of lump coal with a diameter range of 13–100 mm in the fully-mechanized mining face can be significantly enhanced; however, coal wave caving can also be inhibited, accompanied with a reduction of the production of lump coal in caving. Meanwhile, the amount of pulverized coal with small diameter particles also drops after the fracturing.
Author Contributions
Funding
Conflicts of Interest
References
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Elastic Modulus/GPa | Poisson’s Ratio | Tensile Strength/MPa | Permeability Coefficient/(m/s) | Filtration Coefficient/(m/Pas) | |
---|---|---|---|---|---|
Coal Seam | 2.80 | 0.30 | 1.5 | 1 × 10−7 | 1 × 10−13 |
Roof and Floor | 4.50 | 0.25 | 2.3 | 1 × 10−7 | 1 × 10−14 |
Scheme | Initiation Pressure/MPa | Initiation Time/s | Maximum Crack Width/mm | Crack Propagation Length/m |
---|---|---|---|---|
A | 12.0 | 2.38 | 6.69 | 4.51 |
B | 10.8 | 2.57 | 6.75 | 4.62 |
C | 11.5 | 2.29 | 6.65 | 4.62 |
D | 10.7 | 2.48 | 6.82 | 4.60 |
Diameter/mm | Lump Coal Percentages Before Fracturing/% | Lump Coal Percentages After Fracturing/% |
---|---|---|
<13 | 87.6 | 76.3 |
13–30 | 5.5 | 10.2 |
30–80 | 3.6 | 6.7 |
80–100 | 1.1 | 5.2 |
>100 | 2.2 | 1.6 |
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Yan, H.; Zhang, J.; Zhou, N.; Chen, J. The Enhancement of Lump Coal Percentage by High-Pressure Pulsed Hydraulic Fracturing for Sustainable Development of Coal Mines. Sustainability 2019, 11, 2731. https://doi.org/10.3390/su11102731
Yan H, Zhang J, Zhou N, Chen J. The Enhancement of Lump Coal Percentage by High-Pressure Pulsed Hydraulic Fracturing for Sustainable Development of Coal Mines. Sustainability. 2019; 11(10):2731. https://doi.org/10.3390/su11102731
Chicago/Turabian StyleYan, Hao, Jixiong Zhang, Nan Zhou, and Junli Chen. 2019. "The Enhancement of Lump Coal Percentage by High-Pressure Pulsed Hydraulic Fracturing for Sustainable Development of Coal Mines" Sustainability 11, no. 10: 2731. https://doi.org/10.3390/su11102731
APA StyleYan, H., Zhang, J., Zhou, N., & Chen, J. (2019). The Enhancement of Lump Coal Percentage by High-Pressure Pulsed Hydraulic Fracturing for Sustainable Development of Coal Mines. Sustainability, 11(10), 2731. https://doi.org/10.3390/su11102731