Calculation Model of High-Pressure Water Jet Slotting Depth for Coalbed Methane Development in Underground Coal Mine
Abstract
:1. Introduction
2. Theory of Rock-Breaking for a High-Pressure Water Jet
2.1. Rock-Breaking Mechanism of High-Pressure Water Jet
2.2. Rock-Cutting Model for a High-Pressure Water Jet
3. Influence Factor Analysis for Water Jet Slotting Depth
3.1. Nozzle Diameter
3.2. Jet Pressure
3.3. Rotation Speed and Slotting Time
4. Model for Calculating Water Jet Slotting Depth
5. Field Test
5.1. Test Background
5.2. Verification of Slotting Depth Model
6. Conclusions
- (1)
- The attenuation coefficient of the jet axial dynamic pressure first decreased and then increased with the increase of the nozzle diameter. For a much higher jet impact velocity, there existed an optimal nozzle diameter. Additionally, the cutting depth linearly increased with the jet pressure and decreased as a power function with the increase of the jet translation speed. Moreover, the number of cuttings had a significant impact on the cutting depth, and the several previous cuttings played a major role in the jet cutting. With the further increase of cutting times, the cutting depth slowly increased, but the increment was small.
- (2)
- Water jet slotting experiments were conducted with different rotation speeds and slotting times. The results revealed that the slotting depth increased with the slotting time, but the growth rate gradually decreased and tended to be stable. As the rotation speed increased, the slotting depth became greater at the initial period, and the limit depth was reached faster. At the early slotting stages, more slotting repetitions were helpful in increasing the slotting depth. At the later slotting stages, a longer single impact improved the slotting efficiency.
- (3)
- A model for calculating the water jet slotting depth was established according to the effects of key parameters on the cutting depth. This model was subsequently verified using the rotatory slotting experiment data, and the results revealed that the fitting was good. Based on the proposed model, the slotting depths under different jet pressures and the threshold rock-breaking pressures were calculated.
- (4)
- Water jet slotting field tests were carried out. The slotting depths at different rotation speeds with different slotting times were analyzed. Comparisons with the depths predicted by the calculation model were made, which revealed that the differences are acceptable.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Number | Test Condition | Whether There is Water Flowing Out from Inspection Hole or Not | Slotting Depth (m) | Prediction Depth (m) |
---|---|---|---|---|
1 | n = 60 r/min, t = 5 min | 1#~2#: Yes, 3#~6#: No | 1.0~1.5 m | 1.37 m |
2 | n = 50 r/min, t = 10 min | 1#~2#: Yes, 4#~6#: No 3#: a little water | 1.0~1.5 m, close to 1.5 m | 1.48 m |
3 | n = 40 r/min, t = 15 min | 1#~3#: Yes, 4#~6#: No | 1.5~2.0 m | 1.69 m |
4 | n = 30 r/min, t = 20 min | 1#~3#: Yes, 5#~6#: No 4#: a little water | 1.5~2.0 m, close to 2.0 m | 1.91 m |
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Zhang, J.; Wang, Y.; Ge, Z.; Xiao, S.; Zhao, H.; Huang, X. Calculation Model of High-Pressure Water Jet Slotting Depth for Coalbed Methane Development in Underground Coal Mine. Appl. Sci. 2019, 9, 5250. https://doi.org/10.3390/app9235250
Zhang J, Wang Y, Ge Z, Xiao S, Zhao H, Huang X. Calculation Model of High-Pressure Water Jet Slotting Depth for Coalbed Methane Development in Underground Coal Mine. Applied Sciences. 2019; 9(23):5250. https://doi.org/10.3390/app9235250
Chicago/Turabian StyleZhang, Jianguo, Yingwei Wang, Zhaolong Ge, Songqiang Xiao, Hanyun Zhao, and Xiaobo Huang. 2019. "Calculation Model of High-Pressure Water Jet Slotting Depth for Coalbed Methane Development in Underground Coal Mine" Applied Sciences 9, no. 23: 5250. https://doi.org/10.3390/app9235250
APA StyleZhang, J., Wang, Y., Ge, Z., Xiao, S., Zhao, H., & Huang, X. (2019). Calculation Model of High-Pressure Water Jet Slotting Depth for Coalbed Methane Development in Underground Coal Mine. Applied Sciences, 9(23), 5250. https://doi.org/10.3390/app9235250