Acoustic Emission Characteristics of Coal Samples under Different Stress Paths Corresponding to Different Mining Layouts
Abstract
:1. Introduction
2. Experimental Area
2.1. Sample Specification and AE Sensor
2.2. Test Process
3. Results
3.1. Characteristics of AE Time Series Evolution of Coal under Deep Mining Conditions
3.2. Spatial Evolution and Fractal Characteristics of AE of Coal under Deep Mining Conditions
4. Conclusions
- (1)
- Under deep mining conditions, the time series evolution of AE activity exhibits three-stage characteristics, which correspond to the processes of initiation, stable propagation and unstable propagation of cracks in the coal.
- (2)
- Under deep mining conditions, the occurrence timing of the main ruptures of the three-stage coal activities may be ranked in descending order, i.e., protective coal seam, top-coal caving and nonpillar mining layouts. The number of cumulative AE events and the number of AE ring-down counts of the three mining layouts were on the same order of magnitude. The accumulated AE energy released by the coal mass in front of the working face of the protective coal seam was one order of magnitude lower than that of caving coal; similarly, the accumulated AE energy of caving coal was lower by one order of magnitude than that of nonpillar mining. The energy released from a single rupture of the sample under the nonpillar layout was higher than that under the other two mining layouts.
- (3)
- Under deep mining conditions, as the peak stress increased, the AE spatial fractal dimension decreased successively under the protective seam, top-coal caving and nonpillar mining layouts. The nonpillar mining layout resulted in a higher degree of unstable coal mass rupture in front of the working face.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Mining Layouts | Phase I Starting Point | Phase II Starting Point | Phase III Starting Point | |||
---|---|---|---|---|---|---|
Stress/% | Time/s | Stress/% | Time/s | Stress/% | Time/s | |
Protective-seam | 53 | 92.9 | 89.6 | 1002.7 | 97.8 | 1205.3 |
Top-coal caving | 46.1 | 117.9 | 76.7 | 827.7 | 86.7 | 976.1 |
Nonpillar | 45.6 | 250.2 | 76.8 | 823.7 | 81.9 | 880.7 |
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Yang, Y.; Ai, T.; Zhang, Z.; Zhang, R.; Ren, L.; Xie, J.; Zhang, Z. Acoustic Emission Characteristics of Coal Samples under Different Stress Paths Corresponding to Different Mining Layouts. Energies 2020, 13, 3295. https://doi.org/10.3390/en13123295
Yang Y, Ai T, Zhang Z, Zhang R, Ren L, Xie J, Zhang Z. Acoustic Emission Characteristics of Coal Samples under Different Stress Paths Corresponding to Different Mining Layouts. Energies. 2020; 13(12):3295. https://doi.org/10.3390/en13123295
Chicago/Turabian StyleYang, Yiming, Ting Ai, Zetian Zhang, Ru Zhang, Li Ren, Jing Xie, and Zhaopeng Zhang. 2020. "Acoustic Emission Characteristics of Coal Samples under Different Stress Paths Corresponding to Different Mining Layouts" Energies 13, no. 12: 3295. https://doi.org/10.3390/en13123295
APA StyleYang, Y., Ai, T., Zhang, Z., Zhang, R., Ren, L., Xie, J., & Zhang, Z. (2020). Acoustic Emission Characteristics of Coal Samples under Different Stress Paths Corresponding to Different Mining Layouts. Energies, 13(12), 3295. https://doi.org/10.3390/en13123295