Mechanical Behavior Characteristics and Energy Evolution Law of Coal Samples under the Influence of Loading Rate—A Case Study of Deep Mining in Wudong Coal Mine
Abstract
:1. Introduction
2. Engineering Background
3. Design of Mechanical Test Scheme of Coal Samples Affected by Loading Rate
4. Instantaneous Failure of Coal Sample under Loading and Its Temperature Variation Law
4.1. Instantaneous Failure Characteristics of Coal Samples during Loading
4.2. Characteristics of Surface Temperature Change of Coal Samples during Loading
5. Mechanical Test Analysis of Coal Samples
5.1. Mechanical Properties of Coal Samples under the Influence of Loading Rate
5.2. Effect of Loading Rate on Strain Energy and Acoustic Emission Energy of Coal Samples
6. Discussion
7. Conclusions
- (1)
- With the increase in mining depth, the maximum horizontal stress variation of a single mine in its working face obviously increases, that is, the increase in mining depth makes the loading rate under the influence of coal mining increase. Therefore, this paper innovatively puts forward a new method to analyze the mechanical characteristics and energy changes of coal samples affected by the increase in mining depth through mechanical tests of coal samples with different loading rates.
- (2)
- During the loading process, the deformation and failure of coal sample surface showed four obvious processes—namely, the evolution process of “complete coal sample-partial failure-failure extension-overall instability”. Under the different loading rates of 9.75 × 10−4, 1.30 × 10−3, 1.95 × 10−3, and 3.90 × 10−3 mm/s, the maximum temperature and the maximum temperature difference per unit time of coal sample failure show an obvious nonlinear increasing trend with the increasing in loading rate.
- (3)
- The strength and elastic modulus of coal samples are exponential functions with a high fitting degree with the loading rate, and the increase rate decreases gradually with the increase in loading rate. The cumulative total energy and elastic energy of coal samples are linearly positively correlated with the loading rate. The higher the loading rate in the front stage, the higher the dissipation energy rate before reaching the peak stress, and the greater the cumulative energy of acoustic emission released from loading to failure of coal samples.
- (4)
- The higher the loading rate of a coal sample, the higher the stress and strain of that coal sample when it is destroyed, which makes the maximum temperature and maximum temperature difference of the coal sample when it is destroyed obviously increase. The greater the total energy input and elastic energy, the higher the acoustic emission energy released when the coal sample is destroyed. With the deep mining of coal seams, the cumulative strain energy of the coal sample is higher. The more serious the internal damage is before the coal sample is destroyed, the more easily concentrated release the accumulated strain energy induces dynamic instability.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Number | Loading Rate | Number of Samples |
---|---|---|
CD1, CD2, CD3 | 0.50 MPa/s | 3 |
CD4, CD5, CD6 | 1/5L0 mm/min | 3 |
CD7, CD8, CD9 | 1/10L0 mm/min | 3 |
CD10, CD11, CD12 | 1/15L0 mm/min | 3 |
CD13, CD14, CD15 | 1/20L0 mm/min | 3 |
Coal Loading Rate (mm/s) | 9.75 × 10−4 | 1.30 × 10−3 | 1.95 × 10−3 | 3.90 × 10−3 |
---|---|---|---|---|
Average peak strength of coal sample failure/MPa | 14.73 | 15.66 | 16.36 | 16.99 |
Strain of coal sample when it produces stress drop/% | 1.46 | 1.52 | 1.51 | 1.60 |
Average elastic modulus of coal sample failure/GPa | 1.76 | 1.88 | 1.99 | 2.20 |
The highest temperature when coal sample is destroyed/°C | 29.1 | 30.2 | 31.4 | 32.3 |
Maximum temperature difference per unit time of coal sample/°C | 10.1 | 10.8 | 11.3 | 11.7 |
Total input energy at peak position of coal sample/kJ × m3 | 77.02 | 79.53 | 81.47 | 89.35 |
Elastic energy at peak position of coal sample/kJ × m3 | 51.64 | 55.01 | 58.02 | 63.53 |
Dissipative energy at the peak of coal sample/kJ × m3 | 25.38 | 24.52 | 23.45 | 23.15 |
Accumulated energy of acoustic emission in the whole loading process 104/mV·us | 6.29 | 6.68 | 7.83 | 8.65 |
Acoustic emission energy per unit time in concentrated fracture development period/mV·us/s | 71.33 | 98.76 | 267.51 | 516.13 |
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Lai, X.; Jia, C.; Cui, F.; Feng, G.; Tian, M.; Li, Y.; Zong, C. Mechanical Behavior Characteristics and Energy Evolution Law of Coal Samples under the Influence of Loading Rate—A Case Study of Deep Mining in Wudong Coal Mine. Minerals 2022, 12, 1032. https://doi.org/10.3390/min12081032
Lai X, Jia C, Cui F, Feng G, Tian M, Li Y, Zong C. Mechanical Behavior Characteristics and Energy Evolution Law of Coal Samples under the Influence of Loading Rate—A Case Study of Deep Mining in Wudong Coal Mine. Minerals. 2022; 12(8):1032. https://doi.org/10.3390/min12081032
Chicago/Turabian StyleLai, Xingping, Chong Jia, Feng Cui, Ganggui Feng, Mengqi Tian, Yifei Li, and Cheng Zong. 2022. "Mechanical Behavior Characteristics and Energy Evolution Law of Coal Samples under the Influence of Loading Rate—A Case Study of Deep Mining in Wudong Coal Mine" Minerals 12, no. 8: 1032. https://doi.org/10.3390/min12081032
APA StyleLai, X., Jia, C., Cui, F., Feng, G., Tian, M., Li, Y., & Zong, C. (2022). Mechanical Behavior Characteristics and Energy Evolution Law of Coal Samples under the Influence of Loading Rate—A Case Study of Deep Mining in Wudong Coal Mine. Minerals, 12(8), 1032. https://doi.org/10.3390/min12081032