Response Characteristics of Electric Potential and Its Relationship with Dynamic Disaster during Mining Activities: A Case Study in Xuehu Coal Mine, China
Abstract
:1. Introduction
2. EP Monitoring Scheme of Coal Mass around Driving Face in Coal Seam
2.1. Overview of the Driving Face
2.2. EP Test Schemes
- (1).
- Test scheme of measuring points ahead of driving face
- (2).
- Test scheme of measuring points behind driving face
3. Sequential Monitoring Results of EP Responses of Coal during Driving Process
3.1. EP Response Characteristics of Coal ahead of Driving Face
3.2. EP Response Characteristics of Coal behind the Driving Face
- (1).
- Sequential EP Monitoring Results
- (2).
- Comparison of EP Mean Value and Mining Stress
- (3).
- Comparison Results of EP and EMR Measurements
3.3. Summarization of Regularities in Sequential EP Monitoring Results
4. Spatial Distribution of EP signals of Coal during Driving Process
4.1. EP Inversion Imaging Method
4.2. Spatial Distribution of EP Inversion Results
5. Discussion
5.1. Relationship between EP Response Characteristics and Outburst Hazard
5.2. Application Prospect of EP Monitoring for Forecasting Coal and Rock Dynamic Disaster Hazard
6. Conclusions
- (1).
- Under the comprehensive action of mining stress and gas effect, the coal mass could generate abundant EP signals during the driving process. The temporal response of the EP signals could reflect the loading state and damage evolution process of coal mass. When the mining stress was at a high level, or when the mining stress changed drastically, the coal mass was severely damaged and fractured, while EP intensity was at a high value level. When the mining stress was relatively stable, the gas effect on coal mass was key to aggravating the damage and breakage of the coal mass, which induces abnormal response of EP signals.
- (2).
- When the coal cannon phenomenon occurred, abundant elastic energy was accumulated inside the coal mass, which subsequently was suddenly released under the driving disturbance. Consequently, the EP signals present an abnormally high value. When the gas concentration increased rapidly, the interior coal mass suffered local severe damage, and the EP signals increased rapidly. Accordingly, the EP signals increased rapidly to a high value and fluctuated violently, which was regarded as precursory forecasting information of coal and gas outburst disaster risk. This was also verified by monitoring results of mining stress and EMR index.
- (3).
- Based on the unilateral inversion imaging method, the EP spatial distribution law in a certain region can be obtained with the help of multi-point EP test results. The distribution of the EP inversion cloud map has obvious and significant local concentration characteristics. The abnormal zones are close to, or coincident with, the high value interval of EMR intensity and count, identifying damage localization areas in the coal seam during driving activities. Through the identification of abnormal zones in the EP cloud map, it can identify the risk zones of coal and gas outburst. These results lay the foundation for taking targeted measures to prevent and control dynamic disasters.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Niu, Y.; Li, Z.; Wang, E.; Shan, T.; Wang, H.; Xu, S.; Sun, W.; Wang, G.; Xue, X.; Liu, J. Response Characteristics of Electric Potential and Its Relationship with Dynamic Disaster during Mining Activities: A Case Study in Xuehu Coal Mine, China. Int. J. Environ. Res. Public Health 2022, 19, 8949. https://doi.org/10.3390/ijerph19158949
Niu Y, Li Z, Wang E, Shan T, Wang H, Xu S, Sun W, Wang G, Xue X, Liu J. Response Characteristics of Electric Potential and Its Relationship with Dynamic Disaster during Mining Activities: A Case Study in Xuehu Coal Mine, China. International Journal of Environmental Research and Public Health. 2022; 19(15):8949. https://doi.org/10.3390/ijerph19158949
Chicago/Turabian StyleNiu, Yue, Zhonghui Li, Enyuan Wang, Tiancheng Shan, Heng Wang, Shilong Xu, Wenyang Sun, Guanteng Wang, Xingzhuo Xue, and Junqi Liu. 2022. "Response Characteristics of Electric Potential and Its Relationship with Dynamic Disaster during Mining Activities: A Case Study in Xuehu Coal Mine, China" International Journal of Environmental Research and Public Health 19, no. 15: 8949. https://doi.org/10.3390/ijerph19158949
APA StyleNiu, Y., Li, Z., Wang, E., Shan, T., Wang, H., Xu, S., Sun, W., Wang, G., Xue, X., & Liu, J. (2022). Response Characteristics of Electric Potential and Its Relationship with Dynamic Disaster during Mining Activities: A Case Study in Xuehu Coal Mine, China. International Journal of Environmental Research and Public Health, 19(15), 8949. https://doi.org/10.3390/ijerph19158949