Study on Mechanical Characteristics of Deformation and the Failure of Gas-Containing Coal in the Wuhai Mining Area of China under Different Gas Pressure Conditions
Abstract
:1. Introduction
2. Analysis of Mechanical Characteristics and Influencing Factors of Deformation and Failure of Gas-Containing Coal
2.1. Analysis of Gas Occurrence and Migration Law in Coal and Rock Mass
2.2. Analysis of Influencing Factors on Mechanical Characteristics of Gas-Containing Coal
- (1)
- Effect of confining pressure on mechanical properties of gas-containing coal
- (2)
- The effect of porosity on mechanical properties of gas-containing coal
- (3)
- Influence of seepage on mechanical properties of gas-containing coal
- (4)
- Effect of gas pressure on mechanical properties of gas-containing coal
3. Uniaxial Compression Experimental Study on Deformation and Failure Mechanical Properties of Gas-Containing Coal under Different Gas Pressure Conditions
3.1. Preparation Method of Coal Sample Containing Gas
- (1)
- Coal sample preparation
- (2)
- Test equipment
3.2. Uniaxial Compression Test Process of Gas-Containing Coal
3.2.1. Test Plan
3.2.2. Test Steps
- (1)
- The standard coal samples prepared from the Wuhushan Coal Mine in Wuhai Mining area, and they were divided into three groups and numbered; the original physical parameters of each group were recorded.
- (2)
- The first group of coal samples was numbered as A1−1, A1−2, and A1−3, which are subjected to conventional uniaxial compression tests.
- (3)
- The second group of coal samples were numbered as A2−1, A2−2 and A2−3. Uniaxial compression test was carried out on this group of coal samples under the gas pressure of 1 MPa.
- (4)
- The third group of coal samples was numbered A3−1, A3−2, and A3−3. A uniaxial compression test is carried out on this group of coal samples under the gas pressure of 2 MPa, and the process is the same as that of the second group of coal samples.
- (5)
- Experimentalists compared and analyzed the three groups of test data and summarized the rules.
3.3. Influence Analysis of Different Gas Pressure on Mechanical Properties of Coal Samples Containing Gas
- (1)
- Stress–strain curve analysis of coal samples
- (2)
- Analysis of mechanical parameters of coal samples
4. Numerical Simulation of Mechanical Characteristics of Failure, Deformation and Failure of Gas-Containing Coal under Different Gas Pressure Conditions
4.1. Determination of Numerical Model and Simulation Parameters for Coal Samples Containing Gas
- (1)
- Mathematical model of failure, deformation, and the failure of gas-containing coal
- (2)
- Establishment of numerical model for deformation and failure of gas-containing coal
- (3)
- The numerical simulation process, initial and boundary conditions of deformation, and failure of gas-containing coal
4.2. Analysis of Numerical Simulation Results of Deformation and Failure Mechanical Characteristics of Gas-Containing Coal under Different Gas Pressure Conditions
4.2.1. Analysis of Simulation Results of the Influence of Different Gas Pressure on Mechanical Parameters of Coal Samples Containing Gas
4.2.2. Analysis of Simulation Results of Fracture Process of Gas-Containing Coal under Different Gas Pressure Conditions
- (1)
- Fracture analysis of coal samples when the gas pressure is 0 MPa
- (2)
- Fracture analysis of coal samples when the gas pressure is 0.5 MPa
- (3)
- Fracture analysis of coal samples when the gas pressure is 1 MPa
- (4)
- Fracture analysis of coal samples when the gas pressure is 1.5 MPa
- (5)
- Fracture analysis of coal samples when the gas pressure is 2 MPa
- (6)
- Analysis and comparison of coal sample rupture under different gas pressure conditions
5. Conclusions and Discussion
- (1)
- The experimental and numerical simulation results show that with increasing gas pressure in the coal, there is decrease in Compressive strength, Elastic modulus, Strain, Peak strength and Bearing capacity and increase in Poisson’s ratio. When the failure state appears in the coal, the cracks are longer and wider, more random cracks are genareted, and the damage degree of the coal is greater.
- (2)
- The physical test method of uniaxial compression and the modeling method and procedure of numerical test of deformation and failure of gas-containing coal are applicable to the gas-containing coal with the same or similar gas geological conditions. According to the physical and mechanical parameters of the actual coal seam (such as elastic modulus, compressive strength, Poisson’s ratio, internal friction angle, etc.) and the gas occurrence, by adjusting gas pressure, seepage pressure, porosity, permeability coefficient and other parameters, this kind of test can be repeated and reasonable test results will be obtained.
- (3)
- Due to the cost and time of the test, only uniaxial compression physical test of deformation and failure of gas-containing coal under different gas pressure conditions is carried out in the paper. The corresponding triaxial compression physical test will be carried out in the later stage, so as to provide more reliable data support for the study of deformation and failure law of gas-containing coal.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Test Plan | Gas Pressure/MPa | Loading Rate/mm/min | Water/Cement Ratio/g/g | Briquette Forming Pressure/MPa |
---|---|---|---|---|
The first group | 0 | 0.02 | 9.5:0.5 | 15 |
The second group | 1 | 0.02 | 9.5:0.5 | 15 |
The third group | 2 | 0.02 | 9.5:0.5 | 15 |
Gas Pressure/MPa | Coal Sample Number | The Compressive Strength/MPa | Modulus of Elasticity/GPa | Poisson’s Ratio |
---|---|---|---|---|
0 | A1-1 | 39.27 | 2.249 | 0.233 |
A1-2 | 43.83 | 2.327 | 0.267 | |
A1-3 | 40.45 | 2.286 | 0.246 | |
On average | 41.18 | 2.29 | 0.25 | |
1 | A2-1 | 31.879 | 1.526 | 0.288 |
A2-2 | 37.236 | 1.998 | 0.242 | |
A2-3 | 33.754 | 1.529 | 0.259 | |
On average | 34.29 | 1.68 | 0.263 | |
2 | A3-1 | 22.072 | 1.63 | 0.324 |
A3-2 | 21.478 | 1.14 | 0.261 | |
A3-3 | 26.873 | 1.03 | 0.282 | |
On average | 23.47 | 1.27 | 0.29 |
Gas Pressure/MPa | Loading Force/N | Modulus of Elasticity/GPa |
---|---|---|
0 | 792.1 | 10.963 |
0.5 | 723.4 | 10.673 |
1 | 672.2 | 9.857 |
1.5 | 593.7 | 9.163 |
2 | 565.5 | 8.865 |
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Liu, Y.; Xing, H.; Duan, Z.; Yu, C.; Tian, Z.; Teng, T. Study on Mechanical Characteristics of Deformation and the Failure of Gas-Containing Coal in the Wuhai Mining Area of China under Different Gas Pressure Conditions. Appl. Sci. 2022, 12, 10139. https://doi.org/10.3390/app121910139
Liu Y, Xing H, Duan Z, Yu C, Tian Z, Teng T. Study on Mechanical Characteristics of Deformation and the Failure of Gas-Containing Coal in the Wuhai Mining Area of China under Different Gas Pressure Conditions. Applied Sciences. 2022; 12(19):10139. https://doi.org/10.3390/app121910139
Chicago/Turabian StyleLiu, Yejiao, Hui Xing, Zeyu Duan, Chaoyun Yu, Zhichao Tian, and Ting Teng. 2022. "Study on Mechanical Characteristics of Deformation and the Failure of Gas-Containing Coal in the Wuhai Mining Area of China under Different Gas Pressure Conditions" Applied Sciences 12, no. 19: 10139. https://doi.org/10.3390/app121910139
APA StyleLiu, Y., Xing, H., Duan, Z., Yu, C., Tian, Z., & Teng, T. (2022). Study on Mechanical Characteristics of Deformation and the Failure of Gas-Containing Coal in the Wuhai Mining Area of China under Different Gas Pressure Conditions. Applied Sciences, 12(19), 10139. https://doi.org/10.3390/app121910139