Research on Mechanical Properties and Damage Constitutive Model of Water-Bearing Coal
Abstract
:Featured Application
Abstract
1. Introduction
2. Experimental Methods
2.1. Experimental System
2.1.1. Electro-Hydraulic Servo Universal Testing Machine
2.1.2. Strain Measurement System
2.2. Sample Preparation
- The coal sample selected by mass and wave velocity was put in a steady temperature drying oven, and the drying temperature was set at 105 °C. After 12 h, the heated coal sample was moved to the dryer and cooled to room temperature to measure the mass of the dried coal sample;
- The dried coal sample obtained by the first step was heated in a boiling vessel for eight hours and then cooled to room temperature. Finally, the coal sample was wiped off the surface water to measure its mass . The following formula can be used to calculate the saturated moisture content of a coal sample:
- The water-saturated coal sample obtained in the second step was heated in a constant temperature and humidity drying oven, and the drying temperature was set at 40 °C. The mass of coal sample was measured every 30 min and the moisture content of the coal sample was calculated. When the water content of the coal sample was close to the set water content, the measurement time interval was shortened to five minutes until the coal sample reached the planned moisture content. The following is the formula for calculating the moisture content of a coal sample:
2.3. Experimental Scheme
3. Experimental Results
3.1. Uniaxial Compressive Stress–Strain Characteristics of Coal Samples
3.2. Relationship between Mechanical Parameters and Moisture Content of Coal Samples
4. Damage Constitutive Model
4.1. Evolution Law of Mesoscopic Damage
4.1.1. Mesoscopic Damage Caused by Water–Rock Interaction
4.1.2. Mesoscopic Damage Caused by Loading
4.1.3. Evolution of Total Mesoscopic Damage
4.2. Random Distribution Variable of Micro-Element Strength
4.3. Sectional Damage Constitutive Model
5. Validation of the Constitutive Model
- Mean absolute error (MAE), which is defined as:
- 2.
- Mean square error (MSE), which is defined as:
- 3.
- Root mean square error (RMSE), which is defined as:
- 4.
- Decision coefficient (R2), which is defined as:
6. Conclusions
- The full stress–strain curve of coal under uniaxial compression has a nearly horizontal step before the elastic stage, which is described as the pore compaction stage in this article. The interval length of this stage is positively correlated with the water content, and this stage will only emerge with the stress–strain curve of water-bearing coal with high porosity and permeability.
- With increasing water content, the interval between the fracture compaction stage and the coal sample pore compaction stage increases, the elastic deformation stage interval decreases, the plastic failure stage is more obvious, and the multistage stress drop platform appears in the post-peak failure stage.
- The loading rate does not change the type of the fitting function between the mechanical parameters (uniaxial compression strength, Young’s modulus, and peak strain) of coal samples and their moisture content. The mechanical parameters of the coal samples in each parallel test group can be fitted as the same function as their moisture content, and all have good fitting results.
- The three-stage damage constitutive model of water-bearing coal is derived, and the statistical indicators (MAE, MSE, RMSE, and R2) are introduced to scientifically evaluate the fitting effect of the model. This model improves the shortcomings of the traditional continuous fitting curve and the two-stage fitting curve. The fitting degree of the experimental curve and the theoretical curve is high, and it can better characterize and predict the mechanical properties of coal under different water contents.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Test Group | Number | /% | ||
---|---|---|---|---|
S1 | S1-1 | 244.8 | 238.4 | 0 |
S1-2 | 245.2 | - | 3.31 | |
S1-3 | 238.4 | 231.2 | 7.09 | |
S1-4 | 255.2 | 248.3 | 10.31 | |
S1-5 | 244.1 | 237.1 | 13.37 | |
S2 | S2-1 | 256.3 | 249.1 | 0 |
S2-2 | 243.5 | - | 3.31 | |
S2-3 | 245.1 | 238.5 | 7.09 | |
S2-4 | 247.0 | 239.9 | 10.75 | |
S2-5 | 250.5 | 243.6 | 13.55 | |
S3 | S3-1 | 241.4 | 234.0 | 0 |
S3-2 | 245.1 | - | 3.31 | |
S3-3 | 236.3 | 229.9 | 7.05 | |
S3-4 | 254.0 | 246.6 | 10.42 | |
S3-5 | 250.7 | 243.4 | 13.31 | |
S4 | S4-1 | 263.5 | 256.7 | 0 |
S4-2 | 245.8 | - | 3.31 | |
S4-3 | 247.2 | 240.6 | 7.07 | |
S4-4 | 240.6 | 233.5 | 10.49 | |
S4-5 | 252.8 | 245.4 | 13.85 |
Index | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|
The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | |
MAE | 0.507 | 0.476 | 0.683 | 0.894 | 0.057 | 0.682 | 0.595 | 0.665 | 1.059 | 0.580 |
MSE | 0.429 | 0.618 | 0.869 | 1.681 | 0.008 | 0.825 | 0.775 | 0.666 | 1.916 | 0.668 |
RMSE | 0.655 | 0.786 | 0.932 | 1.296 | 0.092 | 0.908 | 0.881 | 0.816 | 1.384 | 0.817 |
R2 | 0.89 | 0.84 | 0.94 | 0.88 | 0.99 | 0.87 | 0.81 | 0.83 | 0.51 | 0.83 |
Index | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|
The Authors’ Model | The Comparison Model | The Authors’ model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | |
MAE | 0.123 | 0.459 | 0.379 | 1.148 | 0.603 | 0.638 | 0.062 | 0.421 | 0.225 | 0.839 |
MSE | 0.028 | 0.515 | 0.572 | 4.194 | 0.615 | 0.672 | 0.006 | 0.338 | 0.280 | 1.341 |
RMSE | 0.168 | 0.718 | 0.756 | 2.048 | 0.784 | 0.820 | 0.077 | 0.581 | 0.529 | 1.158 |
R2 | 0.99 | 0.92 | 0.95 | 0.65 | 0.94 | 0.94 | 0.99 | 0.95 | 0.96 | 0.83 |
Index | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|
The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | |
MAE | 0.282 | 0.761 | 0.834 | 0.949 | 0.231 | 0.556 | 0.688 | 0.496 | 0.345 | 0.792 |
MSE | 0.563 | 1.840 | 4.838 | 1.949 | 0.187 | 1.067 | 1.450 | 0.538 | 1.229 | 1.203 |
RMSE | 0.751 | 1.357 | 2.200 | 1.396 | 0.432 | 1.033 | 1.204 | 0.733 | 1.108 | 1.097 |
R2 | 0.89 | 0.64 | 0.73 | 0.89 | 0.98 | 0.89 | 0.73 | 0.90 | 0.76 | 0.77 |
Index | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|
The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | The Authors’ Model | The Comparison Model | |
MAE | 0.120 | 0.620 | 0.876 | 0.639 | 0.727 | 0.756 | 0.296 | 0.588 | 0.311 | 0.374 |
MSE | 0.058 | 0.739 | 2.827 | 1.443 | 2.650 | 0.881 | 0.365 | 0.590 | 0.225 | 0.299 |
RMSE | 0.240 | 0.860 | 1.681 | 1.201 | 1.628 | 0.939 | 0.604 | 0.768 | 0.475 | 0.547 |
R2 | 0.99 | 0.86 | 0.77 | 0.88 | 0.61 | 0.87 | 0.90 | 0.84 | 0.93 | 0.90 |
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Ju, F.; Wang, D.; Wang, Z.; Xiao, M.; He, Z.; Ning, P.; Wang, T.; Zhou, C.; Zhang, Y.; Li, L.; et al. Research on Mechanical Properties and Damage Constitutive Model of Water-Bearing Coal. Appl. Sci. 2022, 12, 8811. https://doi.org/10.3390/app12178811
Ju F, Wang D, Wang Z, Xiao M, He Z, Ning P, Wang T, Zhou C, Zhang Y, Li L, et al. Research on Mechanical Properties and Damage Constitutive Model of Water-Bearing Coal. Applied Sciences. 2022; 12(17):8811. https://doi.org/10.3390/app12178811
Chicago/Turabian StyleJu, Feng, Dong Wang, Zhongwei Wang, Meng Xiao, Zequan He, Pai Ning, Tengfei Wang, Cheng Zhou, Yazhen Zhang, Li Li, and et al. 2022. "Research on Mechanical Properties and Damage Constitutive Model of Water-Bearing Coal" Applied Sciences 12, no. 17: 8811. https://doi.org/10.3390/app12178811
APA StyleJu, F., Wang, D., Wang, Z., Xiao, M., He, Z., Ning, P., Wang, T., Zhou, C., Zhang, Y., Li, L., & Yan, C. (2022). Research on Mechanical Properties and Damage Constitutive Model of Water-Bearing Coal. Applied Sciences, 12(17), 8811. https://doi.org/10.3390/app12178811