An Experimental Investigation on the Microscopic Damage and Mechanical Properties of Coal Under Hygrothermal Conditions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Collection and Preparation
2.2. Test Process
2.2.1. XRD Test
2.2.2. Coal Sample Condition Control
2.2.3. SEM and EDS Test
2.2.4. Nanoindentation Test
- (1)
- Test Principle
- (2)
- Test scheme
3. Results and Discussion
3.1. Analysis of Microscopic Morphology Characteristics of Coal Samples
SEM and EDS Results Analysis
3.2. Analysis of Micromechanical Properties of Coal Samples
3.2.1. Load–Depth Curve Characteristics
3.2.2. Indentation Depth Characteristics
3.3. Analysis of Hardness and Elastic Modulus Results
3.3.1. Comparative Analysis of Hardness and Elastic Modulus Under Different Treatments
3.3.2. Relationship Between Hardness and Elastic Modulus
3.4. Effect of Mineral Composition on Micromechanical Properties
4. Conclusions
- (1)
- Under initial conditions, the coal surface is relatively dense and intact, exhibiting fewer cracks and pores. After humidification, dissolution pores appear in certain surface regions, resulting in a smoother transition between particles and the matrix. Following heating, the surface roughness of certain areas on the coal sample increased, accompanied by a localized disintegration and collapse. After the hygrothermal coupled treatment, the number of fine dissolution pores and microcracks on the coal surface increased markedly.
- (2)
- Compared with the initial state, humidification leads to the softening of the coal surface, with average values of and increasing by 15.9% and 41.27%, respectively, while values of and decrease by 17.14% and 29.53%. Heating induces surface hardening, leading to slight decreases in and , by 0.4% and 1.15%, and corresponding increases in and , by 1.56% and 1.32%. Under coupled hygrothermal conditions, and increase by 4.45% and 16.01%, respectively, while and decrease by 4.94% and 12.45%. The extent of the surface damage under hygrothermal coupling falls between that observed under humidification and heating alone.
- (3)
- A linear model passing through the origin provides an excellent fit for the relationship between the hardness and elastic modulus under different conditions. The hardness of coal exhibits a positive correlation with its elastic modulus, and this relationship is independent of the coal’s condition.
- (4)
- The mineral composition on the coal surface has a significant influence on its micromechanical properties. Hard minerals such as quartz tend to result in lower peak indentation depths and higher hardness values, whereas softer minerals like kaolinite lead to higher peak indentation depths and lower hardness values.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Mineral Composition | Amorphous | Kaolinite | Quartz | Carbonate |
Mass fraction/% | 84.28 | 10.44 | 4.12 | 1.16 |
Number | N | N-H | N-T | N-H-T | ||||
---|---|---|---|---|---|---|---|---|
EIT/GPa | HIT/MPa | EIT/GPa | HIT/MPa | EIT/GPa | HIT/MPa | EIT/GPa | HIT/MPa | |
N-1 | 3.631 | 273.642 | 3.504 | 264.762 | 3.723 | 361.57 | 3.316 | 247.273 |
N-2 | 2.983 | 163.812 | 3.274 | 203.468 | 3.615 | 306.747 | 3.660 | 268.625 |
N-3 | 4.045 | 302.211 | 3.706 | 320.786 | 4.176 | 286.536 | 4.135 | 315.138 |
N-4 | 4.073 | 287.213 | 3.236 | 196.081 | 4.312 | 322.364 | 3.516 | 237.975 |
N-5 | 4.591 | 366.602 | 3.117 | 170.684 | 3.515 | 218.072 | 3.259 | 182.788 |
N-6 | 4.076 | 290.772 | 3.109 | 169.848 | 3.996 | 290.677 | 3.640 | 233.024 |
N-7 | 3.739 | 369.306 | 3.052 | 187.673 | 3.579 | 205.483 | 3.581 | 251.219 |
N-8 | 3.813 | 269.595 | 3.272 | 184.892 | 4.011 | 298.376 | 4.208 | 322.248 |
N-9 | 3.721 | 289.314 | 2.430 | 142.743 | 4.223 | 357.081 | 3.662 | 228.935 |
Coal Sample Status | Slope (λ) | Goodness of Fit (R2) |
---|---|---|
initial | 0.07571 | 0.9837 |
humidification | 0.06488 | 0.9720 |
heating | 0.07291 | 0.9877 |
Humidification–heating | 0.06971 | 0.9914 |
summary | 0.07140 | 0.9820 |
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Zhao, H.; Li, G.; Xu, J.; Sun, Y.; He, F.; Hao, H.; Han, M.; Tian, B. An Experimental Investigation on the Microscopic Damage and Mechanical Properties of Coal Under Hygrothermal Conditions. Appl. Sci. 2025, 15, 7013. https://doi.org/10.3390/app15137013
Zhao H, Li G, Xu J, Sun Y, He F, Hao H, Han M, Tian B. An Experimental Investigation on the Microscopic Damage and Mechanical Properties of Coal Under Hygrothermal Conditions. Applied Sciences. 2025; 15(13):7013. https://doi.org/10.3390/app15137013
Chicago/Turabian StyleZhao, Haisen, Guichen Li, Jiahui Xu, Yuantian Sun, Fengzhen He, Haoran Hao, Mengzhuo Han, and Bowen Tian. 2025. "An Experimental Investigation on the Microscopic Damage and Mechanical Properties of Coal Under Hygrothermal Conditions" Applied Sciences 15, no. 13: 7013. https://doi.org/10.3390/app15137013
APA StyleZhao, H., Li, G., Xu, J., Sun, Y., He, F., Hao, H., Han, M., & Tian, B. (2025). An Experimental Investigation on the Microscopic Damage and Mechanical Properties of Coal Under Hygrothermal Conditions. Applied Sciences, 15(13), 7013. https://doi.org/10.3390/app15137013