Effects of Accumulated Damage on the Dynamic Properties of Coal Measures Sandstone
Abstract
:1. Introduction
2. Material and Methods
2.1. Material Characterization
2.2. Physical and Quasi-Static Tests
2.3. Dynamic Testing Facilities
2.4. Definition of Accumulated Damage
2.5. Dynamic Testing Scheme
- Initial accumulated damage tests. The MTS816 is used to apply various levels of accumulated damage to selected coal measures sandstone specimens. The accumulated damage factor is calculated to measure the extent of the sandstone damage.
- Dynamic tests of sandstone. The SHPB test equipment is used to perform impact tests on sandstone to investigate the coupling effect of a high strain rate and the accumulated damage. There are five different strain rates and seven different accumulated damage conditions in this study. In each condition, only one test is conducted. In the event of a significant irregularity in the test results, a second test under the identical settings is required to ensure reliability.
- Observation of sandstone failure modes. An SEM device is used to observe sandstone’s microstructure after failure and compare it with the macroscopic failure morphology. Finally, the effects of high strain rates and accumulated damages on the sandstone failure mode are explored.
2.6. Dynamic Testing Facilities
3. Results and Discussion
3.1. Dynamic Properties of Coal Measures Sandstone
3.2. Effects of Accumulated Damage on the Stress–Strain Curves
3.3. Effects of Accumulated Damage on the Compressive Strength
3.4. Effects of Accumulated Damage on the Deformation Modulus
4. Deformation and Failure Modes of Coal Measures Sandstone
4.1. Macroscopic Failure Modes
4.2. Microscopic Failure Modes
4.3. Energy Absorption Law
5. Statistical Damage Constitutive Model Considering the Strain Rate Effect and the Accumulated Damage
5.1. Statistical Damage Constitutive Model
5.2. Sensitivity Analysis of Parameters
5.3. Validation and Discussion of the Model
6. Conclusions
- The stress–strain curves of the intact coal measures sandstone are classified into three phases: the linear elastic phase, the plastic deformation phase, and the strain-softening phase. The accumulated damages result in the crack closure phases in the dynamic curves of sandstone, and the greater the accumulated damage, the longer the crack closure phase.
- The accumulated damage results in a significant reduction in the dynamic strength and the deformation modulus of the sandstone specimens. Compared with the compressive strength, the deformation modulus of sandstone is more susceptible to accumulated damage. The DIFs of strength and the deformation modulus are divided into two stages. The high-strain-rate phase has a faster change rate than the low- and medium-strain-rate phases.
- Accumulated damage reduces the internal friction angle of sandstone, leading to tensile fracture and shear fracture in the macroscopic failure mode. From a microscopic perspective, accumulated damage leads to intergranular fracture between mineral particles, whereas a high strain rate induces transgranular fracture in mineral particles. The energy absorption law corresponds to the failure modes of sandstone specimens.
- A statistical damage constitutive model of sandstone is established, which can well reflect the effect of the strain rate and accumulated damage on the dynamic response. Parameter a mainly affects the peak stress, while parameter b mainly affects the crack closure phase. The parameters and m have certain effects on the peak stress and the deformation modulus, but parameter m also affects the strain-softening phase.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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ρ/(kg·m−3) | VP/(m·s−1) | ω/% | E/GPa | σu/MPa | σT/MPa | μ |
---|---|---|---|---|---|---|
2589 | 3682 | 1.13 | 1.91 | 22.46 | 2.38 | 0.14 |
σ/MPa | 8.99 | 11.23 | 13.48 | 15.73 | 17.97 | 20.22 |
D | 0.1893 | 0.2764 | 0.3789 | 0.4939 | 0.6283 | 0.7891 |
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Sha, Z.; Pu, H.; Xu, J.; Ni, H.; Guo, S. Effects of Accumulated Damage on the Dynamic Properties of Coal Measures Sandstone. Minerals 2022, 12, 810. https://doi.org/10.3390/min12070810
Sha Z, Pu H, Xu J, Ni H, Guo S. Effects of Accumulated Damage on the Dynamic Properties of Coal Measures Sandstone. Minerals. 2022; 12(7):810. https://doi.org/10.3390/min12070810
Chicago/Turabian StyleSha, Ziheng, Hai Pu, Junce Xu, Hongyang Ni, and Shiru Guo. 2022. "Effects of Accumulated Damage on the Dynamic Properties of Coal Measures Sandstone" Minerals 12, no. 7: 810. https://doi.org/10.3390/min12070810
APA StyleSha, Z., Pu, H., Xu, J., Ni, H., & Guo, S. (2022). Effects of Accumulated Damage on the Dynamic Properties of Coal Measures Sandstone. Minerals, 12(7), 810. https://doi.org/10.3390/min12070810