Dynamic Tensile Mechanical Properties of Outburst Coal Considering Bedding Effect and Evolution Characteristics of Strain Energy Density
Abstract
:1. Introduction
2. Experimental Setup
2.1. Specimen Preparation
2.2. Laboratory Devices
2.3. Stress Distribution Analysis in Brazilian Disk
3. Experimental Results and Discussion
3.1. Debris Characterisation
3.2. Evolution Characteristics of Strain Energy Density
3.3. Distribution Characteristics of Coal Specimen Fragments
4. Numerical Simulation
4.1. CDEM and Criteria
4.2. Analysis of Dynamic Tensile Characteristics of Coal Based on CDEM
5. Discussion
6. Conclusions
- (1)
- When the laminated surface of the coal sample is at a certain angle with the impact loading direction, the damage mode is coupled with tensile and shear damage. For the natural or saturated coal samples with debris particle sizes of 0~0.2 mm, the percentage of debris mass does not change much with the increase of impact velocity. In addition, the percentage of fragment mass increases significantly with the increase of impact velocity for the natural or water-saturated coal samples with the fragment size of 0.2~5 mm.
- (2)
- The presence of weak planes, microcracks and laminae cause the shear damage zone to behave in a more complex manner. If the crack plane coincides with the high shear stress plane, the developed shear cracks extend along the weak laminae and the shear damage zones in BD specimens are not symmetrically distributed.
- (3)
- Changes in the difference between the relative tensile displacements of two groups of measurement points on the localization zone also reflect the evolution of deformation localization of the specimen. When the deformation localization begins in the center of the specimen, the displacements of the two groups of measurement points are relatively consistent at the beginning of the growth, and the difference between them generally begins to increase in the middle.
- (4)
- The energy accumulated inside the coal rock specimen that causes damage of the specimen increases with the increase of impact velocity. For medium-grained debris with a particle size >5 mm, the scale ratio characteristics show that the range of variation of the scale ratio of coal rock debris is relatively large when the impact velocity is small. Plate fragments with a length-thickness ratio range of 3~6 are predominant. When the impact velocity gradually increases, the variation range of coal rock debris scale ratio gradually decreases, the debris scale characteristics tend to be stable, and the blocky debris with the length-to-thickness ratio lower than 3 predominates.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Lu, J.; Zhang, D.; Huang, G.; Li, X.; Gao, H.; Yin, G. Effects of loading rate on the compound dynamic disaster in deep underground coal mine under true triaxial stress. Int. J. Rock Mech. Min. Sci. 2020, 134, 104453. [Google Scholar] [CrossRef]
- Li, J.; Zhao, J.; Gong, S.Y.; Wang, H.C.; Ju, M.H.; Du, K.; Zhang, Q.B. Mechanical anisotropy of coal under coupled biaxial static and dynamic loads. Int. J. Rock Mech. Min. Sci. 2021, 143, 104807. [Google Scholar] [CrossRef]
- Song, H.; Zhang, H.; Fu, D.; Yang, Y.; Huang, G.; Qu, C.; Cai, Z. Experimental study on damage evolution of rock under uniform and concentrated loading conditions using digital image correlation. Fatigue Fract. Eng. Mater. Struct. 2013, 36, 760–768. [Google Scholar] [CrossRef]
- Zhang, C.; Yu, G.; Zhang, C. Rock matrix-fractured media model for heterogeneous and fractured coal bed. Trans. Nonferrous Met. Soc. China 2011, 21, 621–625. [Google Scholar] [CrossRef]
- Hao, X.; Wei, Y.; Yang, K.; Su, J.; Sun, Y.; Zhu, G.; Wang, S.; Chen, H.; Sun, Z. Anisotropy of crack initiation strength and damage strength of coal reservoirs. Petrol. Explor. Dev. 2021, 48, 243–255. [Google Scholar] [CrossRef]
- Li, J.; Guan, C.; Han, K.; Wang, Z. Characteristics of transient charge on Datong coal sample surfaces with different cracking propagation. PLoS ONE 2020, 15, 0229824. [Google Scholar] [CrossRef] [Green Version]
- Gong, S. Investigation of tensile and fracture mechanical properties of bituminous coal at different strain rates. J. Mater. Res. Technol. 2021, 15, 834–845. [Google Scholar] [CrossRef]
- Liu, J.; Yang, M.; Wang, D.; Zhang, J. Different bedding loaded coal mechanics properties and acoustic emission. Environ. Earth Sci. 2018, 77, 322–332. [Google Scholar] [CrossRef]
- Pan, R.; Fu, D.; Yu, M.; Lei, C. Directivity effect of unloading bedding coal induced fracture evolution and its application. Int. J. Min. Sci. Technol. 2017, 27, 825–829. [Google Scholar]
- Tian, K.; Wei, E. Gas seepage model and experiment based on bedding effect of fractured coal body. Math. Probl. Eng. 2022, 2022, 3863267. [Google Scholar] [CrossRef]
- Dai, J.; Liu, C.; Li, M.; Song, Z. Influence of principal stress effect on deformation and permeability of coal containing beddings under true triaxial stress conditions. R. Soc. Open Sci. 2019, 6, 181483. [Google Scholar] [CrossRef]
- Liu, C.; Yin, G.; Li, M.; Shang, D.; Deng, B.; Song, Z. Deformation and permeability evolution of coals considering the effect of beddings. Int. J. Rock Mech. Min. Sci. 2019, 117, 49–62. [Google Scholar] [CrossRef]
- Hou, P.; Xue, Y.; Gao, F.; Dou, F.; Su, S.; Cai, C.; Zhu, C. Effect of liquid nitrogen cooling on mechanical characteristics and fracture morphology of layer coal under Brazilian splitting test. Int. J. Rock Mech. Min. Sci. 2022, 151, 105026. [Google Scholar] [CrossRef]
- Zhao, Y.; Zhao, G.; Jiang, Y.; Elswoth, D.; Huang, Y. Effects of bedding on the dynamic indirect tensile strength of coal: Laboratory experiments and numerical simulation. Int. J. Coal Geol. 2014, 132, 81–93. [Google Scholar] [CrossRef]
- Li, M.; Liang, W.; Yue, G.; Yue, J.; Zheng, X. Experiment and modeling of permeability under different impact loads in a structural anisotropic coal body. ACS Omega 2020, 5, 9957–9968. [Google Scholar] [CrossRef] [Green Version]
- Li, Y.; Zhao, B.; Yang, J.; Sun, J.; Huang, W.; Li, Z.; Wang, B. Experimental study on the influence of confining pressure and bedding angles on mechanical properties in coal. Minerals 2022, 12, 345. [Google Scholar] [CrossRef]
- Zhong, K.; Zhao, W.; Qin, C.; Chen, W. Experimental study on the mechanical behavior and failure characteristics of layered coal at medium strain rates. Energies 2021, 14, 6616. [Google Scholar] [CrossRef]
- Yang, R.; Zhou, Y.; Ma, D. Failure mechanism and acoustic emission precursors of coal samples considering bedding effect under triaxial unloading condition. Geofluids 2022, 2022, 8083443. [Google Scholar] [CrossRef]
- Liu, J.; Hu, J.; Shen, M.; Yang, M.; Fang, Y. LNMR study on microstructure characteristics and pore size distribution of high-rank coals with different bedding. Adv. Civil Eng. 2021, 2021, 8542630. [Google Scholar] [CrossRef]
- Liu, J.; Jia, G.; Gao, J.; Hu, J.; Chen, S. NMR study on pore structure and permeability of different layers of deep low-rank coal. Energy Sour. Part A Recovery Util. Environ. Eff. 2020, 2020, 1742254. [Google Scholar] [CrossRef]
- Zhao, J.; Zhang, Y.; Ranjith, P.G. Numerical simulation of blasting-induced fracture expansion in coal masses. Int. J. Rock Mech. Min. Sci. 2017, 100, 28–39. [Google Scholar] [CrossRef]
- Tao, Y.; Yuanlong, W.; Shiwan, C.; Liu, W.; Zhao, L.; Zhang, X. Study on mechanical properties and crack propagation of raw coal with different bedding angles based on CT scanning. ACS Omega 2022, 7, 27185–27195. [Google Scholar]
- Huang, J.; Cheng, G.; Zhao, Y.; Ren, W. An experimental study of the strain fields development prior to failure of a marble plate under compression. Tectonophysics 1990, 175, 269–284. [Google Scholar]
- Liu, D.; Cai, M.; Zhou, Y.; Chen, Z.Y. A study on dynamic monitoring of rock crack extension process. J. Rock Mech. Eng. 2006, 25, 467–472. [Google Scholar]
- Sutton, M.A.; Mingqi, C.; Peters, W.H.; Chao, Y.J.; McNeill, S.R. Application of an optimized digital correlation method to planar deformation analysis. Image Vis. Comput. 1986, 4, 143–150. [Google Scholar] [CrossRef]
- Peters, W.H.; Ranson, W.F. Digital imaging techniques in experimental stress analysis. Opt. Eng. 1982, 21, 427–431. [Google Scholar] [CrossRef]
- Yamaguchi, I. A laser-speckle strain gauge. J. Phys. E Sci. Instrum. 1981, 14, 1270. [Google Scholar] [CrossRef]
- Skurtveit, E.; Torabi, A.; Gabrielsen, R.H.; Zoback, M.D. Experimental investigation of deformation mechanisms during shear-enhanced compaction in poorly lithified sandstone and sand. J. Geophys. Res. Solid Earth 2013, 118, 4083–4100. [Google Scholar] [CrossRef] [Green Version]
- Sun, Q.; Cai, C.; Zhang, S.; Tian, S.; Li, B.; Xia, L. Study of localized deformation in geopolymer cemented coal gangue-fly ash backfill based on the digital speckle correlation method. Construct. Build. Mater. 2019, 215, 321–331. [Google Scholar] [CrossRef]
- Ma, S.; Xu, X.; Zhao, Y. The GEO-DSCM system and its application to the deformation measurement of rock materials. Int. J. Rock Mech. Min. Sci. 2004, 41, 292–297. [Google Scholar] [CrossRef] [Green Version]
- Yuan, C.; Yuan, Z.; Wang, Y.; Li, C.-M. Analysis of the diffusion process of mining overburden separation strata based on the digital speckle correlation coefficient field. Int. J. Rock Mech. Min. Sci. 2019, 119, 13–21. [Google Scholar] [CrossRef]
- Song, Y.; Ren, H.; Xu, H.; Chen, Z.; Dong, A. Study on synergistic system of energy-absorbing yielding anti-impact supporting structure and surrounding rock. Sci. Rep. 2022, 12, 1–9. [Google Scholar] [CrossRef]
- Zhang, Z.; Xie, H.; Zhang, R.; Guo, X.; Chen, Z.; Dong, A. Deformation damage and energy evolution characteristics of coal at different depths. Rock Mech. Rock Eng. 2019, 52, 1491–1503. [Google Scholar] [CrossRef]
- Meng, Q.; Zhang, M.; Han, L.; Pu, H.; Nie, T. Effects of acoustic emission and energy evolution of rock specimens under the uniaxial cyclic loading and unloading compression. Rock Mech. Rock Eng. 2016, 49, 3873–3886. [Google Scholar] [CrossRef]
- Wold, M.B.; Connell, L.D.; Choi, S.K. The role of spatial variability in coal seam parameters on gas outburst behaviour during coal mining. Int. J. Coal Geol. 2008, 75, 1–14. [Google Scholar] [CrossRef]
- Chen, Y.; Zhang, Y.; Li, X. Experimental study on influence of bedding angle on gas permeability in coal. J. Petrol. Sci. Eng. 2019, 179, 173–179. [Google Scholar] [CrossRef]
- Xibing, L. Rock Dynamics Fundamentals and Applications; Science Press: Beijing, China, 2014. [Google Scholar]
- Fan, Y.; Li, S.; Hou, Y.; Kim, M.-S.; Yun, S. A study of the failure mechanism of rock and soil associate under different boundary conditions. Hydrogeol. Eng. Geol. 2013, 40, 47–48. [Google Scholar]
- Fan, Y.; Adewuyi, O.I.; Feng, C. Strength characteristics of soil rock mixture under equal stress and cyclic loading conditions. Geosyst. Eng. 2015, 18, 73–77. [Google Scholar]
- Feng, C.; Li, S.; Liu, X.; Zhang, Y. A semi-spring and semi-edge combined contact model in CDEM and its application to analysis of Jiweishan landslide. J. Rock Mech. Geotech. Eng. 2014, 6, 26–35. [Google Scholar] [CrossRef] [Green Version]
- Zheng, D.; Li, Q. An explanation for rate effect of concrete strength based on fracture toughness including free water viscosity. Eng. Fract. Mech. 2004, 71, 2319–2327. [Google Scholar] [CrossRef]
Water Saturated State | Natural Grouping | Water Saturation Grouping | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Bedding Angle | 0° | 22.5° | 45° | 67.5° | 90° | 0° | 22.5° | 45° | 67.5° | 90° | |
Emission pressure | 0.45 MPa | 1-1-1 | 1-2-1 | 1-6-1 | 1-6-4 | 1-4-1 | 3-1-1 | 1-3-1 | 3-4-1 | 3-7-1 | 3-7-2 |
1-1-2 | 1-2-2 | 1-6-2 | 1-6-5 | 1-4-2 | 3-2-1 | 1-7-1 | 3-5-1 | 3-8-1 | 3-9-1 | ||
1-1-3 | 1-2-3 | 1-6-3 | 1-5-1 | 1-4-3 | 3-3-1 | 1-7-2 | 3-5-2 | 3-8-2 | 3-9-2 | ||
0.47 MPa | 2-1-1 | 2-3-1 | 3-4-1 | 3-6-1 | 4-1-1 | 3-4-1 | 3-4-2 | 2-4-1 | 4-3-2 | 4-6-1 | |
2-1-2 | 2-3-2 | 3-4-2 | 3-6-2 | 4-1-2 | 3-4-2 | 2-2-1 | 2-4-2 | 4-4-1 | 4-6-2 | ||
2-1-3 | 2-3-3 | 3-4-3 | 3-6-3 | 4-1-3 | 3-4-3 | 2-2-2 | 4-3-1 | 4-4-2 | 4-8-4 | ||
0.49 MPa | 4-2-1 | 4-5-1 | 4-7-1 | 4-8-1 | 4-9-1 | 5-1-1 | 5-2-1 | 5-3-1 | 6-1-1 | 6-2-1 | |
4-2-2 | 4-5-2 | 4-7-2 | 4-8-2 | 4-9-2 | 5-1-2 | 5-2-2 | 5-3-2 | 6-1-2 | 6-7-2 | ||
4-2-3 | 4-5-3 | 4-7-3 | 4-8-3 | 4-9-3 | 5-1-3 | 5-2-3 | 5-4-1 | 6-7-3 | 6-2-3 |
Rock Debris Classification | Range of Particle Size (mm) | Methodology | Result |
---|---|---|---|
Particle | <0.075 | Laser particle size analyzer | Grain fraction curve |
Fine grain | 0.075~0.250 | Sieving method | Fractal results of mass distribution |
0.250~0.500 | |||
0.500~1.000 | |||
1.000~2.000 | |||
2.000~5.000 | |||
Medium grain | 5.000~30.000 | SEM, Scale measurement, 3D topography scanning | Fractal results of size distribution |
Coarse grain | >30.000 | Scale measurement, 3D topography scanning | Fractal result of reconstructed image |
Medium | Parameter | Symbol | Numerical Value |
---|---|---|---|
Coal matrix | material density | Ρ [kg/m3] | 1301 |
elasticity modulus | E [GPa] | 2.29 | |
Poisson’s ratio | ν [-] | 0.24 | |
cohesion | c [MPa] | 7.85 | |
tensile strength | T [MPa] | 1.75 | |
internal friction angle | φ [°] | 32.64 | |
dilation angle | Φ [°] | 15 | |
Bedding structure | normal stiffness | n [GPa/m] | 10 |
shear stiffness | s [GPa/m] | 10 | |
internal friction angle | φ [°] | 30 | |
cohesion | c [MPa] | 7 | |
tensile strength | T [MPa] | 1.5 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Gong, S.; Wang, C.; Xi, F.; Jia, Y.; Zhou, L.; Zhang, H.; Wang, J.; Ren, X.; Wang, S.; Yao, S.; et al. Dynamic Tensile Mechanical Properties of Outburst Coal Considering Bedding Effect and Evolution Characteristics of Strain Energy Density. Mathematics 2022, 10, 4120. https://doi.org/10.3390/math10214120
Gong S, Wang C, Xi F, Jia Y, Zhou L, Zhang H, Wang J, Ren X, Wang S, Yao S, et al. Dynamic Tensile Mechanical Properties of Outburst Coal Considering Bedding Effect and Evolution Characteristics of Strain Energy Density. Mathematics. 2022; 10(21):4120. https://doi.org/10.3390/math10214120
Chicago/Turabian StyleGong, Shuang, Chaofei Wang, Furui Xi, Yongqiang Jia, Lei Zhou, Hansong Zhang, Jingkuo Wang, Xingyang Ren, Shuai Wang, Shibin Yao, and et al. 2022. "Dynamic Tensile Mechanical Properties of Outburst Coal Considering Bedding Effect and Evolution Characteristics of Strain Energy Density" Mathematics 10, no. 21: 4120. https://doi.org/10.3390/math10214120
APA StyleGong, S., Wang, C., Xi, F., Jia, Y., Zhou, L., Zhang, H., Wang, J., Ren, X., Wang, S., Yao, S., & Liu, J. (2022). Dynamic Tensile Mechanical Properties of Outburst Coal Considering Bedding Effect and Evolution Characteristics of Strain Energy Density. Mathematics, 10(21), 4120. https://doi.org/10.3390/math10214120