Analysis of Dynamic Mechanical Properties and Energy Consumption of Fractured Sandstone under Dynamic–Static Combination Conditions
Abstract
:1. Introduction
2. Prefabricated Crack Specimen Preparation and SHPB Test Device
2.1. Specimen Processing and Prefabricated Crack Preparation
2.2. Testing Apparatus
3. Experiment Results and Analyses
3.1. SHPB Test Results of Dynamic and Static Combination
3.2. Dynamic Stress–Strain Curve of Prefabricated Fractured Sandstone Sample
3.3. Impact Velocity
3.4. Average Strain Rate of Sample
3.5. Dynamic Compressive Strength of Sample
3.6. Dynamic Strain of Specimen
3.7. Dynamic Elastic Modulus of Sample
4. The Fragmentation and Energy Analysis
5. Conclusions
- (1)
- Under static and dynamic combination conditions, the dynamic stress–strain curves of sandstone specimens were basically similar when loaded with five impact rates, which were mainly divided into three stages, which are elasticity, yielding, and damage. As the loading rate increases, the stress–strain curve of the specimen shifts to the upper right.
- (2)
- Five types of impact loading air pressure were used to drive the impact bar to accelerate the impact on the incoming bar, and the impact loading rates were 13.7 m/s, 15.1 m/s, 16.4 m/s, 17.1 m/s, and 18 m/s, respectively. The strain rate in the sandstone specimens grew from 53.5 s−1 to 101.9 s−1, with an increase of 90.6%, and the strain rate was quadratically related to the shock loading pressure.
- (3)
- Significant strain rate effects were observed on the dynamic compressive strength, dynamic strain, and dynamic modulus of elasticity of the sandstone samples. As the strain rate of the specimen increased, the dynamic compressive strength of the specimen increased from 74.02 MPa to 99.26 MPa, which was enhanced by a power function relationship; the dynamic strain increased linearly from 3.69 × 10−3 to 5.21 × 10−3; the dynamic modulus of elasticity increased quadratically from 23.15 GPa to 27.80 GPa.
- (4)
- When the loading rate increases, the incident energy increases as a power function. The sample’s reflected, transmitted, and absorbed energies all increase with the incident energy. When the incident energy grew from 60.4 J to 109 J, the reflected energy increased from 20.4 J to 51.3 J, an increase of 151.5%; transmitted energy increased from 15.3 J to 23.9 J, an increase of 56.2%; the energy absorbed by the sample increased from 24.6 J to 33.8 J, an increase of 37.4%.
- (5)
- The degree of the sandstone fragmentation gradually increases with increasing loading rate and incident energy, as evidenced by a decrease in the scale of the fragments and an increase in the number of fragments. When loaded at five impact rates, the average crushed specimen sizes were 12.19 mm, 12.16 mm, 11.68 mm, 11.25 mm, and 10.89 mm. Specimen absorption energy is mainly used for deformation damage of the rock; the more intense the specimen is broken, the more absorption energy is required.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Yuan, L. Cracking the major scientific and technological difficulties of deep coal mining thoughts and suggestions. Sci. Technol. Rev. 2016, 34, 1. [Google Scholar]
- Wang, W.; Wang, H.P.; Wang, S.; Zhang, B.; Wang, P.; Gu, S.T. Development and application of rock mechanics experimental system with multi strain rate dynamic and static superposition. Chin. J. Rock Mech. Eng. 2023, 42, 1680–1694. [Google Scholar] [CrossRef]
- Swan, G.; Cook, J.; Bruce, S.; Meehan, R. Strain rate effects in Kimmeridge bay shale. Int. J. Rock Mech. Min. Sci. 1989, 26, 135–149. [Google Scholar] [CrossRef]
- Li, Z.Y.; Zhu, Y.H.; Song, Q.H.; Wang, P.Y.; Liu, D.Y. Dynamic mechanical properties and failure characteristics of sandstone with pre-flaws parallel to the loading direction. Sustainability 2023, 15, 3587. [Google Scholar] [CrossRef]
- Wang, T.; Elsworth, D.; He, Y.; Zhao, X.Y.; Wang, S.F.; Xu, D.P.; Lei, M. Impact of loading rate on the mechanical behavior of jointed rock. Geomech. Geophys. Geo-Energy Geo-Resour. 2023, 9, 127. [Google Scholar] [CrossRef]
- Xiao, P.; Gao, Z.; Shuang, H.Q.; Wu, M.C.; Cheng, Y.Y.; Guo, C.H. Analysis of coal fracture evolution characteristics under different loading rates. China Saf. Sci. J. 2022, 32, 65–73. [Google Scholar] [CrossRef]
- Bahaaddini, M.; Sharrock, G.; Hebblewhite, B.K. Numerical investigation of the effect of joint geometrical parameters on the mechanical properties of a non-persistent jointed rock mass under uniaxial compression. Comput. Geotech. 2013, 49, 206–225. [Google Scholar] [CrossRef]
- Wang, X.Q.; Chen, B.; Wu, S.J.; Zhao, Y.M.; Wang, Z.Z.; Dong, Z. Study on the mechanical properties of rocks with cross cracks under different loading rates. Min. Res. Dev. 2023, 43, 104–112. [Google Scholar] [CrossRef]
- Bobet, A.; Einstein, H.H. Fracture coalescence in rock-type materials under uniaxial and biaxial compression. Int. J. Rock Mech. Min. Sci. 1998, 35, 863. [Google Scholar] [CrossRef]
- Wasantha, P.L.P.; Ranjith, P.G.; Zhao, J.; Shao, S.S.; Permata, G. Strain rate effect on the mechanical behaviour of sandstones with different grain sizes. Rock Mech. Rock Eng. 2015, 48, 1883–1895. [Google Scholar] [CrossRef]
- Fujii, Y.; Ishijima, Y. Consideration of fracture growth from an inclined slit and inclined initial fracture at the surface of rock and mortar in compression. Int. J. Rock Mech. Min. Sci. 2004, 41, 1035–1041. [Google Scholar] [CrossRef]
- Kang, Y.M.; Gu, J.; Wei, M.Q. Mechanical properties and acoustic emission characteristics of soft-hard interbedded rocks under different loading rates. J. Northeast. Univ. (Nat. Sci.) 2023, 44, 399–407. [Google Scholar] [CrossRef]
- Ping, Q.; Luo, X.; Ma, Q.Y.; Yuan, P. Broken energy dissipation characteristics of sandstone specimens under impact loads. Chin. J. Rock Mech. Eng. 2015, 34, 4197–4203. [Google Scholar] [CrossRef]
- Li, Q.W.; Gao, S.L.; Huang, X. Study on damage evolution of coal samples based on loading rate effect. Saf. Coal Mines 2023, 54, 105–115. [Google Scholar] [CrossRef]
- Li, K.; Yu, W.J.; Liao, Z.; Guo, H.X.; Khamphouvanh, V.; Yang, J. A laboratory-testing-based study on mechanical properties and dilatancy characteristics of deeply buried mudstone under different stress loading rates. J. China Coal Soc. 2023, 48, 3360–3371. [Google Scholar] [CrossRef]
- Selahattin, A.; Murat, K.; Giang, D.N.; Abbas, T.; Zhang, Q.B.; Zhao, J. Dynamic response and fracture characteristics of thermally-treated granite under dynamic loading. Int. J. Rock Mech. Min. Sci. 2023, 170, 105482. [Google Scholar] [CrossRef]
- Alam, M.S.; Chakraborty, T.; Matsagar, V.; Rao, K.S.; Sharma, P.; Singh, M. Characterization of kota sandstone under different strain rates in uniaxial loading. Geotech. Geol. Eng. 2015, 33, 143–152. [Google Scholar] [CrossRef]
- Brown, E.T.; Trollope, D.H. Strength of a model of jointed rock. J. Soil Mech. Found. Div. 1970, 96, 685–704. [Google Scholar] [CrossRef]
- Brown, E.T. Strength of models of rock with intermittent joints. J. Soil Mech. Found. Div. 1970, 96, 1935–1949. [Google Scholar] [CrossRef]
- Liu, S.H.; Qin, Z.H.; Lou, J.F. Experimental study of dynamic failure characteristics of coal-rock compound under one-dimensional static and dynamic loads. Chin. J. Rock Mech. Eng. 2014, 33, 2064–2075. [Google Scholar] [CrossRef]
- Du, C.C.; Wen, S.; Kong, Q.M. Tests for dynamic mechanical properties of composite rock samples under 1-D dynamic-static combined loading. J. Vib. Shock 2021, 40, 168–178+206. [Google Scholar] [CrossRef]
- Pan, J.F.; Liu, S.H.; Yang, L.; Wang, S.W.; Zhang, C.Y. Experimental study of dynamic characteristics of coal under static and dynamic loads. J. China Univ. Min. Technol. 2018, 47, 206–212. [Google Scholar] [CrossRef]
- Wang, W.; Li, H.M.; Yuan, R.F.; Gu, H.L.; Wang, C.; Li, H.G. Micromechanics analysis and mechanical characteristics of water-saturated coal samples under coupled static-dynamic loads. J. China Coal Soc. 2016, 41, 611–617. [Google Scholar] [CrossRef]
- Wang, X.Y.; Li, Q.; Wang, W.; Zhang, M.T.; Wang, Q.Z. Numerical simulation of damage evolution of sandstone under combined dynamic and static loading. Sci. Technol. Eng. 2022, 22, 6248–6254. [Google Scholar] [CrossRef]
- Chen, J.X.; Zeng, B.Q.; Zhang, J.W. Influence of loading and unloading effect on mechanical properties of impact rock under impact load. J. China Coal Soc. 2023, 1–16. [Google Scholar] [CrossRef]
- Ren, Z.W.; Wang, J.; Ning, J.G.; Shi, X.S.; Yang, S.; Gao, M.T. Test study on mechanical response and energy evolution of coal body under dynamic and static combined loading. Min. Res. Dev. 2023, 43, 108–115. [Google Scholar] [CrossRef]
- Fan, W.B.; Zhang, J.W.; Dong, X.K.; Zhang, Y.; Yang, Y.; Zeng, W.G.; Wang, S.Y. Fractal dimension and energy-damage evolution of deep-bedded sandstone under one-dimensional dynamic and static combined loading. Geomech. Geophys. Geo-Energy Geo-Resour. 2022, 8, 177. [Google Scholar] [CrossRef]
- Ma, S.S.; Chen, W.Z.; Zhao, W.S. Experimental study on energy dissipation of granite subjected to three-dimensional coupled static and dynamic loading. J. Shandong Univ. (Eng. Sci.) 2019, 49, 95–102. [Google Scholar] [CrossRef]
- Fang, Z.H.; Ping, Q.; Zhang, H. Experimental study on mechanical properties of limestone under combined one-dimensional static and dynamic loading. J. Anhui Univ. Sci. Technol. (Nat. Sci.) 2018, 38, 36–41. [Google Scholar] [CrossRef]
- Dai, B.; Zhao, G.F.; Zhang, L.; Liu, Y.; Zhang, Z.J.; Luo, X.Y.; Chen, Y. Energy dissipation of rock with different parallel flaw inclinations under dynamic and static combined loading. Mathematics 2022, 10, 4082. [Google Scholar] [CrossRef]
- Wu, Y.Z.; Sun, Z.Y.; Fu, Y.K. Mechanical properties and energy dissipation laws of coal samples with different length-to-diameter ratios under 3D coupled static and dynamic loads. Chin. J. Rock Mech. Eng. 2022, 41, 877–888. [Google Scholar] [CrossRef]
- Wang, T.; Song, Z.P.; Yang, J.Y.; Wang, J.B.; Zhang, X.G. Experimental research on dynamic response of red sandstone soil under impact loads. Geomech. Eng. 2019, 17, 393–403. [Google Scholar] [CrossRef]
- Anna, B.; Aleksei, V.C.; Andrey, G.C.; Ralf, M. Quantifying non-ergodic dynamics of force-free granular gases. Phys. Chem. Chem. Phys. PCCP 2015, 17, 21791–21798. [Google Scholar] [CrossRef]
- Tan, B.; Xu, H.; Jin, J.F.; Yu, X. Effect of dynamic load and water content on dynamic strength and deformation of red sandstone. Min. Res. Dev. 2023, 43, 164–171. [Google Scholar] [CrossRef]
- Wong, R.H.C.; Chau, K.T.; Tang, C. Analysis of crack coalescence in rock-like materials containing three flaws part I: Experimental approach. Int. J. Rock Mech. Min. Sci. 2001, 38, 909–924. [Google Scholar] [CrossRef]
- Hui, G.; Chen, Z.X.; Wang, Y.J.; Zhang, D.M.; Gu, F. An integrated machine learning-based approach to identifying controlling factors of unconventional shale productivity. Energy 2023, 266, 126512. [Google Scholar] [CrossRef]
- Kong, X.W.; Wang, P.; Xia, Z.H.; Zhang, X.L.; Qu, L.C.; Guo, Z.K. Geological characteristics and fluid distribution of the upper devonian duvernay shale in simonette block in the western canada sedimentary basin. China Pet. Explor. 2022, 27, 93–107. [Google Scholar] [CrossRef]
- Ulusay, R. The ISRM Suggested Methods for Rock Characterization, Testing and Monitoring: 2007–2014; Springer International Publishing: Cham, Switzerland, 2015; pp. 51–68. [Google Scholar] [CrossRef]
- T/CSRME 001-2019; Technical Specification for Testing Method of Rock Dynamic Properties. Chinese Society for Rock Mechanics & Engineering: Beijing, China, 2019.
Impact Pressure (MPa) | Specimen Number | Dynamic Compressive Strength (MPa) | Dynamic Strain (×10−3) | Dynamic Elastic Modulus (GPa) | Average Strain Rate (s−1) |
---|---|---|---|---|---|
0.300 | PJ31-07 | 71.47 | 3.49 | 22.94 | 51.4 |
PJ31-08 | 76.57 | 3.88 | 23.35 | 55.5 | |
0.325 | PJ31-10 | 80.71 | 3.97 | 24.59 | 63.5 |
PJ31-12 | 83.94 | 4.19 | 24.05 | 67.0 | |
0.350 | PJ31-13 | 94.67 | 4.39 | 25.92 | 78.2 |
PJ31-14 | 92.93 | 4.48 | 25.34 | 80.3 | |
0.375 | PJ31-17 | 91.20 | 4.62 | 27.24 | 92.1 |
PJ31-18 | 97.12 | 4.90 | 26.19 | 95.8 | |
0.400 | PJ31-19 | 99.22 | 5.39 | 28.50 | 100.0 |
PJ31-20 | 99.29 | 5.03 | 27.09 | 103.8 |
Impact Pressure (MPa) | Size of Screen Mesh (mm) | Total Mass (g) | Average Size (mm) | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
0 | 0.15 | 0.3 | 0.6 | 1.18 | 2.36 | 4.75 | 9.5 | 13.2 | |||
0.300 | 0.49 | 0.27 | 0.87 | 1.01 | 1.83 | 4.39 | 13.46 | 10.02 | 218.44 | 250.78 | 12.19 |
0.325 | 0.5 | 0.28 | 0.8 | 1.23 | 2.16 | 4.8 | 12.81 | 11.34 | 219.21 | 253.13 | 12.16 |
0.350 | 0.68 | 0.35 | 1.05 | 1.42 | 2.14 | 6.6 | 15.18 | 30.43 | 193.73 | 251.58 | 11.68 |
0.375 | 1.04 | 0.49 | 1.42 | 1.93 | 3.31 | 8.66 | 22.25 | 27.42 | 182.34 | 248.86 | 11.25 |
0.400 | 1.64 | 0.56 | 2.17 | 2.5 | 4.39 | 9.41 | 25.4 | 31.29 | 171.02 | 248.38 | 10.89 |
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Ping, Q.; Xu, Y.; Hu, J.; Sun, S.; Li, X.; Wu, S. Analysis of Dynamic Mechanical Properties and Energy Consumption of Fractured Sandstone under Dynamic–Static Combination Conditions. Appl. Sci. 2024, 14, 2359. https://doi.org/10.3390/app14062359
Ping Q, Xu Y, Hu J, Sun S, Li X, Wu S. Analysis of Dynamic Mechanical Properties and Energy Consumption of Fractured Sandstone under Dynamic–Static Combination Conditions. Applied Sciences. 2024; 14(6):2359. https://doi.org/10.3390/app14062359
Chicago/Turabian StylePing, Qi, Yijie Xu, Jing Hu, Shijia Sun, Xiangyang Li, and Shiwei Wu. 2024. "Analysis of Dynamic Mechanical Properties and Energy Consumption of Fractured Sandstone under Dynamic–Static Combination Conditions" Applied Sciences 14, no. 6: 2359. https://doi.org/10.3390/app14062359
APA StylePing, Q., Xu, Y., Hu, J., Sun, S., Li, X., & Wu, S. (2024). Analysis of Dynamic Mechanical Properties and Energy Consumption of Fractured Sandstone under Dynamic–Static Combination Conditions. Applied Sciences, 14(6), 2359. https://doi.org/10.3390/app14062359