Mechanical Characteristics and Particle Breakage of Calcareous Sand under Quasi-One-Dimensional Impact Load
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen Preparation and Test Protocol
3. Results and Discussion
3.1. Dynamic Stress Equilibrium
3.2. Mechanical Characteristics Evident in SHPB Tests
3.2.1. Influence of Strain Rate on Mechanical Characteristics
3.2.2. Effect of Water Content on Mechanical Characteristics
3.2.3. Effect of Relative Density on Mechanical Properties
3.3. Particle Breakage Evident in SHPB Tests
3.3.1. Establishment of Breakage Index
3.3.2. Influence of Strain Rate on Particle Breakage
3.3.3. Influence of Water Content on Particle Breakage
3.3.4. Influence of Relative Density on Particle Breakage
4. Conclusions
- (1)
- The stress–strain curves exhibited a consistent pattern across various influence factors, beginning with a sharp rise in the elastic phase, followed by a plastic phase marked by multiple stress fluctuations. Peak stress increased with strain rate. This effect was particularly pronounced with smaller particle sizes, attributable to increased particle breakage.
- (2)
- The stress–strain curves also trended downward as particle size increased, alongside a heightened degree of particle breakage. This phenomenon is linked to the intricate spatial distribution and irregular appearance of larger particles, which were more prone to breakage during testing, consequently leading to a decrease in stress levels.
- (3)
- The relative fragmentation rate increased as strain rate increased. For coarser particles, values were more susceptible to strain rate compared to fine particles.
- (4)
- The water content of calcareous sand did not significantly impact the stress–strain curves resulting from SHPB tests. However, the degree of particle breakage decreased as water content increased. A linear relationship was established between the relative fragmentation rate and water content .
- (5)
- The differences between stress–strain curves increased gradually as particle size decreased. As the relative density increased, the extent of particle breakage decreased. The relationship between the relative fragmentation rate and relative density Dr was effectively characterized by a linear curve.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Liu, X.D.; Sun, L.G.; Cheng, Z.Q.; Zhao, S.P.; Liu, K.X.; Wu, X.H.; Xie, Z.Q.; Yin, X.B.; Luo, H.H.; Ding, X.F.; et al. Paleoenvironmental implications of the guano phosphatic cementation on Dongdao Island in the South China Sea. Mar. Geol. 2008, 247, 1–16. [Google Scholar] [CrossRef]
- Wang, R.; Wu, W. Exploration and research on engineering geological properties of coral reefsengaged in coral reef research for 30 years. J. Eng. Geol. 2019, 27, 202–207. [Google Scholar]
- Pavelic, D.; Kovacic, M.; Vlahovic, I.; Mandic, O.; Markovic, F.; Wacha, L. Topography controlling the wind regime on the karstic coast: Late Pleistocene coastal calcareous sands of eastern mid-Adriatic, Croatia. Facies 2014, 60, 843–863. [Google Scholar] [CrossRef]
- Salem, M.; Elmamlouk, H.; Agaiby, S. Static and cyclic behavior of North Coast calcareous sand in Egypt. Soil Dyn. Earthq. Eng. 2013, 55, 83–91. [Google Scholar] [CrossRef]
- Ata, A.; Salem, T.N.; Hassan, R. Geotechnical characterization of the calcareous sand in northern coast of Egypt. Ain Shams Eng. J. 2018, 9, 3381–3390. [Google Scholar] [CrossRef]
- Aghajani, H.F.; Salehzadeh, H. Anisotropic behavior of the Bushehr carbonate sand in the Persian Gulf. Arab. J. Geosci. 2015, 8, 8197–8217. [Google Scholar] [CrossRef]
- Tian, C.; Lan, H.; Liu, X. Study on compression and crushing mechanical properties of calcareous sand considering influence of morphology and grading. J. Eng. Geol. 2021, 29, 1700–1710. [Google Scholar]
- Zhu, C.Q.; Wang, X.Z.; Wang, R.; Chen, H.Y.; Meng, Q.S. Experimental microscopic study of inner pores of calcareous sand. Mater. Res. Innov. 2014, 18, 207–214. [Google Scholar] [CrossRef]
- Wang, X.Z.; Wang, X.; Jin, Z.C.; Zhu, C.Q.; Wang, R.; Meng, Q.S. Investigation of engineering characteristics of calcareous soils from fringing reef. Ocean Eng. 2017, 134, 77–86. [Google Scholar] [CrossRef]
- Wang, X.Z.; Jiao, Y.Y.; Wang, R.; Hu, M.J.; Meng, Q.S.; Tan, F.Y. Engineering characteristics of the calcareous sand in Nansha Islands, South China Sea. Eng. Geol. 2011, 120, 40–47. [Google Scholar] [CrossRef]
- Lv, Y.; Li, F.; Liu, Y.; Fan, P.; Wang, M. Comparative study of coral sand and silica sand in creep under general stress states. Can. Geotech. J. 2017, 54, 1601–1611. [Google Scholar] [CrossRef]
- Zhang, H.; Wang, L.; Zheng, K.; Jibrin, B.T.; Totakhil, P.G. Research on compressive impact dynamic behavior and constitutive model of polypropylene fiber reinforced concrete. Constr. Build. Mater. 2018, 187, 584–595. [Google Scholar] [CrossRef]
- Khosravani, M.R.; Weiberg, K. A review on split Hopkinson bar experiments on the dynamic characterisation of concrete. Constr. Build. Mater. 2018, 190, 1264–1283. [Google Scholar] [CrossRef]
- Song, Z.; Song, W.; Cheng, Y.; Yang, T.; Wang, K. Investigation on strain characteristics and fatigue constitutive model of limestone under osmotic pressure and cyclic disturbance coupling. KSCE J. Civ. Eng. 2022, 26, 1740–1753. [Google Scholar] [CrossRef]
- Song, Z.; Zhang, Q.; Zhang, Y.; Wang, J.; Fan, S.; Zhou, G. Abnormal precursory information analysis of the infrared radiation temperature (IRT) before Sandstone Failure. KSCE J. Civ. Eng. 2021, 25, 4173–4183. [Google Scholar] [CrossRef]
- Xiao, S.H.; Liao, S.J.; Zhong, G.Q.; Guo, Y.C.; Lin, J.X.; Xie, Z.H.; Song, Y. Dynamic properties of PVA short fiber reinforced low-calcium fly ash-slag geopolymer under an SHPB impact load. J. Build. Eng. 2021, 44, 103220. [Google Scholar] [CrossRef]
- Luo, H.; Cooper, W.L.; Lu, H. Effects of particle size and moisture on the compressive behavior of dense Eglin sand under confinement at high strain rates. Int. J. Impact Eng. 2014, 65, 40–55. [Google Scholar] [CrossRef]
- Song, B.; Chen, W.; Luk, V. Impact compressive response of dry sand. Mech. Mater. 2009, 41, 777–785. [Google Scholar] [CrossRef]
- Bragov, A.M.; Lomunov, A.K.; Tsembelis, K.; Proud, W.G. Determination of Physiomechanical properties of soft soils from medium to high strain rates. Int. J. Impact Eng. 2008, 35, 967–976. [Google Scholar] [CrossRef]
- Martin, B.E.; Chen, W.; Song, B.; Akers, S.A. Moisture effects on high strain-rate behavior of sand. Mech. Mater. 2009, 41, 786–798. [Google Scholar] [CrossRef]
- Zhao, Z.; Qiu, Y.; Wang, M. Effects of strain rate and initial density on the dynamic mechanical behaviour of dry calcareous sand. Shock Vib. 2019, 2019, 3526727. [Google Scholar] [CrossRef]
- Lv, Y.; Liu, J.; Xiong, Z. One-dimensional dynamic compressive behavior of dry calcareous sand at high strain rates. J. Rock Mech. Geotech. Eng. 2018, 11, 192–201. [Google Scholar] [CrossRef]
- Lv, Y.; Wang, Y.; Zuo, D. Effects of particle size on dynamic constitutive relation and energy absorption of calcareous sand. Powder Technol. 2019, 356, 21–30. [Google Scholar] [CrossRef]
- Lv, Y.; Liu, J.; Zuo, D. Moisture effects on the undrained dynamic behavior of calcareous sand at high strain rates. Geotech. Test. J. 2019, 42, 725–746. [Google Scholar] [CrossRef]
- Xiao, Y.; Liu, H.; Xiao, P.; Xiang, J. Fractal crushing of carbonate sand under impact loading. Geotech. Lett. 2016, 6, 199–204. [Google Scholar] [CrossRef]
- Liingaard, M.; Augustesen, A.; Lade, P.V. Characteristics of models for time-dependent behavior of soils. Int. J. Geomech. 2004, 4, 157–177. [Google Scholar] [CrossRef]
- Wang, X.Z.; Wang, X.; Weng, Y.L.; Shi, Z.L.; Yan, K.; Zhu, C.Q. Characteristics of dry density of calcareous sand and its testing methods. Rock Soil Mech. 2016, 37, 316–322. [Google Scholar] [CrossRef]
- Gray, G. Classic split-Hopkinson pressure bar testing. ASM Handbook. Mech. Test. Evaluation. 2000, 8, 462–476. [Google Scholar]
- Hardin, B.O. Crushing of soil particles. J. Geotech. Eng. 1985, 111, 1177–1192. [Google Scholar] [CrossRef]
- Einav, I. Breakage mechanics—Part I: Theory. J. Mech. Phys. Solids 2007, 55, 1274–1297. [Google Scholar] [CrossRef]
- Yu, Q.; Liu, J.; Patil, U.D.; Congress, S.; Puppala, A.J. Two-dimensional fractal model for ultimate crushing state of coarse aggregates. Fractals 2019, 27, 1950109. [Google Scholar] [CrossRef]
- Tyler, S.W.; Wheatcraft, S.W. Fractal scaling of soil particle-size distributions: Analysis and limitations. Soil Sci. Soc. Am. J. 1992, 56, 362–369. [Google Scholar] [CrossRef]
- Lv, Y.; Li, X.; Wang, Y. Particle breakage of calcareous sand at high strain rates. Powder Technol. 2020, 366, 776–787. [Google Scholar] [CrossRef]
- Lade, P.V.; Yamamuro, J.A.; Bopp, P.A. Significance of particle crushing in granular materials. J. Geotech. Eng. 1996, 122, 309–316. [Google Scholar] [CrossRef]
Mineral Composition | Quartz /% | Potassium Feldspar/% | Plagioclase /% | Calcite /% | Aragonite /% | Halite /% | Gypsum /% | Magnesium Calcite/% | Clay Mineral/% |
---|---|---|---|---|---|---|---|---|---|
Content | 5.6 | 0.5 | 0.4 | 10.0 | 23.0 | 0.3 | / | 58.9 | 1.3 |
Number | Particle Size/mm | Water Content/% | Relative Density/% | Strain Rate/s−1 |
---|---|---|---|---|
1 | 1.0–2.0 | 0 | 70 | 900 |
2 | 4 | |||
3 | 8 | |||
4 | 12 | |||
5 | 16 | |||
6 | 8 | 70 | 300 | |
7 | 600 | |||
8 | 1200 | |||
9 | 1500 | |||
10 | 40 | 900 | ||
11 | 90 | 900 | ||
12 | 0.5–1.0 | 0 | 70 | 900 |
13 | 4 | |||
14 | 8 | |||
15 | 12 | |||
16 | 16 | |||
17 | 8 | 70 | 300 | |
18 | 600 | |||
19 | 1200 | |||
20 | 1500 | |||
21 | 40 | 900 | ||
22 | 90 | 900 | ||
23 | 0.25–0.5 | 0 | 70 | 900 |
24 | 4 | |||
25 | 8 | |||
26 | 12 | |||
27 | 16 | |||
28 | 8 | 70 | 300 | |
29 | 600 | |||
30 | 1200 | |||
31 | 1500 | |||
32 | 40 | 900 | ||
33 | 90 | 900 |
Particle Size/mm | Strain Rates/s−1 | α |
---|---|---|
1.0–2.0 | 300 | 1.21 |
600 | 1.75 | |
900 | 2.06 | |
1200 | 2.30 | |
1500 | 2.42 | |
0.5–1.0 | 300 | 0.70 |
600 | 1.44 | |
900 | 1.83 | |
1200 | 2.05 | |
1500 | 2.23 | |
0.25–0.5 | 300 | 0.80 |
600 | 1.28 | |
900 | 1.81 | |
1200 | 1.92 | |
1500 | 2.05 |
Particle Size/mm | Strain Rate/s−1 | |
---|---|---|
1.0–2.0 | 300 | 0.06 |
600 | 0.18 | |
900 | 0.30 | |
1200 | 0.48 | |
1500 | 0.62 | |
0.5–1.0 | 300 | 0.06 |
600 | 0.13 | |
900 | 0.24 | |
1200 | 0.35 | |
1500 | 0.49 | |
0.25–0.5 | 300 | 0.03 |
600 | 0.09 | |
900 | 0.20 | |
1200 | 0.25 | |
1500 | 0.32 |
Particle Size/mm | Water Contents/% | α | |
---|---|---|---|
1.0–2.0 | 0 | 2.15 | 0.36 |
4 | 2.08 | 0.32 | |
8 | 2.07 | 0.31 | |
12 | 2.04 | 0.29 | |
16 | 2.01 | 0.28 | |
0.5–1.0 | 0 | 1.90 | 0.28 |
4 | 1.86 | 0.26 | |
8 | 1.83 | 0.25 | |
12 | 1.78 | 0.23 | |
16 | 1.75 | 0.21 | |
0.25–0.5 | 0 | 1.82 | 0.22 |
4 | 1.80 | 0.20 | |
8 | 1.79 | 0.19 | |
12 | 1.77 | 0.18 | |
16 | 1.72 | 0.17 |
Particle Size/mm | Relative Densities/% | α | |
---|---|---|---|
1.0–2.0 | 40 | 1.21 | 0.38 |
70 | 1.75 | 0.30 | |
90 | 2.06 | 0.26 | |
0.5–1.0 | 40 | 0.70 | 0.26 |
70 | 1.44 | 0.24 | |
90 | 1.87 | 0.20 | |
0.25–0.5 | 40 | 0.80 | 0.24 |
70 | 1.28 | 0.20 | |
90 | 1.82 | 0.18 |
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Nong, Z.-Z.; Wang, Q.; Hou, H.-Y.; Jiang, P.-M.; Zhou, A.-Z. Mechanical Characteristics and Particle Breakage of Calcareous Sand under Quasi-One-Dimensional Impact Load. J. Mar. Sci. Eng. 2023, 11, 1805. https://doi.org/10.3390/jmse11091805
Nong Z-Z, Wang Q, Hou H-Y, Jiang P-M, Zhou A-Z. Mechanical Characteristics and Particle Breakage of Calcareous Sand under Quasi-One-Dimensional Impact Load. Journal of Marine Science and Engineering. 2023; 11(9):1805. https://doi.org/10.3390/jmse11091805
Chicago/Turabian StyleNong, Zhen-Zhen, Qing Wang, He-Ying Hou, Peng-Ming Jiang, and Ai-Zhao Zhou. 2023. "Mechanical Characteristics and Particle Breakage of Calcareous Sand under Quasi-One-Dimensional Impact Load" Journal of Marine Science and Engineering 11, no. 9: 1805. https://doi.org/10.3390/jmse11091805
APA StyleNong, Z.-Z., Wang, Q., Hou, H.-Y., Jiang, P.-M., & Zhou, A.-Z. (2023). Mechanical Characteristics and Particle Breakage of Calcareous Sand under Quasi-One-Dimensional Impact Load. Journal of Marine Science and Engineering, 11(9), 1805. https://doi.org/10.3390/jmse11091805