Experimental Study on the Influence of Moisture and Clay Content on Stress Wave Attenuation Characteristics of Filled Joints
Abstract
:1. Introduction
2. Test Method and Test Materials
2.1. Experimental Setup
2.2. Dynamic Stress Equilibrium
2.3. Specimen Preparation and Test Process
3. Results
4. Discussion
4.1. Particle Crushing Behavior
4.2. Energy Distribution
5. Conclusions
- With the increase of the clay weight fraction, the wave attenuation coefficient decreased first and then increased. When the weight fraction of Kaolin was 50%, the attenuation coefficient was 9.70, which is the minimum among the tested working conditions. As the saturation increased, the wave attenuation coefficient reached a maximum when the saturation was 25%, and then began to decrease as the saturation increased.
- With the increase of the clay weight fraction, the relative breakage potential decreased continuously, and the proportion of dissipation energy to total incident energy also decreased. The variation trend of the transmitted energy ratio was the same as that of the wave attenuation coefficient. When the clay mass fraction was 25%, the proportion of transmitted energy to total incident energy reached the maximum.
- With the increase of saturation, when the saturation was 25%, the friction between particles decreased due to the lubrication of water, and the corresponding transmitted energy was the lowest. When the saturation reached 100%, the wave attenuation coefficient of sand–clay mixtures was the smallest, and the proportion of transmitted energy reached 42.1%. Compared with quartz sand and sand–clay mixture, the wave attenuation coefficient was similar. It could be considered that the wave transmission characteristics was independent of the filling materials under saturated conditions. However, due to the presence of bound water in clay, the particles crushed due to the presence of tiny bubbles during impact.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Test Number | Clay Weight Fraction | Saturation | Incident Wave Amplitude/MPa | Transmitted Wave Amplitude/MPa | Attenuation Coefficient | Incident Energy | Reflected Energy | Transmitted Energy | Dissipated Energy |
---|---|---|---|---|---|---|---|---|---|
T-1 | 0% | 0% | 155.2 | 28.7 | 14.07 | 165.7 | 120.2 | 4.7 | 40.8 |
T-2 | 0% | 0% | 149.3 | 31.6 | 12.94 | 158.8 | 98.2 | 6.8 | 53.8 |
T-3 | 30% | 0% | 150.2 | 32.5 | 12.76 | 168.9 | 138.5 | 6.1 | 24.3 |
T-4 | 30% | 0% | 153.8 | 33.6 | 12.68 | 167.0 | 126.9 | 6.4 | 33.7 |
T-5 | 50% | 0% | 164.3 | 55.1 | 9.10 | 169.4 | 134.2 | 14.0 | 21.2 |
T-6 | 50% | 0% | 167.9 | 48.8 | 10.30 | 170.5 | 113.8 | 18.6 | 38.1 |
T-7 | 70% | 0% | 154.8 | 29.4 | 13.84 | 160.9 | 127.9 | 4.6 | 28.4 |
T-8 | 70% | 0% | 164.3 | 30.1 | 14.14 | 168.5 | 130.1 | 5.1 | 33.3 |
T-9 | 100% | 0% | 164.8 | 13.1 | 21.10 | 169.6 | 139.7 | 0.7 | 29.2 |
T-10 | 100% | 0% | 159.4 | 10.4 | 22.75 | 169.0 | 139.4 | 0.8 | 28.8 |
T-11 | 30% | 25% | 162.9 | 15.5 | 19.60 | 163.2 | 140.8 | 0.8 | 21.6 |
T-12 | 30% | 25% | 165.9 | 16.0 | 19.49 | 163.1 | 135.5 | 1.9 | 25.7 |
T-13 | 30% | 50% | 162.7 | 73.0 | 6.68 | 159.0 | 92.1 | 24.2 | 42.7 |
T-14 | 30% | 50% | 163.5 | 72.8 | 6.74 | 152.1 | 86.0 | 20.4 | 45.7 |
T-15 | 30% | 75% | 156.9 | 90.1 | 4.62 | 165.6 | 69.7 | 41.1 | 54.8 |
T-16 | 30% | 75% | 167.7 | 99.6 | 4.34 | 153.8 | 51.8 | 49.1 | 52.9 |
T-17 | 30% | 100% | 169.2 | 110.7 | 3.54 | 159.2 | 46.5 | 68.3 | 44.4 |
T-18 | 30% | 100% | 168.0 | 117.0 | 3.01 | 155.2 | 42.6 | 64.0 | 48.6 |
T-19 | 0% | 100% | 157.3 | 118.8 | 2.34 | 165.8 | 37.1 | 95.1 | 33.6 |
T-20 | 0% | 100% | 151.5 | 102.2 | 3.28 | 159.9 | 35.4 | 90.2 | 34.3 |
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Li, S.; Xiong, Z.; Fan, P.; Xie, K. Experimental Study on the Influence of Moisture and Clay Content on Stress Wave Attenuation Characteristics of Filled Joints. Appl. Sci. 2022, 12, 9140. https://doi.org/10.3390/app12189140
Li S, Xiong Z, Fan P, Xie K. Experimental Study on the Influence of Moisture and Clay Content on Stress Wave Attenuation Characteristics of Filled Joints. Applied Sciences. 2022; 12(18):9140. https://doi.org/10.3390/app12189140
Chicago/Turabian StyleLi, Sheng, Ziming Xiong, Pengxian Fan, and Kaidi Xie. 2022. "Experimental Study on the Influence of Moisture and Clay Content on Stress Wave Attenuation Characteristics of Filled Joints" Applied Sciences 12, no. 18: 9140. https://doi.org/10.3390/app12189140
APA StyleLi, S., Xiong, Z., Fan, P., & Xie, K. (2022). Experimental Study on the Influence of Moisture and Clay Content on Stress Wave Attenuation Characteristics of Filled Joints. Applied Sciences, 12(18), 9140. https://doi.org/10.3390/app12189140