Acoustic Emission Test of Marble Powder Concrete
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. The Compressive Strength
3.2. Acoustic Emission Ringing Counts
3.3. Fracture Mode
3.4. b-Value Analysis
3.5. Acoustic Emission Cumulative Count Damage Evolution Model
4. Discussion
5. Conclusions
- (1)
- The compressive strength of MPC specimens decreases with increasing substitution percentages at all ages. The rate of strength loss is highest in the early stages of curing and decreases with curing time after that, with a maximum of 6.2% at age 28 d for substitution percentages below 15%.
- (2)
- The compression failure process of MPC can be divided into three stages based on the characteristics of the AE count changes. With the increase of marble powder substitution percentage, the peak of acoustic emission accumulation count decreased. Still, the acoustic emission activity at the beginning of loading increased, indicating that the original defects of MPC were more. At the same time, the relative stress at critical instability failure decreases with the substitution percentage, and the substitution percentage decreases by 4.2% at 15%.
- (3)
- The RA-AF correlation analysis showed that the tensile mode damage was the main fracture form of MPC. As the marble powder substitution percentage increases, the percentage of tensile mode cracks decreases in stages I and II, the number of shear mode cracks increases, and the percentage in stage III tends to increase. The damage characteristics gradually change from brittle to ductile. The SEM images and the macroscopic cracking behavior of the failure support this result. The b-value analysis shows that the fluctuation of b-value increases with the increase of marble powder substitution percentage; the highest fluctuation is 18.5% at 15% substitution percentage, the number of unstable microcracks under pressure increases, and the crack expansion behavior gradually changes from stable growth to non-stable growth.
- (4)
- The MPC damage evolution model was established with cumulative AE counts. The results showed that when the substitution percentage was lower than 15%, the damage development of MPC was relatively slow in the middle stress (relative stress 20–70%) and accelerated after reaching 70%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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CaO | MgO | SiO2 | Al2O3 | Na2O | K2O | Fe2O3 | Loss |
---|---|---|---|---|---|---|---|
47.937 | 5.492 | 1.974 | 0.045 | 0.377 | 0.069 | 0.003 | 44.103 |
Sample | W/CM | Dosage per Volume/kg·m−3 | |||||
---|---|---|---|---|---|---|---|
Water | Cement | Fine Aggregate | Coarse Aggregate | Water Reducer | Marble | ||
Powder | |||||||
MPC-0 | 0.55 | 198 | 360 | 788 | 1087 | 1.8 | - |
MPC-5 | 342 | 18 | |||||
MPC-10 | 324 | 36 | |||||
MPC-15 | 306 | 54 | |||||
MPC-20 | 288 | 72 | |||||
MPC-25 | 270 | 90 |
Parameter | Threshold/dB | PDT/μs | HDT/μs | HLT/μs | Wave Speed/m·s−1 |
---|---|---|---|---|---|
Value | 45 | 150 | 300 | 500 | 5300 |
Sample | Relative Peak Stress | AE Cumulative Count Peak/105 |
---|---|---|
MPC-0 | 90.5% | 3.8 |
MPC-5 | 86.8% | 3.8 |
MPC-10 | 86.4% | 3.6 |
MPC-15 | 86.3% | 3.3 |
MPC-20 | 84.3% | 2.8 |
MPC-25 | 80.4% | 2.7 |
Sample | R2 | |||
---|---|---|---|---|
MPC-0 | 0.7602 | 0.01274 | 11,280 | 97.27% |
MPC-5 | 0.3151 | 0.03937 | 23,780 | 96.52% |
MPC-10 | 0.2891 | 0.04026 | 22,460 | 97.53% |
MPC-15 | 0.132 | 0.04934 | 17,070 | 93.74% |
MPC-20 | 0.3396 | 0.02281 | 31,780 | 96.08% |
MPC-25 | 0.6844 | 0.01208 | 32,544 | 98.64% |
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Wang, F.; Fan, L.; Chen, Y.; Wan, Z.; Liu, F. Acoustic Emission Test of Marble Powder Concrete. Sustainability 2022, 14, 16976. https://doi.org/10.3390/su142416976
Wang F, Fan L, Chen Y, Wan Z, Liu F. Acoustic Emission Test of Marble Powder Concrete. Sustainability. 2022; 14(24):16976. https://doi.org/10.3390/su142416976
Chicago/Turabian StyleWang, Fujiang, Liyun Fan, Yihu Chen, Zhaohua Wan, and Fabiao Liu. 2022. "Acoustic Emission Test of Marble Powder Concrete" Sustainability 14, no. 24: 16976. https://doi.org/10.3390/su142416976
APA StyleWang, F., Fan, L., Chen, Y., Wan, Z., & Liu, F. (2022). Acoustic Emission Test of Marble Powder Concrete. Sustainability, 14(24), 16976. https://doi.org/10.3390/su142416976