Experimental Study and Theoretical Analysis on the Compression–Shear Multiaxial Mechanical Properties of Recycled Concrete
Abstract
:1. Introduction
2. Materials and Methods
2.1. Specimen Preparation
2.2. Loading Plan
3. Analysis of Test Results
3.1. Failure Mode
3.2. Stress–Strain Curve
3.3. Shear Stress
3.4. Shear Strain
4. Theoretical Analysis
4.1. Stress Mechanism
4.2. Failure Criterion
4.2.1. Principal Stress Space
4.2.2. Octahedral Stress Space
4.3. Calculation Mode
5. Conclusions
- (1)
- According to analysis of the macroscopic failure modes, it was found that the shear cracks of test specimens with different replacement rates all exhibit a developing trend along the oblique direction with the growth of axial compression ratio, and the friction traces on the shear interface are gradually deepened. As the RA replacement rate increases, the number and size of cracks tend to increase gradually.
- (2)
- From the perspective of shear stress and shear strain, with the growth of axial compression ratio, the shear stress and shear strain of recycled concrete are gradually increased. With the increase of the RA replacement rate, the shear stress is gradually reduced, while the shear strain is gradually increased. In addition, the variation range of shear stress and shear strain under the influence of axial compression ratio are also gradually reduced.
- (3)
- According to the shear stress test data under different RA replacement rates and axial compression ratios, a compression–shear multiaxial failure criterion under the influence of RA replacement rate and a shear stress calculation model for recycled concrete were proposed. Both the failure criterion and the calculation model have good applicability to engineering practice.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Replacement Rate | Water | Cement | Fine Aggregates | Coarse Aggregates | |
---|---|---|---|---|---|
NCA | NCA | ||||
0% | 175 | 461 | 512 | 1252 | 0 |
25% | 175 | 461 | 512 | 939 | 313 |
50% | 175 | 461 | 512 | 626 | 626 |
75% | 175 | 461 | 512 | 313 | 939 |
100% | 175 | 461 | 512 | 0 | 1252 |
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Zhang, Y.; Peng, S.; Du, X.; Yu, Z.; Wu, J.; Xie, X.; Hu, Y. Experimental Study and Theoretical Analysis on the Compression–Shear Multiaxial Mechanical Properties of Recycled Concrete. Materials 2022, 15, 4810. https://doi.org/10.3390/ma15144810
Zhang Y, Peng S, Du X, Yu Z, Wu J, Xie X, Hu Y. Experimental Study and Theoretical Analysis on the Compression–Shear Multiaxial Mechanical Properties of Recycled Concrete. Materials. 2022; 15(14):4810. https://doi.org/10.3390/ma15144810
Chicago/Turabian StyleZhang, Yongping, Shuai Peng, Xiaoqing Du, Zhenpeng Yu, Jie Wu, Xinghua Xie, and Yanli Hu. 2022. "Experimental Study and Theoretical Analysis on the Compression–Shear Multiaxial Mechanical Properties of Recycled Concrete" Materials 15, no. 14: 4810. https://doi.org/10.3390/ma15144810
APA StyleZhang, Y., Peng, S., Du, X., Yu, Z., Wu, J., Xie, X., & Hu, Y. (2022). Experimental Study and Theoretical Analysis on the Compression–Shear Multiaxial Mechanical Properties of Recycled Concrete. Materials, 15(14), 4810. https://doi.org/10.3390/ma15144810