Numerical and Experimental Investigation of Recycled Brick Coarse Aggregate Concrete
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen Preparation
2.3. Compression Test
2.4. Numerical Simulation on RBAC Uniaxial Compress Test
3. Results and Discussion
3.1. Slump
3.2. Apparent Density
3.3. Compressive Strength
3.4. Calibration of the Numerical Model
3.4.1. Stress–Strain Relationship
3.4.2. Uniaxial Compression Failure Behavior
3.5. The Impact of RCA Replacement Rate
3.6. Effect of Interfacial Transition Zone Thickness
3.7. Stress Analysis
3.8. Parameters Investigation
4. Conclusions
- (1)
- Replacement of NCA with RBCA reduces the weight of concrete. Our experimental results show that when the RBCA content in concrete was 25%, 50%, 75%, and 100%, the apparent density of concrete was 3.95%, 7.52%, 10.46%, and 15.55% lower than that of ordinary concrete. In addition, replacing NCA with RBCA reduces the fluidity of concrete. The slump decreases significantly with increasing RBCA replacement rate, although this effect decreases significantly when the replacement rate is less than 50%.
- (2)
- Compared with ordinary concrete, the reduction rate of the compressive strength of 25%, 50%, 75%, and 100% RBCA concrete were 5.7%, 14%, 20.6%, and 28.6%, respectively, the peak strain of the concrete increased by 2.5%, 7.5%, 10.5%, and 15.0%, respectively, and the elastic modulus decreased by 10.4%, 18.9%, 27.4%, and 38.5%, respectively. Focusing on the compressive strength of RBCA concrete and taking into account the workability of fresh concrete and the principle of improving the utilization rate of RBCA, the best replacement rate is 25%.
- (3)
- The failure process of recycled concrete was predicted by numerical simulation. When the replacement rate of RBCA is 100%, 1~2 oblique continuous failure cracks form on the section. When the replacement rate of RBCA is 0–50%, the internal cracks are relatively discrete. The stress state of RBCA concrete under peak strain was obtained by numerical analysis. Tensile stress and shear stress concentration exist in the interface transition zone and the edge of the aggregate. The concentrated tensile and shear stress area coincides with the damage and failure area, failing the model requirements.
- (4)
- The compressive strength, peak strain, elastic modulus, and ratio of ultimate strain to peak strain were studied for different RBCA substitution rates. The compressive strength, tensile strength, and initial elastic modulus decreased with increased RCA content, while the peak strain increased slightly.
- (5)
- Based on the numerical model, the effects of the thickness of the interface transition zone and the replacement rate of recycled aggregate on the compressive strength of recycled concrete were studied. The substitution rate of RBCA and the thickness of the interfacial transition zone negatively correlate with compressive strength and positively correlate with elastic modulus and peak stress.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Raw Material | Apparent Density/(kg/m3) | Bulk Density/(kg/m3) | Water Absorption/% | Crush Value/% |
---|---|---|---|---|
RBCA | 2190 | 990 | 18.61 | 32.9 |
NCA | 2769 | 1543 | 1.45 | 14.8 |
Medium sand | 2689 | 1655 | 0.51 | / |
Group | Water (kg/m3) | Cement (kg/m3) | Gravel (5–10 mm) (kg/m3) | Gravel (10–20 mm) (kg/m3) | Sand (kg/m3) | RBCA (5–10 mm) (kg/m3) | RBCA (10–20 mm) (kg/m3) |
---|---|---|---|---|---|---|---|
RB-0 | 195 | 487 | 341.5 | 796.5 | 613 | 0 | 0 |
RB-25 | 195 | 487 | 256.5 | 597.5 | 613 | 67.5 | 157.5 |
RB-50 | 195 | 487 | 170.5 | 398.5 | 613 | 135 | 315 |
RB-75 | 195 | 487 | 85.5 | 199.5 | 613 | 202.5 | 472.5 |
RB-100 | 195 | 487 | 0 | 0 | 613 | 270 | 630 |
Material Phase | RBCA [39] | NCA [28] | Mortar Matrix [29] | Interfacial Transition Zone [39] |
---|---|---|---|---|
Poisson’s ratio | 0.20 | 0.16 | 0.2 | 0.2 |
dilatancy angle (°) | 30 | / | 30 | 15 |
1.16 | / | 1.16 | 1.16 | |
K | 0.66667 | / | 0.66667 | 0.66667 |
Viscosity coefficient | 1 × 10−5 | / | 1 × 10−5 | 1 × 10−5 |
Eccentricity (%) | 0.1 | / | 0.1 | 0.1 |
Compressive strength (MPa) | 18 | 144 | 28.96 | 16 |
Tensile strength (MPa) | 5.1 | 9.6 | 1.988 | 1.6 |
Elastic modulus (MPa) | 16,000 | 70,000 | 28,960 | 26,000 |
Model | Loading Displacement | Damage Value | ||
−0.0168 mm (Damage Appears) | −0.0280 mm (Peak Strain) | −0.0300 mm (Destroy) | ||
RB-100 | ||||
Model | Loading Displacement | Damage Value | ||
−0.0168 mm (Damage Appears) | −0.0270 mm (Peak Strain) | −0.030 mm (Destroy) | ||
RB-50 | ||||
Model | Loading Displacement | Damage Value | ||
−0.0168 mm (Damage Appears) | −0.0268 mm (Peak Strain) | −0.030 mm (Destroy) | ||
RB-0 |
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Ji, Y.; Wang, D.; Wang, L. Numerical and Experimental Investigation of Recycled Brick Coarse Aggregate Concrete. Appl. Sci. 2022, 12, 9035. https://doi.org/10.3390/app12189035
Ji Y, Wang D, Wang L. Numerical and Experimental Investigation of Recycled Brick Coarse Aggregate Concrete. Applied Sciences. 2022; 12(18):9035. https://doi.org/10.3390/app12189035
Chicago/Turabian StyleJi, Yongcheng, Dayang Wang, and Lifeng Wang. 2022. "Numerical and Experimental Investigation of Recycled Brick Coarse Aggregate Concrete" Applied Sciences 12, no. 18: 9035. https://doi.org/10.3390/app12189035
APA StyleJi, Y., Wang, D., & Wang, L. (2022). Numerical and Experimental Investigation of Recycled Brick Coarse Aggregate Concrete. Applied Sciences, 12(18), 9035. https://doi.org/10.3390/app12189035