Recycled Concrete Aggregate for Medium-Quality Structural Concrete
Abstract
:1. Introduction
2. Experimental Methodology
2.1. Materials
2.2. Concrete Mixture
2.3. Preparation of Specimens
2.4. Testing Methodology
3. Results and Discussions
3.1. Workability
3.2. Compressive Strength
3.3. Splitting Tensile Strength
3.4. Elastic Modulus
3.5. Abrasion
3.6. Ultra-Sonic Pulse Velocity
3.7. Effect of Creep
3.8. Density of the RC
3.9. Water Absorption
3.10. Microstructural Analysis
4. Discussion on the Practical Aspects of Using RC
5. Conclusions
- The high demand for water of the RCA significantly affected the workability as well as the durability of the RC. The workability of the RC was reduced by 8% to 38%.
- The compressive strength was reduced by 5.0–9.3%, in comparison to the reference concrete. More reductions in the compressive strength of the RC were obtained as the RCA replacements increased.
- For 100% replacement of the RCA, a 10.7% difference of the tensile strength was observed between the reference concrete and the RC at the age of 7 days. Whereas, this reduction decreased to 8.3% at an age of 28 days and over. The residual cement mortar in the RCA provided weakened points, which caused reductions in the tensile strength of the RC.
- The concrete thickness loss was significantly high at an early age (age of 7 days), where the thickness of the specimens decreased by approximately 5.0 mm. However, the thickness loss was insignificant after 28 days.
- The provided regression analysis is useful to estimate the compressive strength of the recycled concrete using a non-destructive test with a goodness of fit of 0.93.
- For 100% replacement of the RCA, the creep strain increased by 67.5% relative to the reference concrete. However, only a 16% increase was obtained for the case of 25% replacement. The higher volume of cement paste in the RC compared to that of the reference concrete caused higher losses of the physically absorbed water under the sustained stresses and, subsequently, led to this increase in the creep strains.
- Using the RCA as a replacement for the NCA led to an increase in the water absorption of the RC and a linear proportion was observed between the content of the RCA and water absorption. For 100% replacement of the RCA, the water absorption increased by approximately 7%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Properties | Result | |
---|---|---|
Fineness by air permeability method (Blain) | 296 m2/kg | |
Initial Setting Time | 70 min | |
Final setting time | 310 min | |
Soundness (Autoclave Method) | 0.4% | |
Compressive Strength | 3-day age 7-day age | 21.3 MPa 29.4 MPa |
Oxides | Compound Composition | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
CaO | SiO2 | Al2O3 | MgO | Fe2O3 | SO3 | LOI | C3S | C2S | C3A | C4AF |
63.25 | 19.57 | 6.1 | 3.4 | 3.68 | 2.73 | 2.36 | 56.21 | 13.83 | 9.94 | 11.18 |
Properties | Values |
---|---|
Fineness Modulus | 2.62 |
Apparent Specific Gravity | 2.65 |
Bulk Density (kg/m3) | 1773 |
Water absorption (%) | 0.83 |
Moisture Content (%) | 0.32 |
Sulphate Content, SO3 (%) | 0.3 |
Properties | NCA | RCA |
---|---|---|
Bulk specific gravity | 2.632 | 2.231 |
Water absorption (%) | 0.26 | 2.91 |
Soundness (MgSO4) | 5.7 | 7.8 |
Materials | Weight (kg/m3) | ||||
---|---|---|---|---|---|
CC | RC25 | RC50 | RC75 | RC100 | |
Water | 189 | 189 | 189 | 189 | 189 |
Cement | 420 | 420 | 420 | 420 | 420 |
Natural fine aggregate | 753 | 753 | 753 | 753 | 753 |
Natural coarse aggregate | 976 | 732 | 488 | 244 | - |
Recycled coarse aggregate | - | 244 | 488 | 732 | 976 |
Specimen Shape | Number of Specimens | Type of Test |
---|---|---|
Concrete cylinders 150 mm × 300 mm | 120 | 60 specimens for the compression tests. 60 specimens for the splitting tension tests. |
Concrete cylinders 100 mm × 200 mm | 15 specimens for the creep tests. | |
Concrete cubes 150 mm × 150 m × 150 mm | 45 | 15 specimens for the ultrasound pulse velocity tests. 15 specimens for the density tests.15 specimens for the water absorption test. |
Concrete Cuboids 300 mm × 300 mm × 75 mm | 60 | 60 Specimens for the abrasion tests. |
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Tran, D.V.P.; Allawi, A.; Albayati, A.; Cao, T.N.; El-Zohairy, A.; Nguyen, Y.T.H. Recycled Concrete Aggregate for Medium-Quality Structural Concrete. Materials 2021, 14, 4612. https://doi.org/10.3390/ma14164612
Tran DVP, Allawi A, Albayati A, Cao TN, El-Zohairy A, Nguyen YTH. Recycled Concrete Aggregate for Medium-Quality Structural Concrete. Materials. 2021; 14(16):4612. https://doi.org/10.3390/ma14164612
Chicago/Turabian StyleTran, Dong Viet Phuong, Abbas Allawi, Amjad Albayati, Thi Nguyen Cao, Ayman El-Zohairy, and Yen Thi Hai Nguyen. 2021. "Recycled Concrete Aggregate for Medium-Quality Structural Concrete" Materials 14, no. 16: 4612. https://doi.org/10.3390/ma14164612
APA StyleTran, D. V. P., Allawi, A., Albayati, A., Cao, T. N., El-Zohairy, A., & Nguyen, Y. T. H. (2021). Recycled Concrete Aggregate for Medium-Quality Structural Concrete. Materials, 14(16), 4612. https://doi.org/10.3390/ma14164612