Performance Evolution of Recycled Aggregate Concrete under the Coupled Effect of Freeze–Thaw Cycles and Sulfate Attack
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Specimens
2.2. Freeze–Thaw Tests
2.3. Mass Change, Water Absorption and Internal Damage
2.4. Mechanical Property Tests
3. Results and Discussion
3.1. Mass Loss and Water Absorption
3.2. Dynamic Elastic Modulus
3.3. Compressive Strength and Splitting Tensile Strength
3.4. Fracture Energy
3.5. The Relationship between Strength and Damage Parameter
3.6. Analytical Techniques
4. Conclusions
- (1)
- The oven-dried mass decreases linearly with FT cycles. However, the saturated mass fluctuates slightly during the tests. The loss of the oven-dried mass is more suitable for assessing FT damage than the saturated mass.
- (2)
- The water-exposed FT cycles would result in more severe deterioration in mass loss, elastic modulus and compressive strength, while for the sulfate-exposed FT cycles, the splitting tensile strength and fracture energy have more serious degradation. Compared with compressive strength, deterioration in splitting tensile strength is more severe. The maximum losses in compressive and splitting tensile strength are 28.7% and 35%, respectively.
- (3)
- The fracture energy showed an increasing trend to 60 FT cycles, followed by an overall decrease to 180 FT cycles. It indicated a maximum increment of about 45% and 39% for water- and sulfate-exposed samples, respectively, after being subjected to 60 FT cycles. The analysis of failure modes of coarse aggregate reveals that FT damage results in a significant deterioration in the binding force of mortar. After being subjected to 180 FT cycles, the area percentage of pulled-out failure was increased from 7.3% to larger than 17.3%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Cement | Sand | NCA | RCA | FA | SP | Water | w/c | w/b |
---|---|---|---|---|---|---|---|---|
440 | 610 | 620 | 620 | 110 | 1.1 | 165 | 0.5 | 0.4 |
Appearance | Water-Reducing Ratio | Moisture Content | Bulk Density/kg.m−3 |
---|---|---|---|
Grey powder | ≥25% | ≤5.0% | 500~700 |
PH Value (20 °C, 10% Aqueous Solutions) | Chloride Ions Content | Sodium Sulfate Content | Alkali Content |
6~8 | ≤0.03% | ≤3.0% | ≤0.5% |
Specimen | FT Cycles | ||||||
---|---|---|---|---|---|---|---|
0 (W0/S0) | 0 | - | - | - | - | - | - |
W60 | 60 | 9306 | 9217 | 9270 | 9178 | 89 | 92 |
W90 | 90 | 9087 | 8999 | 9023 | 8931 | 88 | 92 |
W120 | 120 | 9539 | 9474 | 9474 | 9399 | 65 | 75 |
W150 | 150 | 9101 | 9018 | 9041 | 8924 | 83 | 117 |
W180 | 180 | 9047 | 8955 | 8976 | 8813 | 92 | 163 |
S60 | 60 | 9143 | 9048 | 9116 | 9029 | 95 | 87 |
S90 | 90 | 9298 | 9224 | 9273 | 9205 | 74 | 68 |
S120 | 120 | 9106 | 9019 | 9083 | 8985 | 87 | 98 |
S150 | 150 | 9060 | 8996 | 9031 | 8944 | 64 | 87 |
S180 | 180 | 9206 | 9127 | 9146 | 9033 | 79 | 113 |
Specimen | FT Cycles | ||||
---|---|---|---|---|---|
0 (W0/S0) | 0 | 0 | 59.5 | 4.0 | 300.9 |
W60 | 60 | 0.068 | 56.2 | 3.5 | 437.1 |
W90 | 90 | 0.109 | 51.1 | 3.2 | 326.7 |
W120 | 120 | 0.173 | 47.5 | 3.0 | 342.5 |
W150 | 150 | 0.211 | 44.3 | 2.9 | 309.2 |
W180 | 180 | 0.246 | 42.4 | 2.6 | 274.1 |
S60 | 60 | 0.048 | 57.8 | 3.6 | 417.9 |
S90 | 90 | 0.073 | 53.5 | 3.3 | 386.1 |
S120 | 120 | 0.092 | 51.2 | 3.1 | 322.2 |
S150 | 150 | 0.15 | 49.8 | 3.0 | 252.1 |
S180 | 180 | 0.215 | 46.1 | 2.6 | 254.1 |
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Jia, P.; Li, L.; Zhou, J.; Zhang, D.; Guan, Z.; Dong, J.; Wang, Q. Performance Evolution of Recycled Aggregate Concrete under the Coupled Effect of Freeze–Thaw Cycles and Sulfate Attack. Appl. Sci. 2022, 12, 6950. https://doi.org/10.3390/app12146950
Jia P, Li L, Zhou J, Zhang D, Guan Z, Dong J, Wang Q. Performance Evolution of Recycled Aggregate Concrete under the Coupled Effect of Freeze–Thaw Cycles and Sulfate Attack. Applied Sciences. 2022; 12(14):6950. https://doi.org/10.3390/app12146950
Chicago/Turabian StyleJia, Pu, Lang Li, Jin Zhou, Di Zhang, Zhongwei Guan, Jiangfeng Dong, and Qingyuan Wang. 2022. "Performance Evolution of Recycled Aggregate Concrete under the Coupled Effect of Freeze–Thaw Cycles and Sulfate Attack" Applied Sciences 12, no. 14: 6950. https://doi.org/10.3390/app12146950
APA StyleJia, P., Li, L., Zhou, J., Zhang, D., Guan, Z., Dong, J., & Wang, Q. (2022). Performance Evolution of Recycled Aggregate Concrete under the Coupled Effect of Freeze–Thaw Cycles and Sulfate Attack. Applied Sciences, 12(14), 6950. https://doi.org/10.3390/app12146950