Performance Test and Microstructure of Modified PVC Aggregate-Hybrid Fiber Reinforced Engineering Cementitious Composite (ECC)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen Preparation
2.3. Test Device and Methods
2.3.1. Compressive Strength and Splitting Tensile Strength Test
2.3.2. Water Absorption Test
2.3.3. Drop Hammer Impact Test
2.3.4. Scanning Electron Microscopy and Nuclear Magnetic Resonance Test
3. Results and Discussion
3.1. Compressive Strength, Splitting Tensile Strength, Failure Process
3.2. Water Absorption Rate
3.3. Impact Failure Energy
4. Discussion
4.1. Size Effect
4.2. Shrinkage Performance
4.3. Creep and Rheological Properties
5. Conclusions
- The strength of the ECC matrix with added PVC aggregate before and after modification decreases but adding modified PVC aggregate can effectively delay the effect of directly adding PVC aggregate on strength reduction. The results demonstrate that the compressive strength of the ECC matrix decreases as 0.5% PP fiber is added, but the splitting tensile strength increases. With the increase of the PVA fiber content, the compressive strength decreases significantly, which is 18.65% when the volume content is 2%, but the splitting tensile strength is increased by 100.5%. The hybrid effect coefficients based on the compressive strength and the splitting tensile strength of 0.5% PP and 1.5% PVA fiber groups are 0.993 and 0.882, respectively. The compressive strength and the splitting tensile strength of the group added with hybrid fiber-modified PVC aggregate decreases slowly as more modified PVC aggregate is added, which are 35.28 MPa and 3.62 MPa, respectively.
- The compressive failure mode of the ECC matrix is similar to brittle failure. Adding PVC aggregate before and after modification can decrease the elastic modulus and effectively improve brittleness, but modified PVC aggregate has a more obvious effect. With the increase in the PVA fiber content, there are fewer macro penetration fracture planes on the specimen surface and the elastic modulus decreases, indicating that the brittleness has been effectively improved. As 2% PVA fiber is added, the failure form is the most complete, there is no penetration fracture plane, and the brittleness basically disappears. The failure mode of adding 1.5% PVA and 0.5% PP fibers is similar to that of adding 1.5% PVA fiber. However, there are few cracks on the compression surface, and the elastic modulus is a little bit lower, which indicates that its brittleness improvement effect is slightly better than that of 1.5% PVA fiber, but much worse than that of 2% PVA fiber. The macro penetration fracture plane and spalling of specimens with added hybrid fiber and 30% modified PVC aggregate are worse than that added with 2% PVA fiber, the elastic modulus and the brittleness improvement ability is second only to it.
- The water absorption of the ECC matrix with added modified and unmodified PVC aggregate increases. Adding modified PVC aggregate can effectively decrease the porosity caused by directly mixing PVC aggregate. Regardless of the kind of fiber and the content, the water absorption increases. As 1.5% PVA and 0.5% PP fibers are added, the water absorption is the largest, and the hybrid effect coefficient based on water absorption is 0.987. As more modified PVC aggregate is added, the water absorption of the ECC added with hybrid fiber and modified PVC aggregate increases, reaching 2.441%.
- ECC matrix has a large brittleness, and the impact failure energy with the added modified and unmodified PVC aggregate obviously increases. The modified PVC aggregate has a more significant reinforcement effect. The impact failure energy of 0.5% PP fiber is increased by 1.33 times, the effect is general. However, PVA fiber increases the impact failure energy more obviously. The impact failure energy is increased nearly by 276 times when the mixing content of PVA fiber is 2%. The hybrid effect coefficient of 0.5% PP and 1.5% PVA fibers based on impact failure energy is 0.601. The impact failure energy of the ECC added with hybrid fiber and modified PVC aggregate increases as more modified PVC aggregate is added, reaching 13,747.12 J.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Species | Length | Diameter | Density | Elastic Modulus | Tensile Strength | Elongation at Break |
---|---|---|---|---|---|---|
PP Fiber | 12 mm | 18 μm | 0.91 g/cm3 | 4.5 GPa | 500 MPa | 26.8% |
PVA Fiber | 12 mm | 40 μm | 1.3 g/cm3 | 42.8 GPa | 1560 MPa | 6.5% |
Specimen | A-0 | A-1 | A-2 | B-1 | B-2 | B-3 | B-4 | B-5 | C-1 | C-2 | C-3 |
---|---|---|---|---|---|---|---|---|---|---|---|
PVC aggregate (kg/m3) | 0 | 94.5 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
Modified PVC aggregate (kg/m3) | 0 | 0 | 94.5 | 0 | 0 | 0 | 0 | 0 | 31.5 | 63 | 94.5 |
PVA fiber (kg/m3) | 0 | 0 | 0 | 0 | 13 | 19.5 | 26 | 19.5 | 19.5 | 19.5 | 19.5 |
PP fiber (kg/m3) | 0 | 0 | 0 | 4.55 | 0 | 0 | 0 | 4.55 | 4.55 | 4.55 | 4.55 |
Sand (kg/m3) | 459 | 321.3 | 321.3 | 459 | 459 | 459 | 459 | 459 | 413.1 | 367.2 | 321.3 |
Specimen | A-0 | A-1 | A-2 | B-1 | B-2 | B-3 | B-4 | B-5 | C-1 | C-2 | C-3 |
---|---|---|---|---|---|---|---|---|---|---|---|
Compressive strength (MPa) | 51.14 | 41.42 | 43.98 | 46.36 | 47.51 | 43.4 | 41.6 | 39.07 | 36.16 | 35.95 | 35.28 |
Standard deviation | 5.07 | 3.76 | 2.45 | 4.95 | 5.23 | 4.89 | 3.10 | 2.98 | 3.02 | 4.32 | 2.13 |
Splitting tensile strength (MPa) | 1.84 | 1.52 | 1.71 | 2.47 | 3.4 | 3.75 | 4.25 | 3.82 | 3.73 | 3.72 | 3.67 |
Standard deviation | 0.21 | 0.26 | 0.34 | 0.21 | 0.32 | 0.28 | 0.31 | 0.19 | 0.24 | 0.20 | 0.26 |
Elastic modulus (GPa) | 4.06 | 3.51 | 3.46 | 3.58 | 3.13 | 3.06 | 2.91 | 3.03 | 3.02 | 2.97 | 2.95 |
Standard deviation | 0.26 | 0.34 | 0.41 | 0.42 | 0.39 | 0.27 | 0.42 | 0.21 | 0.37 | 0.19 | 0.36 |
Brittleness index value | 27.79 | 27.25 | 25.71 | 18.77 | 13.97 | 11.57 | 9.79 | 10.23 | 9.73 | 9.66 | 9.61 |
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Hu, S.; Cai, H.; Hong, R.; Li, M.; Yao, F. Performance Test and Microstructure of Modified PVC Aggregate-Hybrid Fiber Reinforced Engineering Cementitious Composite (ECC). Materials 2021, 14, 1856. https://doi.org/10.3390/ma14081856
Hu S, Cai H, Hong R, Li M, Yao F. Performance Test and Microstructure of Modified PVC Aggregate-Hybrid Fiber Reinforced Engineering Cementitious Composite (ECC). Materials. 2021; 14(8):1856. https://doi.org/10.3390/ma14081856
Chicago/Turabian StyleHu, Shi, Haibing Cai, Rongbao Hong, Mengkai Li, and Fangxing Yao. 2021. "Performance Test and Microstructure of Modified PVC Aggregate-Hybrid Fiber Reinforced Engineering Cementitious Composite (ECC)" Materials 14, no. 8: 1856. https://doi.org/10.3390/ma14081856
APA StyleHu, S., Cai, H., Hong, R., Li, M., & Yao, F. (2021). Performance Test and Microstructure of Modified PVC Aggregate-Hybrid Fiber Reinforced Engineering Cementitious Composite (ECC). Materials, 14(8), 1856. https://doi.org/10.3390/ma14081856