Study on Mechanical and Rheological Properties of Solid Waste-Based 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 Flexural Strength Test
2.3.2. Bending Toughness Test
2.3.3. Rheological Test
3. Result and Discussion
3.1. Effect of Different Types of Fly Ash on Compressive and Flexural Strength of ECC
3.2. Effect of Different Types of Fly Ash on Bending Toughness of ECC
3.3. Effect of Different Types of Fly Ash on Rheological Properties of ECC
4. Conclusions
- Compared with raw fly ash and sorted fly ash, ground fly ash has a smaller particle size and a larger specific surface area. In the early stages of ECC hydration, it can play a filling role and increase the density of the ECC matrix. Compared with ECC prepared using raw fly ash and sorted fly ash, the 3 days compressive strength of ground fly ash group ECC matrix increased by 11.4% and 5.8%, respectively. In the later stages of ECC hydration, ground fly ash can better exert the pozzolanic effect and generate more cementitious materials. Compared with ECC prepared using raw fly ash and sorted fly ash, the 28 days compressive strength of ground fly ash group ECC increased by 9.7% and 4.2%, respectively.
- As the particle size of fly ash decreases with the decrease of fly ash particle size, the specific surface area increases. Under the condition of keeping the water cement ratio of ECC unchanged, the friction force between particles of the ground fly ash group ECC increases. Compared with the other two groups, the spherical particles of ground fly ash change to become irregular angular particles, which weakens their morphological effect, and increases the friction between particles in the ECC slurry. Therefore, the ground fly ash group ECC shows the maximum yield stress 246.9 Pa and plastic viscosity 1.21 Pa.s.
- The ground fly ash increases the yield stress and plastic viscosity of cement ECC slurry, thus improving the dispersion of PVA fiber in ECC. When the matrix is damaged by bending, failure occurs in the matrix, though the ground fly ash group ECC still maintains a good load−bearing holding capacity when reaching the peak load, showing better flexural strength and bending toughness. Compared with the raw fly ash group ECC and the sorted fly ash group ECC, the flexural strength of the ground fly ash group ECC increased by 18.92% and 10.69% in 28 days, and the bending toughness increased by 165.6% and 102.4% in 28 days, respectively.
Author Contributions
Funding
Conflicts of Interest
References
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Chemical Composition | CaO | SiO2 | Al2O3 | Fe2O3 | MgO | SO3 | Others |
---|---|---|---|---|---|---|---|
Cement | 61.74 | 16.44 | 4.78 | 3.52 | 2.67 | 3.69 | 7.16 |
Fly ash | 3.54 | 53.72 | 28.11 | 11.55 | 0.78 | 0.42 | 1.88 |
Number | Cement | Raw Fly Ash | Sorted Fly Ash | Ground Fly Ash | Quartz Sand | Emulsion Power | PVA Fiber | Water | Water Reducer |
---|---|---|---|---|---|---|---|---|---|
P1 | 968.4 | 107.6 | 0 | 0 | 484 | 26.9 | 23.96 | 376.6 | 5.38 |
P2 | 968.4 | 0 | 107.6 | 0 | 484 | 26.9 | 23.96 | 376.6 | 5.38 |
P3 | 968.4 | 0 | 0 | 107.6 | 484 | 26.9 | 23.96 | 376.6 | 5.38 |
Date | P1 | P2 | P3 |
---|---|---|---|
3 days | 23 | 36 | 60 |
28 days | 32 | 42 | 85 |
Number | Yield Stress τ0 | Plastic Viscosity μ | Rheology Equation |
---|---|---|---|
P1 | 164.0 | 0.33 | + 164 |
P2 | 240.9 | 0.60 | + 240.9 |
P3 | 246.9 | 1.21 | + 246.9 |
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Wang, X.; Sun, K.; Shao, J.; Ma, J. Study on Mechanical and Rheological Properties of Solid Waste-Based ECC. Buildings 2022, 12, 1690. https://doi.org/10.3390/buildings12101690
Wang X, Sun K, Shao J, Ma J. Study on Mechanical and Rheological Properties of Solid Waste-Based ECC. Buildings. 2022; 12(10):1690. https://doi.org/10.3390/buildings12101690
Chicago/Turabian StyleWang, Xiao, Ke Sun, Jinggan Shao, and Juntao Ma. 2022. "Study on Mechanical and Rheological Properties of Solid Waste-Based ECC" Buildings 12, no. 10: 1690. https://doi.org/10.3390/buildings12101690
APA StyleWang, X., Sun, K., Shao, J., & Ma, J. (2022). Study on Mechanical and Rheological Properties of Solid Waste-Based ECC. Buildings, 12(10), 1690. https://doi.org/10.3390/buildings12101690