Investigation into the Flexural Toughness and Methods of Evaluating Ductile Concrete
Abstract
:1. Introduction
2. Experimental Program
2.1. Materials
2.2. Mixing and Casting
2.3. Four-Point Flexural Test
3. Test Results
3.1. Test Piece Failure Process
3.2. Load-Deflection Curve
3.3. Discussion
4. Methods of Evaluating Bending Toughness of High-Ductility Concrete
4.1. Methods of Evaluating Bending Toughness
4.2. Method of Evaluating Bending Toughness Based on Peak Load
4.2.1. Equivalent Bending Strength, fn
4.2.2. Bending Toughness Ratio, Rn
4.3. Discussion for Practical Implementation
5. Conclusions
- (1)
- The results indicated that the flexural failure modes, ultimate strength, and toughness of HDC could be improved with an increase in PVA fiber content, especially for deformation. The ultimate flexural strength of HDC with 2% PVA fibers of about 15.32 MPa showed an increase of up to 221%. The deformation and flexural toughness ratios were 23 times and 1.43 times higher than the specimens without fibers, respectively.
- (2)
- The post-cracking ductility of conventional concrete was significantly improved due to the stress redistribution effect of the fibers. With an increase in PVA fibers, the HDC specimens exhibited better deflection-hardening behavior, characterized by multiple cracks and crack width gradually decreasing. However, the water–binder ratio and age had little influence on the flexural behavior of HDC, with a variation range between 2% and 13%.
- (3)
- Existing approaches failed to evaluate the flexural toughness of HDC because of their dependence on an unstable initial cracking performance, insufficient deflection limit, and difficulty in reflecting the properties of different tests corresponding with different force stages. Based on JSCE-SF4 and CECS 13: 2009, the equivalent flexural strength and flexural toughness ratios calculated by the peak load of the specimen were proposed to assess HDC flexural toughness, providing a more comprehensive and accurate evaluation by selecting characteristic points evenly distributed throughout the loading process.
- (4)
- Future recommendations are that the parameter n of bending toughness based on the peak load should be modified with more data, and the applicability should be proven with more ductile materials.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
HDC | High-ductility fiber-reinforced concrete |
PVA | Polyvinyl alcohol |
FRC | Fiber-reinforced concrete |
ECC | Engineered cementitious composite |
HPFRCC | High-performance fiber-reinforced cementitious composite |
SHCC | Strain hardening cementitious composite |
d | day |
fn | Equivalent bending strength |
Rn | Bending toughness ratio |
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Fiber Type | Length (mm) | Diameter (μm) | Aspect Ratio | Tensile Strength (MPa) | Elastic Modulus (GPa) |
---|---|---|---|---|---|
PVA | 12 | 39 | 310 | 1600 | 40 |
Group | Specimen ID | Binding Material | Water | Sand | Fiber Volume Fraction (%) | |
---|---|---|---|---|---|---|
Cement | Fly Ash | |||||
Control | HC56-0-29 | 0.5 | 0.5 | 0.29 | 0.36 | 0 |
Series Ι | HC56-1-29 | 0.5 | 0.5 | 0.29 | 0.36 | 1.0 |
HC56-1.5-29 | 0.5 | 0.5 | 0.29 | 0.36 | 1.5 | |
HC56-2-29 | 0.5 | 0.5 | 0.29 | 0.36 | 2.0 | |
HC56-2-26 | 0.5 | 0.5 | 0.26 | 0.36 | 2.0 | |
HC56-2-32 | 0.5 | 0.5 | 0.32 | 0.36 | 2.0 | |
Series Ⅱ | HC28-1-29 | 0.5 | 0.5 | 0.29 | 0.36 | 1.0 |
HC28-1.5-29 | 0.5 | 0.5 | 0.29 | 0.36 | 1.5 | |
HC28-2-29 | 0.5 | 0.5 | 0.29 | 0.36 | 2.0 | |
HC28-2-24 | 0.5 | 0.5 | 0.24 | 0.36 | 2.0 | |
HC28-2-26 | 0.5 | 0.5 | 0.26 | 0.36 | 2.0 |
Specimen | fmax (MPa) | δ (mm) | δcr (mm) | f0.35 (MPa) | f1 (MPa) | R1 | f0.85 (MPa) | R0.85 | f0.2 (MPa) | R0.2 |
---|---|---|---|---|---|---|---|---|---|---|
HC56-0-29 | 4.62 | 0.05 | 0.05 | 1.25 | 2.27 | 1.82 | — | — | — | — |
HC56-1-29 | 8.88 | 0.64 | 0.09 | 1.61 | 6.15 | 3.82 | 6.40 | 3.98 | 5.45 | 3.39 |
HC56-1.5-29 | 11.49 | 0.95 | 0.06 | 2.00 | 8.60 | 4.29 | 8.81 | 4.39 | 7.90 | 3.94 |
HC56-2-29 | 15.32 | 1.18 | 0.08 | 2.67 | 11.56 | 4.33 | 11.80 | 4.42 | 9.76 | 3.65 |
HC56-2-26 | 15.04 | 1.28 | 0.08 | 2.45 | 11.94 | 4.87 | 12.03 | 4.91 | 11.04 | 4.51 |
HC56-2-32 | 13.32 | 1.29 | 0.08 | 2.05 | 10.63 | 5.18 | 10.86 | 5.29 | 9.09 | 4.43 |
HC28-1-29 | 7.33 | 0.55 | 0.06 | 1.27 | 5.27 | 4.16 | 5.58 | 4.40 | 5.08 | 4.01 |
HC28-1.5-29 | 11.67 | 1.09 | 0.10 | 2.31 | 8.25 | 3.57 | 8.46 | 3.66 | 7.08 | 3.07 |
HC28-2-29 | 15.14 | 1.85 | 0.12 | 2.88 | 11.72 | 4.07 | 11.87 | 4.13 | 11.35 | 3.95 |
HC28-2-24 | 15.55 | 0.87 | 0.08 | 2.23 | 11.14 | 4.99 | 11.51 | 5.16 | — | — |
HC28-2-26 | 15.80 | 1.17 | 0.08 | 3.06 | 11.61 | 3.79 | 12.15 | 3.97 | 11.52 | 3.76 |
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Ding, Y.; Li, Y.; Zhao, X.; Dai, J.; Xu, H. Investigation into the Flexural Toughness and Methods of Evaluating Ductile Concrete. Appl. Sci. 2022, 12, 12313. https://doi.org/10.3390/app122312313
Ding Y, Li Y, Zhao X, Dai J, Xu H. Investigation into the Flexural Toughness and Methods of Evaluating Ductile Concrete. Applied Sciences. 2022; 12(23):12313. https://doi.org/10.3390/app122312313
Chicago/Turabian StyleDing, Yonggang, Yunfei Li, Xiangyang Zhao, Jie Dai, and Hualong Xu. 2022. "Investigation into the Flexural Toughness and Methods of Evaluating Ductile Concrete" Applied Sciences 12, no. 23: 12313. https://doi.org/10.3390/app122312313
APA StyleDing, Y., Li, Y., Zhao, X., Dai, J., & Xu, H. (2022). Investigation into the Flexural Toughness and Methods of Evaluating Ductile Concrete. Applied Sciences, 12(23), 12313. https://doi.org/10.3390/app122312313