An Experimental Study on Dynamic Mechanical Properties of Fiber-Reinforced Concrete under Different Strain Rates
Abstract
:1. Introduction
2. The Sample Preparation for the FRC with PVA
2.1. Experimental Materials and Production
2.1.1. PVA Fiber
2.1.2. Mixture Design Proportions and Mixing of FRC
2.2. Experimental Program
3. Experimental Results and Discussion
3.1. Compression Strength
3.2. Split Tensile Strength
3.3. Elastic Modulus and Peak Strain
3.4. Deformation Characteristics
3.5. Toughness Index
4. Conclusions
- (1)
- PVA has some enhancement and improvement effects on the concrete, mainly regarding the improvement of the compressive strength, splitting tensile strength, the toughness index, and the post-peak mechanical properties of the stress and strain curves at the descending stage. The addition of PVA can also significantly improve the failure behavior of the concrete, which changes from the fall-block and caving of plain concrete to a relatively complete form of FRC with a residual strength of 3–5 MPa. The enhancing effect of PVA on the concrete differs for two matrix strengths. The lower the matrix strength, the more obvious the reinforcing effect of the fiber is on the concrete.
- (2)
- PVA FRC is a rate-sensitive material similar to plain concrete. The uniaxial compressive strength, splitting tensile strength, and elastic modulus of concrete increase with increasing strain rate, while the peak strain of concrete decreases, indicating that the FRC under a high strain rate is more brittle than that under a low strain rate.
- (3)
- The PVA FRC with a 0.2% volume content has greater advantages than the other two kinds of fiber concrete in improving concrete’s mechanical properties. Considering cost factors and construction convenience, concrete with a 0.2% PVA content is recommended in engineering applications.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Fiber Shape | Density (g/cm3) | Fiber Diameter (μm) | Fiber Length (mm) | Tensile Strength (MPa) | Elastic Modulus (GPa) | Elongation at Break (%) | Acid and Alkali Resistance |
---|---|---|---|---|---|---|---|
Bunchy monofilament | 1.30 | 15–25 | 12 | ≥1200 | ≥30 | 5–20 | Strong |
Serials No. | Test Items | Standard Requirement | Measured Value | Individual Assessment |
---|---|---|---|---|
1 | Tensile strength (MPa) | ≥1200 | 1721.2 | Qualified |
2 | Initial elastic modulus (GPa) | ≥30 | 35.7 | Qualified |
3 | Elongation at break (%) | 5–20 | 7.0 | Qualified |
Type | Cement (kg) | Water (kg) | Fine Aggregate (kg) | Coarse Aggregate (kg) | W/C | Sand Ratio | PVA Volume Content |
---|---|---|---|---|---|---|---|
C30PVA0 | 377.6 | 200 | 643.1 | 1194.3 | 0.53 | 35% | 0% |
C30PVA0.2 | 377.6 | 200 | 643.1 | 1194.3 | 0.53 | 35% | 0.2% |
C30PVA0.4 | 377.6 | 200 | 643.1 | 1194.3 | 0.53 | 35% | 0.4% |
C30PVA0.6 | 377.6 | 200 | 643.1 | 1194.3 | 0.53 | 35% | 0.6% |
C40PVA0 | 438.8 | 215 | 611.17 | 1135.03 | 0.49 | 35% | 0% |
C40PVA0.2 | 438.8 | 215 | 611.17 | 1135.03 | 0.49 | 35% | 0.2% |
C40PVA0.4 | 438.8 | 215 | 611.17 | 1135.03 | 0.49 | 35% | 0.4% |
C40PVA0.6 | 438.8 | 215 | 611.17 | 1135.03 | 0.49 | 35% | 0.6% |
Type | Strain Rate (s−1) | Wf (J/m3) | We (J/m3) | Toughness Index |
---|---|---|---|---|
C30PVA0 | 10−5 | 201.21 | 29.02 | 6.93 |
C30PVA0 | 10−4 | 157.87 | 25.06 | 6.30 |
C30PVA0 | 10−3 | 160.90 | 29.24 | 5.50 |
C30PVA0 | 10−2 | 112.61 | 28.41 | 3.96 |
C30PVA0.2 | 10−5 | 237.59 | 28.59 | 8.31 |
C30PVA0.2 | 10−4 | 203.66 | 28.95 | 7.03 |
C30PVA0.2 | 10−3 | 252.82 | 40.15 | 6.30 |
C30PVA0.2 | 10−2 | 244.93 | 50.11 | 4.89 |
C30PVA0.4 | 10−5 | 286.49 | 29.64 | 9.66 |
C30PVA0.4 | 10−4 | 288.44 | 34.27 | 8.42 |
C30PVA0.4 | 10−3 | 259.54 | 34.39 | 7.60 |
C30PVA0.4 | 10−2 | 233.84 | 36.57 | 6.39 |
C30PVA0.6 | 10−5 | 266.11 | 25.28 | 10.53 |
C30PVA0.6 | 10−4 | 317.60 | 35.56 | 8.93 |
C30PVA0.6 | 10−3 | 263.17 | 31.09 | 8.47 |
C30PVA0.6 | 10−2 | 259.54 | 34.79 | 7.46 |
C40PVA0 | 10−5 | 198.86 | 30.50 | 6.52 |
C40PVA0 | 10−4 | 200.75 | 35.28 | 5.69 |
C40PVA0 | 10−3 | 190.13 | 38.66 | 4.92 |
C40PVA0 | 10−2 | 163.00 | 44.82 | 3.64 |
C40PVA0.2 | 10−5 | 269.46 | 35.58 | 7.57 |
C40PVA0.2 | 10−4 | 297.19 | 41.69 | 7.13 |
C40PVA0.2 | 10−3 | 327.58 | 47.43 | 6.91 |
C40PVA0.2 | 10−2 | 298.17 | 52.14 | 5.72 |
C40PVA0.4 | 10−5 | 332.30 | 34.11 | 9.74 |
C40PVA0.4 | 10−4 | 320.76 | 37.03 | 8.66 |
C40PVA0.4 | 10−3 | 312.84 | 47.58 | 6.58 |
C40PVA0.4 | 10−2 | 270.63 | 51.37 | 5.27 |
C40PVA0.6 | 10−5 | 362.71 | 35.42 | 10.24 |
C40PVA0.6 | 10−4 | 351.34 | 37.54 | 9.36 |
C40PVA0.6 | 10−3 | 347.59 | 41.10 | 8.46 |
C40PVA0.6 | 10−2 | 338.79 | 47.57 | 7.12 |
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Wu, Y.; Song, W.; Zhao, W.; Tan, X. An Experimental Study on Dynamic Mechanical Properties of Fiber-Reinforced Concrete under Different Strain Rates. Appl. Sci. 2018, 8, 1904. https://doi.org/10.3390/app8101904
Wu Y, Song W, Zhao W, Tan X. An Experimental Study on Dynamic Mechanical Properties of Fiber-Reinforced Concrete under Different Strain Rates. Applied Sciences. 2018; 8(10):1904. https://doi.org/10.3390/app8101904
Chicago/Turabian StyleWu, Yuexiu, Wanpeng Song, Wusheng Zhao, and Xianjun Tan. 2018. "An Experimental Study on Dynamic Mechanical Properties of Fiber-Reinforced Concrete under Different Strain Rates" Applied Sciences 8, no. 10: 1904. https://doi.org/10.3390/app8101904
APA StyleWu, Y., Song, W., Zhao, W., & Tan, X. (2018). An Experimental Study on Dynamic Mechanical Properties of Fiber-Reinforced Concrete under Different Strain Rates. Applied Sciences, 8(10), 1904. https://doi.org/10.3390/app8101904