The Dynamic Mechanical Properties and Damage Constitutive Model of Ultra-High-Performance Steel-Fiber-Reinforced Concrete (UHPSFRC) at High Strain Rates
Abstract
:1. Introduction
2. Experiments
2.1. Raw Material
2.2. Preparation of UHPSFRC
2.3. Static and Dynamic Compression Experiments
3. Results and Discussion
3.1. Results of Quasistatic Compression Tests
3.2. Dynamic Failure Prosess
3.3. Results of Dynamic Compression Tests
4. Statistical Damage Constitutive Model
4.1. DIF Constitutive Models
- (1)
- Exponential function.
- (2)
- Power function.
- (3)
- Logarithmic function.
4.2. Establishment of the Statistical Damage Constitutive Model for UHPSFRC
4.3. Model Validation
5. Conclusions
- (1)
- Under dynamic compression and quasi-static compression loads, there are obvious differences in the failure modes of ultra-high-performance concrete (UHPC) and ultra-high-performance fiber-reinforced concrete (UHPFRC). Under static loading conditions, the failure mode in the UHPC specimen is brittle shear failure, while the failure mode in the UHPSFRC specimen is tension failure. Under dynamic loading conditions, UHPC exhibits a brittle fracture failure mode, while UHPSFRC shows brittle–ductile failure characteristics of cracking but not crushing. The crack propagation inside the UHPC specimen is effectively inhibited by the steel fibers, and with an increase in fiber content, the toughness of UHPSFRC is gradually enhanced.
- (2)
- The dynamic mechanical behavior of UHPSFRC is significantly affected by the strain rate strengthening effect. With an increase in strain rate, the dynamic peak stress of UHPSFRC significantly increases, while the peak strain slightly shrinks. The strain rate of 170 s−1 is a critical threshold at which the failure mode, dynamic compressive strength, and strain rate sensitivity of UHPSFRC are largely enhanced.
- (3)
- The content of steel fiber has a significant effect on the dynamic mechanical properties of UHPSFRC. Specifically, when the fiber content is 1.5%, UHPSFRC exhibits lower crack propagation rates, superior impact cushioning properties, and a lower strain rate sensitivity. On the other hand, at a fiber content of 2%, UHPSFRC shows an optimal compressive strength.
- (4)
- A new DIF-log model is proposed to describe the variation in strain rate sensitivity for UHPC and UHPSFRC. Based on the statistical damage theory and energy conversion principle, a dynamic damage constitutive model considering the influence of strain rate and fiber content is established, which can well describe the mechanical behavior of UHPSFRC at a high strain rate.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Material | UHPC-0% | UHPSFRC-1% | UHPSFRC-1.5% | UHPSFRC-2% |
---|---|---|---|---|
Cement | 870 | 870 | 870 | 870 |
Silica powder | 307 | 307 | 307 | 307 |
Silica fume | 260 | 260 | 260 | 260 |
Quartz powder | 245 | 245 | 245 | 245 |
Fine aggregate | 1055 | 1055 | 1055 | 1055 |
Superplasticizer | 9 | 9 | 9 | 9 |
Water | 180 | 180 | 180 | 180 |
Steel fiber | 0 | 60 | 87 | 120 |
Parameter | UHPC-0% | UHPSFRC-1% | UHPSFRC-1.5% | UHPSFRC-2% |
---|---|---|---|---|
α | 0.0719 | 0.07166 | 0.07146 | 0.07152 |
β | 27 | 27 | 27 | 27 |
R2 | 0.981 | 0.978 | 0.954 | 0.988 |
(s−1) | Parameter | UHPC-0% | UHPSFRC-1% | UHPSFRC-1.5% | UHPSFRC-2% |
---|---|---|---|---|---|
90 | 39.75 | 37.96 | 38 | 40.17 | |
a | 0.0065 | 0.0067 | 0.0070 | 0.0066 | |
r | 2.044 | 2.234 | 2.392 | 2.162 | |
u | −0.003 | −0.003 | −0.003 | −0.003 | |
R2 | 0.976 | 0.992 | 0.977 | 0.957 | |
120 | 50 | 48.22 | 55.99 | 46.74 | |
a | 0.0069 | 0.0071 | 0.0073 | 0.0070 | |
r | 2.270 | 2.586 | 2.647 | 2.435 | |
u | −0.003 | −0.003 | −0.003 | −0.003 | |
R2 | 0.986 | 0.991 | 0.992 | 0.972 | |
140 | 55 | 58.13 | 56.15 | 55.4 | |
a | 0.0072 | 0.0076 | 0.0078 | 0.0074 | |
r | 2.487 | 2.802 | 2.954 | 2.692 | |
u | −0.003 | −0.003 | −0.003 | −0.003 | |
R2 | 0.961 | 0.996 | 0.997 | 0.998 | |
170 | 36 | 36.05 | 36.05 | 37.19 | |
a | 0.0076 | 0.0079 | 0.0082 | 0.0078 | |
r | 2.770 | 3.106 | 3.275 | 3.215 | |
u | −0.003 | −0.003 | −0.003 | −0.003 | |
R2 | 0.996 | 0.992 | 0.993 | 0.993 |
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Lv, X.; Li, Y.; Guo, H.; Liang, W.; Zhai, Y.; Li, L. The Dynamic Mechanical Properties and Damage Constitutive Model of Ultra-High-Performance Steel-Fiber-Reinforced Concrete (UHPSFRC) at High Strain Rates. Materials 2024, 17, 703. https://doi.org/10.3390/ma17030703
Lv X, Li Y, Guo H, Liang W, Zhai Y, Li L. The Dynamic Mechanical Properties and Damage Constitutive Model of Ultra-High-Performance Steel-Fiber-Reinforced Concrete (UHPSFRC) at High Strain Rates. Materials. 2024; 17(3):703. https://doi.org/10.3390/ma17030703
Chicago/Turabian StyleLv, Xiao, Yan Li, Hui Guo, Wenbiao Liang, Yue Zhai, and Le Li. 2024. "The Dynamic Mechanical Properties and Damage Constitutive Model of Ultra-High-Performance Steel-Fiber-Reinforced Concrete (UHPSFRC) at High Strain Rates" Materials 17, no. 3: 703. https://doi.org/10.3390/ma17030703
APA StyleLv, X., Li, Y., Guo, H., Liang, W., Zhai, Y., & Li, L. (2024). The Dynamic Mechanical Properties and Damage Constitutive Model of Ultra-High-Performance Steel-Fiber-Reinforced Concrete (UHPSFRC) at High Strain Rates. Materials, 17(3), 703. https://doi.org/10.3390/ma17030703