Adhesion and Sliding Constitutive Relationship between Basalt–Polypropylene Hybrid Fiber-Reinforced Concrete and Steel Bars
Abstract
:Featured Application
Abstract
1. Introduction
2. Experimental Program
2.1. Test Piece Design
2.2. Material Properties
2.3. Pull-Out Test Scheme
3. Test Results and Analysis
3.1. Failure Modes
3.2. Bonding Stress–Slip Curve
3.3. Bonding Properties between Ordinary Steel Bars and Different Concretes
4. Bonding–Sliding Constitutive Model
4.1. Ultimate Bond Strength
4.2. Bond–Slip Constitutive Relationship
4.2.1. Ascending Segment
4.2.2. Peak Segment
4.2.3. Descending Section
4.2.4. Residual Section
4.3. Comparison and Verification of Constitutive Models
5. Conclusions
- The failure modes between the bond of basalt–polypropylene hybrid fiber-reinforced concrete and steel bars are essentially identical to those of the bond between conventional reinforced concrete and steel bars, which include three primary failure modes: concrete split failure, split–shear failure and steel bar pull-out failure.
- The bond–slip curve characteristics between basalt–polypropylene hybrid fiber-reinforced concrete and steel bars are essentially equivalent to those of the ascending section in ordinary reinforced concrete. However, upon concrete cracking, the basalt–polypropylene hybrid fiber provides additional lateral restraint, resulting in a higher ultimate bond strength for basalt–polypropylene hybrid fiber-reinforced concrete and steel bars. The descending section of the curve is gentler.
- Through a comparative analysis of the influence of concrete strength, protective layer thickness, embedded length and steel bar diameter on the ultimate bond strength, a prediction model for the ultimate bond strength of steel and hybrid fiber-reinforced concrete was established.
- Based on experimental data, the effects of bond strength and slip amount on the bond–slip curve were comprehensively considered, and a mean bond stress–slip constitutive relationship between basalt–polypropylene hybrid fiber-reinforced concrete and steel bars was established through statistical regression analysis.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Number | Strength Grade | d/mm | la/d | c/mm |
---|---|---|---|---|
C30-14-3d-68 | C30 | 14 | 3 | 68 |
C30-14-5d-68 | C30 | 14 | 5 | 68 |
C30-14-7d-68 | C30 | 14 | 7 | 68 |
C30-14-5d-63 | C30 | 14 | 5 | 63 |
C30-14-5d-42 | C30 | 14 | 5 | 42 |
C30-14-5d-21 | C30 | 14 | 5 | 21 |
C30-16-3d-67 | C30 | 16 | 3 | 67 |
C30-16-5d-67 | C30 | 16 | 5 | 67 |
C30-16-7d-67 | C30 | 16 | 7 | 67 |
C30-16-5d-64 | C30 | 16 | 5 | 64 |
C30-16-5d-48 | C30 | 16 | 5 | 48 |
C30-16-5d-32 | C30 | 16 | 5 | 32 |
C30-18-3d-66 | C30 | 18 | 3 | 66 |
C30-18-5d-66 | C30 | 18 | 5 | 66 |
C30-18-7d-66 | C30 | 18 | 7 | 66 |
C30-18-5d-54 | C30 | 18 | 5 | 54 |
C30-18-5d-36 | C30 | 18 | 5 | 36 |
C30-18-5d-27 | C30 | 18 | 5 | 27 |
C30-20-3d-65 | C50 | 20 | 5 | 65 |
C30-20-5d-65 | C50 | 20 | 5 | 65 |
C30-20-7d-65 | C50 | 20 | 5 | 65 |
C30-20-5d-20 | C50 | 20 | 5 | 20 |
C30-20-5d-40 | C50 | 20 | 5 | 40 |
C30-20-5d-60 | C50 | 20 | 5 | 60 |
C30-22-5d-64 | C50 | 22 | 5 | 64 |
C30-25-5d-62.5 | C50 | 25 | 5 | 62.5 |
C40-14-5d-68 | C40 | 14 | 5 | 68 |
C40-16-5d-67 | C40 | 16 | 5 | 67 |
C40-18-5d-66 | C40 | 18 | 5 | 66 |
C40-20-5d-65 | C40 | 20 | 5 | 65 |
C40-22-5d-64 | C40 | 22 | 5 | 64 |
C40-25-5d-62.5 | C40 | 25 | 5 | 62.5 |
C50-14-5d-68 | C50 | 14 | 5 | 68 |
C50-16-5d-67 | C50 | 16 | 5 | 67 |
C50-18-5d-66 | C50 | 18 | 5 | 66 |
C50-20-5d-65 | C50 | 20 | 5 | 65 |
C50-22-5d-64 | C50 | 22 | 5 | 64 |
C50-25-5d-62.5 | C50 | 25 | 5 | 62.5 |
Concrete Strength | Cement | Silica Fume | Fly Ash | Slag | Water Reducer | Water | Sand | Stone | Basalt Fiber | Polypropylene Fiber |
---|---|---|---|---|---|---|---|---|---|---|
C30 | 234.2 | 22.0 | 73.2 | 36.6 | 3.66 | 161.0 | 683.0 | 1162.9 | 1.28 | 0.46 |
C40 | 241.6 | 15.8 | 79.2 | 59.4 | 3.96 | 150.5 | 683.4 | 1163.6 | 2.56 | 0.00 |
C50 | 333.1 | 29.0 | 48.3 | 72.4 | 4.83 | 140.0 | 774.1 | 1026.1 | 1.28 | 0.00 |
Diameter (mm) | Yield Strength (MPa) | Tensile Strength (MPa) | Yield Strength Ratio | Maximum Total Elongation (%) | Ultimate Elongation (%) |
---|---|---|---|---|---|
14 | 460 | 610 | 0.73 | 15.0 | 29.0 |
16 | 445 | 600 | 0.74 | 14.5 | 24.0 |
18 | 465 | 595 | 0.78 | 16.5 | 35.0 |
20 | 440 | 600 | 0.73 | 14.5 | 24.0 |
22 | 425 | 570 | 0.75 | 15.5 | 23.0 |
25 | 435 | 580 | 0.75 | 16.5 | 23.0 |
Number | Fu/kN | τu/MPa |
---|---|---|
C30-14-5d-68 | 57.76 | 18.76 |
C40-14-5d-68 | 64.50 | 20.95 |
C50-14-5d-68 | 77.46 | 25.16 |
C30-14-3d-68 | 38.00 | 20.57 |
C30-14-7d-68 | 59.44 | 13.79 |
C30-16-5d-67 | 69.13 | 17.19 |
C40-16-5d-67 | 79.74 | 19.83 |
C50-16-5d-67 | 90.34 | 22.46 |
C30-16-3d-67 | 47.22 | 19.57 |
C30-16-7d-67 | 71.67 | 12.73 |
C30-14-5d-21 | 46.00 | 14.94 |
C30-14-5d-42 | 53.79 | 17.47 |
C30-14-5d-63 | 57.36 | 18.63 |
C30-16-5d-32 | 57.30 | 14.25 |
C30-16-5d-48 | 62.17 | 15.46 |
C30-16-5d-64 | 69.13 | 17.19 |
C30-18-3d-66 | 59.76 | 19.57 |
C30-18-5d-66 | 82.19 | 16.15 |
C30-18-7d-66 | 90.70 | 12.73 |
C30-18-5d-27 | 69.72 | 13.70 |
C30-18-5d-36 | 72.20 | 14.58 |
C30-18-5d-54 | 77.71 | 15.27 |
C30-20-3d-65 | 70.50 | 18.71 |
C30-20-5d-65 | 96.57 | 15.37 |
C30-20-7d-65 | 97.29 | 11.06 |
C30-20-5d-20 | 60.70 | 9.66 |
C30-20-5d-40 | 89.35 | 14.22 |
C30-20-5d-60 | 106.88 | 17.01 |
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Wen, B.; Gao, G.; Huang, D.; Zheng, H. Adhesion and Sliding Constitutive Relationship between Basalt–Polypropylene Hybrid Fiber-Reinforced Concrete and Steel Bars. Appl. Sci. 2023, 13, 12108. https://doi.org/10.3390/app132212108
Wen B, Gao G, Huang D, Zheng H. Adhesion and Sliding Constitutive Relationship between Basalt–Polypropylene Hybrid Fiber-Reinforced Concrete and Steel Bars. Applied Sciences. 2023; 13(22):12108. https://doi.org/10.3390/app132212108
Chicago/Turabian StyleWen, Bo, Guanyi Gao, Ding Huang, and Hongyu Zheng. 2023. "Adhesion and Sliding Constitutive Relationship between Basalt–Polypropylene Hybrid Fiber-Reinforced Concrete and Steel Bars" Applied Sciences 13, no. 22: 12108. https://doi.org/10.3390/app132212108
APA StyleWen, B., Gao, G., Huang, D., & Zheng, H. (2023). Adhesion and Sliding Constitutive Relationship between Basalt–Polypropylene Hybrid Fiber-Reinforced Concrete and Steel Bars. Applied Sciences, 13(22), 12108. https://doi.org/10.3390/app132212108