Effect of Mechanical Interlocking Damage on Bond Durability of Ribbed and Sand-Coated GFRP Bars Embedded in Concrete Under Chloride Dry–Wet Exposure
Abstract
:1. Introduction
2. Experimental Setup
2.1. Design of Pull-Out Specimen
2.2. Chloride Dry–Wet Exposure Program
2.3. Pull-Out Loading Scheme
3. Experimental Results and Discussions
3.1. Failure Patterns and Test Results
3.2. Effects of Surface Textures
3.3. Effects of Bond Length
3.4. Effects of Chlorine Salt Erosion
4. Theoretical Modeling
4.1. Analytical Model for Bond Stress and Slip Behavior
4.2. Model Modification Under Chloride Exposure
4.3. Model Validation
5. Model’s Application
5.1. Analysis of Parametric Sensitivity
5.2. Long-Term Bond Performance Prediction
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Reference | Chloride Environment | FRP Bar | Prediction Model | ||
---|---|---|---|---|---|
Environment | Duration (Day) | Bond Length | Surface Texture | ||
Zhang et al. (2024) [5] | Dry–wet cycles | 360 | 5d | RB | |
Lu et al. (2023) [6] | Emersion | 180 | 5d | RB | Mathematical |
Nelson et al. (2024) [7] | / | / | / | / | Mathematical |
Shi et al. (2024) [8] | / | / | 5d/10d/15d | SM | Mathematical |
Zhou et al. (2024) [9] | / | / | 5d | SC/RB | Mathematical |
Chen et al. (2023) [10] | / | / | 5d | RB | / |
Hussain et al. (2022) [11] | Emersion | 90 | 5d/10d/15d | RB | / |
Yang et al. (2022) [12] | / | / | 3d/5d | RB | Mechanical |
Strength Grade | Water–Cement Ratio | Water | Cement | Sand | Stones |
---|---|---|---|---|---|
C40 | 0.49 | 220 | 449 | 615 | 1116 |
Group | Specimen | Surface Texture | Diameter | Bond Length | Chloride Duration |
---|---|---|---|---|---|
RG-5d | RG-5d-0 | Threaded ribbed | 12 mm | 5d | 0 months |
RG-5d-3 | Threaded ribbed | 12 mm | 5d | 3 months | |
RG-5d-6 | Threaded ribbed | 12 mm | 5d | 6 months | |
RG-5d-9 | Threaded ribbed | 12 mm | 5d | 9 months | |
RG-5d-12 | Threaded ribbed | 12 mm | 5d | 12 months | |
SG-5d | SG-5d-0 | Sand-coated | 12 mm | 5d | 0 months |
SG-5d-3 | Sand-coated | 12 mm | 5d | 3 months | |
SG-5d-6 | Sand-coated | 12 mm | 5d | 6 months | |
SG-5d-9 | Sand-coated | 12 mm | 5d | 9 months | |
SG-5d-12 | Sand-coated | 12 mm | 5d | 12 months | |
RG-7d | RG-7d-0 | Threaded ribbed | 12 mm | 7d | 0 months |
RG-7d-3 | Threaded ribbed | 12 mm | 7d | 3 months | |
RG-7d-6 | Threaded ribbed | 12 mm | 7d | 6 months | |
RG-7d-9 | Threaded ribbed | 12 mm | 7d | 9 months | |
RG-7d-12 | Threaded ribbed | 12 mm | 7d | 12 months |
Specimen | Failure Patterns | ||||
---|---|---|---|---|---|
Value/MPa | Rate/% | Value/mm | Rate/% | ||
RG-5d-0 | A | 36.8 | 100.0 | 5.8 | 100.0 |
RG-5d-3 | B | 31.9 | 86.7 | 8.1 | 139.7 |
RG-5d-6 | B | 28.1 | 76.4 | 6.2 | 106.9 |
RG-5d-9 | B | 25.4 | 69.0 | 5.1 | 87.9 |
RG-5d-12 | B | 21.3 | 57.9 | 8.6 | 148.3 |
SG-5d-0 | B | 21.7 | 100.0 | 4.7 | 100.0 |
SG-5d-3 | B | 19.8 | 91.2 | 4.2 | 89.4 |
SG-5d-6 | B | 18.6 | 85.7 | 6.6 | 140.4 |
SG-5d-9 | B | 14.3 | 65.9 | 4.0 | 85.1 |
SG-5d-12 | B | 13.5 | 62.2 | 4.9 | 104.3 |
RG-7d-0 | A | 29.0 | 100.0 | 10.7 | 100.0 |
RG-7d-3 | A | 25.6 | 88.3 | 11.9 | 111.2 |
RG-7d-6 | A | 22.2 | 76.6 | 10.4 | 97.2 |
RG-7d-9 | B | 21.4 | 73.8 | 7.6 | 71.0 |
RG-7d-12 | B | 18.5 | 63.8 | 6.8 | 63.6 |
Specimen | Failure Patterns | ||||||
---|---|---|---|---|---|---|---|
Rate | Average | Rate | Average | ||||
RG-5d-0 | A | 43.08 | 1.17 | 0.98 | 7.66 | 1.32 | 1.01 |
RG-5d-3 | B | 31.68 | 0.99 | 6.70 | 0.83 | ||
RG-5d-6 | B | 25.54 | 0.91 | 6.22 | 1.00 | ||
RG-5d-9 | B | 22.09 | 0.87 | 6.07 | 1.19 | ||
RG-5d-12 | B | 20.09 | 0.94 | 5.96 | 0.69 | ||
SG-5d-0 | B | 21.94 | 1.01 | 0.81 | 5.83 | 1.24 | 1.11 |
SG-5d-3 | B | 16.13 | 0.81 | 5.35 | 1.27 | ||
SG-5d-6 | B | 13.01 | 0.70 | 5.11 | 0.77 | ||
SG-5d-9 | B | 11.25 | 0.79 | 5.04 | 1.26 | ||
SG-5d-12 | B | 10.23 | 0.76 | 4.98 | 1.02 | ||
RG-7d-0 | A | 30.77 | 1.06 | 0.93 | 7.66 | 0.72 | 0.73 |
RG-7d-3 | A | 22.63 | 0.88 | 6.70 | 0.56 | ||
RG-7d-6 | A | 18.24 | 0.82 | 6.22 | 0.60 | ||
RG-7d-9 | B | 15.78 | 0.74 | 6.07 | 0.80 | ||
RG-7d-12 | B | 21.2 | 1.15 | 6.43 | 0.95 |
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Yang, Z.; Lu, C.; Yuan, S.; Ge, H. Effect of Mechanical Interlocking Damage on Bond Durability of Ribbed and Sand-Coated GFRP Bars Embedded in Concrete Under Chloride Dry–Wet Exposure. Polymers 2025, 17, 733. https://doi.org/10.3390/polym17060733
Yang Z, Lu C, Yuan S, Ge H. Effect of Mechanical Interlocking Damage on Bond Durability of Ribbed and Sand-Coated GFRP Bars Embedded in Concrete Under Chloride Dry–Wet Exposure. Polymers. 2025; 17(6):733. https://doi.org/10.3390/polym17060733
Chicago/Turabian StyleYang, Zhennan, Chunhua Lu, Siqi Yuan, and Hao Ge. 2025. "Effect of Mechanical Interlocking Damage on Bond Durability of Ribbed and Sand-Coated GFRP Bars Embedded in Concrete Under Chloride Dry–Wet Exposure" Polymers 17, no. 6: 733. https://doi.org/10.3390/polym17060733
APA StyleYang, Z., Lu, C., Yuan, S., & Ge, H. (2025). Effect of Mechanical Interlocking Damage on Bond Durability of Ribbed and Sand-Coated GFRP Bars Embedded in Concrete Under Chloride Dry–Wet Exposure. Polymers, 17(6), 733. https://doi.org/10.3390/polym17060733