Prestress Transfer in NSM CFRP-Strengthened RC Structures Under Curing and Service Temperature Effects: Experimental Validation and Analytical Modeling
Abstract
1. Introduction
2. Experimental Program
2.1. Test Series and Materials Properties
2.2. Specimen Design and Preparation
2.3. Test Setup, Instrumentation and Procedures
3. Results
3.1. Effect of Curing Temperature on Tensile Strength and Elasticity
3.2. Effect of Test Temperature on Tensile Properties
3.3. Effect of Test Ambient Temperature on Shear Properties
4. Prestress Transmission Behavior
4.1. Analytical Approach
- (1)
- All materials behave in a linear elastic and isotropic manner, the strength of CFRP is only considered along the fiber direction;
- (2)
- Perfect bonding exists between the steel bars, CFRP, and surrounding concrete, with no relative slip;
- (3)
- The strain distribution in the concrete, longitudinal steel bars, and CFRP conforms to the plane section assumption.
4.2. Prestress Transmission Length
4.3. Prediction Results
4.4. Parametric Analysis
- (1)
- Material properties
- (2)
- CFRP cross-section and groove dimensions
- (3)
- Degree of adhesive curing
5. Conclusions
- (1)
- The curing time required for epoxy resin to achieve full strength exhibits an inverse exponential relationship with curing temperature. While epoxy performance remains relatively stable across a range of curing temperatures, only a minor reduction (less than 10%) is observed when the temperature exceeds 80 °C. In contrast, service temperature exerts a significant influence: both tensile and shear strengths of the epoxy decrease markedly as ambient temperature increases, with negligible tensile capacity observed above 80 °C.
- (2)
- Introducing the concept of effective bond stiffness enables accurate characterization of adhesive–concrete bonding performance and facilitates precise simulation of shear stress distribution at the CFRP–concrete interface under prestress. The proposed prestress reduction coefficient further extends the model’s applicability, enabling analysis of structures with varying prestress levels and gradually anchored prestressed strengthening systems.
- (3)
- Parametric analyses demonstrate that the elastic modulus of CFRP exerts the greatest influence on shear stress distribution, with prestress transfer length increasing proportionally with the modulus. For a constant strengthening ratio, CFRP sections with larger bonding areas provide superior interfacial performance, whereas increasing adhesive layer thickness reduces effective bond stiffness and diminishes the overall performance of the bonding interface.
- (4)
- The prestress transfer behavior under varying curing temperatures and durations is governed by changes in the adhesive’s elastic modulus. As curing temperature increases and curing time extends, the effective bond stiffness of the adhesive increases accordingly, while the degree of prestress transfer decreases, both following an exponential trend.
- (5)
- Based on the validated model and experimental data, the following concise design recommendations are proposed: limit service temperature to ≤60 °C (short-term exposure up to 80 °C is permissible only if prestress is reduced or a higher-Tg adhesive is employed); provide an adhesive layer thickness of at least 2 mm; ensure full cure (≥96 h at 20 °C or 22 h at 40 °C); limit prestress to 50% of the CFRP ultimate strength; and provide mechanical anchorage if higher prestress levels are required. Wide, thin rectangular NSM strips are recommended when the cross-sectional area is fixed.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Materials | Tensile Strength/MPa | Compressive Strength/MPa | Elongation/% | Elastic Modulus/GPa |
---|---|---|---|---|
CFRP strip | 2561.1 | - | 1.96 | 142.2 |
Epoxy resin | 31.9 | - | 1.47 | 11.2 |
C40 concrete | 41.9 | - | 33.5 | |
HRB400 steel bar | 540 | 442 | 16 | 201.9 |
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Gong, S.; He, P.; Wang, R.; Li, J.; Liu, J.; Su, M. Prestress Transfer in NSM CFRP-Strengthened RC Structures Under Curing and Service Temperature Effects: Experimental Validation and Analytical Modeling. Polymers 2025, 17, 2492. https://doi.org/10.3390/polym17182492
Gong S, He P, Wang R, Li J, Liu J, Su M. Prestress Transfer in NSM CFRP-Strengthened RC Structures Under Curing and Service Temperature Effects: Experimental Validation and Analytical Modeling. Polymers. 2025; 17(18):2492. https://doi.org/10.3390/polym17182492
Chicago/Turabian StyleGong, Shuang, Peiqi He, Ruogu Wang, Junjin Li, Jun Liu, and Miao Su. 2025. "Prestress Transfer in NSM CFRP-Strengthened RC Structures Under Curing and Service Temperature Effects: Experimental Validation and Analytical Modeling" Polymers 17, no. 18: 2492. https://doi.org/10.3390/polym17182492
APA StyleGong, S., He, P., Wang, R., Li, J., Liu, J., & Su, M. (2025). Prestress Transfer in NSM CFRP-Strengthened RC Structures Under Curing and Service Temperature Effects: Experimental Validation and Analytical Modeling. Polymers, 17(18), 2492. https://doi.org/10.3390/polym17182492