Low-Cycle Fatigue of FRP Strips Glued to a Quasi-Brittle Material
Abstract
:1. Introduction
2. Outline of the Numerical Model
2.1. Fundamental Assumptions
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- The cracking (debonding) process develops in pure “mode II” throughout the FRP-to-concrete interface;
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- The bond–slip law consists of a first linear-elastic branch followed by a softening one intended to simulate the effect of the debonding process;
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- An exponential expression is assumed for the post-elastic softening branch of the bond–slip law;
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- The concrete substrate is assumed to be behave as a rigid body.
2.2. Main Equations
2.3. Numerical Implementation and Experimental Validation
3. Parametric Analysis
3.1. Parametric Field
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- Fracture energy GF ranging between 0.6 and 1.0 N/mm;
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- Specific axial stiffness Eftf ranging between 60 and 140 kN/mm;
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- Bond length L ranging between 100 and 300 mm.
3.2. Definition of the Related Dependent Parameters
3.3. Typical Behavior of FRP-to-Concrete Joints
4. Discussion
5. Conclusions
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- As expected, the force amplitude ΔF controls the number of cycles leading to debonding in the analyzed systems: the relationship between the amplitude ratio 2ΔF/Fmon and the number of cycle reversals 2N is well-described by S-N curves that are close to straight segments in the usually adopted log-log plane;
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- Therefore, two parameters (the factor a and the exponent b) were determined for each series of numerical simulations carried out for given values of GF, Eftf and L and variable values of the ratio 2∆F/Fmon;
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- The results reported clearly show the essential role played by the bond length L, especially in the case of a “short” bond length, that is to say, values of L lower than the effective bond length leading to maximum strength under monotonic loads;
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- Far from being considered as the final study on this subject, the results give an idea of the actual order of magnitude of the parameters controlling the S-N curves and the correlation between them and the bond length.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Martinelli, E.; Caggiano, A. Low-Cycle Fatigue of FRP Strips Glued to a Quasi-Brittle Material. Materials 2021, 14, 7753. https://doi.org/10.3390/ma14247753
Martinelli E, Caggiano A. Low-Cycle Fatigue of FRP Strips Glued to a Quasi-Brittle Material. Materials. 2021; 14(24):7753. https://doi.org/10.3390/ma14247753
Chicago/Turabian StyleMartinelli, Enzo, and Antonio Caggiano. 2021. "Low-Cycle Fatigue of FRP Strips Glued to a Quasi-Brittle Material" Materials 14, no. 24: 7753. https://doi.org/10.3390/ma14247753
APA StyleMartinelli, E., & Caggiano, A. (2021). Low-Cycle Fatigue of FRP Strips Glued to a Quasi-Brittle Material. Materials, 14(24), 7753. https://doi.org/10.3390/ma14247753