Fiber Reinforced Polymer Debonding Failure Identification Using Smart Materials in Strengthened T-Shaped Reinforced Concrete Beams
Abstract
:1. Introduction
2. Structural Health Monitoring and FRP Debonding Detection Technique
2.1. Electromechanical Impedance (EMI) Method
2.2. Description of the Wireless Impedance/Admittance Monitoring System (WiAMS)
3. Experimental Program
3.1. Description of Specimens
3.2. Strengthening Application Procedure
3.3. Materials
3.4. Experimental Setup and Instrumentation
4. Results
4.1. Experimental Response of the Beams
4.2. PZT Results
5. Conclusions
- The external application of FRP sheets as shear reinforcement on the web section of the beams (U-shape) increases their shear strength. However, premature debonding of FRP sheets is observed at small strain values. The FRP debonding failure has brittle nature resulting in abrupt reduction in the beams’ strength and eventually leads to its ultimate shear failure.
- The identification of FRP sheet debonding was successful, as evidenced by data collected from PZT sensors externally attached to the sheets’ surfaces. The experimental response of the specimens confirms the efficacy of the piezoelectric sensors in detecting debonding. Specifically, where a decline in strength is detected on the force-displacement diagrams of the specimens, a matching increase in the RMSD index of the sensors located close to the area of the sheet debonding is recorded.
- In addition to debonding detection, it appears that the proposed method employing piezoelectric sensors may also successfully locate its position. This is first verified visually by observing the specimen’s response during the experimental test, as shown in the related figures. The piezoelectric sensor positioned on the debonded sheet consistently displays the highest signal variation. Comparing the strain values acquired from the strain gauges with the data from the piezoelectric sensors is another indication of the ability to locate the debonding, since the strain gauges in the debonded sheet provide a sudden increase in strain that is proportionate with the significant variation in the signal of the nearest piezoelectric sensor.
- In the current investigation, reference specimens were used to determine the pattern of anticipated crack propagation regions and to ensure that the piezoelectric sensors were installed on the strengthened specimens in the most suitable locations to more accurately detect the debonding. It should be noted that the arrangement of the piezoelectric sensors has a significant impact on how accurately and effectively the presented approach can monitor the structural integrity. However, at the real-structure level, it is difficult to predict the location of the anticipated development of the damages. To achieve the best possible monitoring procedure without simultaneously necessitating the employment of a large number of sensors, additional experimental studies are required to assess the optimal arrangement network for piezoelectric sensors in real-world structures.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Zapris, A.G.; Naoum, M.C.; Kytinou, V.K.; Sapidis, G.M.; Chalioris, C.E. Fiber Reinforced Polymer Debonding Failure Identification Using Smart Materials in Strengthened T-Shaped Reinforced Concrete Beams. Polymers 2023, 15, 278. https://doi.org/10.3390/polym15020278
Zapris AG, Naoum MC, Kytinou VK, Sapidis GM, Chalioris CE. Fiber Reinforced Polymer Debonding Failure Identification Using Smart Materials in Strengthened T-Shaped Reinforced Concrete Beams. Polymers. 2023; 15(2):278. https://doi.org/10.3390/polym15020278
Chicago/Turabian StyleZapris, Adamantis G., Maria C. Naoum, Violetta K. Kytinou, George M. Sapidis, and Constantin E. Chalioris. 2023. "Fiber Reinforced Polymer Debonding Failure Identification Using Smart Materials in Strengthened T-Shaped Reinforced Concrete Beams" Polymers 15, no. 2: 278. https://doi.org/10.3390/polym15020278
APA StyleZapris, A. G., Naoum, M. C., Kytinou, V. K., Sapidis, G. M., & Chalioris, C. E. (2023). Fiber Reinforced Polymer Debonding Failure Identification Using Smart Materials in Strengthened T-Shaped Reinforced Concrete Beams. Polymers, 15(2), 278. https://doi.org/10.3390/polym15020278