Experimental Study on Shear Strengthening of Reinforced Concrete Beams by Fabric-Reinforced Cementitious Matrix
Abstract
:1. Introduction
2. Experimental Scheme
2.1. Specimen Detail
2.2. FRCM Strengthening
2.3. Loading and Measurement
3. Experimental Results
3.1. Failure Mode and Crack Pattern
3.2. Load–Deflection Relationship
3.3. Shear Reinforcement Strain
3.4. Digital Image Correlation Analysis
4. Evaluation of Shear Capacity
4.1. Evaluation Model
4.2. Application of the Proposed Model
5. Conclusions
- (1)
- All the specimens failed with diagonal cracking within the shear span. The FRCM shear strengthening effect ranged from 14% to 65% in specimens without shear reinforcement. For the specimens with shear reinforcement, a shear strength improvement of 16% was confirmed in the FRCM-sided bond type; however, in the U-shaped strengthening specimen, it was difficult to confirm the strength improvement effect owing to the lack of bond capacity between the FRCM and concrete substrate, which caused the FRCM to fall off and the concrete to crush before the shear strength fully developed;
- (2)
- For the PUB specimen strengthened using the prefabricated FRCM panel, the load was not transferred from the concrete member to the FRCM panel, and the strengthening effect could not be confirmed because the FRCM panel detached from the member. Therefore, the strengthening method should be improved to secure the bond capacity so that the FRCM and concrete substrate can exhibit fully bonded behavior;
- (3)
- Based on the experimental data, the average shear strain data obtained through DIC displacement tracking were compared with the trend of the experimental data, and it was found that the shear stiffness tends to decrease after crack initiation, and FRCM strengthening can control the decrease in shear stiffness. In particular, U-shaped FRCM strengthening exhibited the best control of cracking and shear stiffness reduction;
- (4)
- Based on the DIC displacement data, longitudinal, vertical, and shear strains were derived, and the principal strain angle was calculated using the strain data. The principal strain angles of the FRCM-strengthened specimens were lower. The results of the comparison of the crack pattern and the calculated principal strain angle showed a similar trend overall but were quantitatively quite different. In addition, the contributions of shear and flexure to the vertical deflection were analyzed, and it was confirmed that the deflection contribution due to shear increased after shear cracking occurred;
- (5)
- A shear strength evaluation model for FRCM-strengthened RC beams was developed by applying the bond reduction factor, and the shear strengths of the specimens were evaluated to be 28–35% conservative. To apply the proposed model to the FRCM strengthening design, it is necessary to verify the strength evaluation model using more experimental data.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Concrete | Rebar | ||||
---|---|---|---|---|---|
(MPa) | (MPa) | Type | Modulus of Elasticity (GPa) | Yield Strength (MPa) | Ultimate Strength (MPa) |
36.84 | 2.18 | D10 | 200 | 483 | 621 |
D13 | 526 | 635 | |||
D19 | 557 | 701 |
Mortar | Fabric | |||||||
---|---|---|---|---|---|---|---|---|
Type | Compressive Strength (MPa) | Tensile Strength (MPa) | Type | Distance between Tows (mm) | Area (mm2) | Modulus of Elasticity (GPa) | Tensile Strength (MPa) | (%) |
C | - | - | Carbon | 20 | 0.838 | 184 | 1962 | 1.07 |
SB | 59.00 | 7.41 | ||||||
UB | 62.70 | 6.51 | ||||||
PUB | 41.58 | 5.86 |
Specimen | (kN) | (mm) | (kN) | (mm) | ) |
---|---|---|---|---|---|
C-NS | 93.3 | 4.04 | 93.3 | 4.04 | 0 |
SB-NS | 135.3 | 5.78 | 134.4 | 5.62 | 42 |
UB-NS | 153.8 | 8.14 | 112 | 4.96 | 60.5 |
PUB-NS | 106.1 | 4.40 | - | - | 12.8 |
C-S | 233.4 | 11.04 | 105 | 3.98 | 0 |
SB-S | 268.0 | 13.08 | 141 | 5.56 | 34.6 |
UB-S | 228.7 | 11.36 | 122.4 | 5.08 | −4.7 |
PUB-S | 227.5 | 10.82 | - | - | −5.9 |
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Jung, C.; Seo, Y.; Hong, J.; Heo, J.; Cho, H.-C.; Ju, H. Experimental Study on Shear Strengthening of Reinforced Concrete Beams by Fabric-Reinforced Cementitious Matrix. Materials 2024, 17, 4336. https://doi.org/10.3390/ma17174336
Jung C, Seo Y, Hong J, Heo J, Cho H-C, Ju H. Experimental Study on Shear Strengthening of Reinforced Concrete Beams by Fabric-Reinforced Cementitious Matrix. Materials. 2024; 17(17):4336. https://doi.org/10.3390/ma17174336
Chicago/Turabian StyleJung, Chanseo, Yujae Seo, Junseo Hong, Jinhyeong Heo, Hae-Chang Cho, and Hyunjin Ju. 2024. "Experimental Study on Shear Strengthening of Reinforced Concrete Beams by Fabric-Reinforced Cementitious Matrix" Materials 17, no. 17: 4336. https://doi.org/10.3390/ma17174336
APA StyleJung, C., Seo, Y., Hong, J., Heo, J., Cho, H.-C., & Ju, H. (2024). Experimental Study on Shear Strengthening of Reinforced Concrete Beams by Fabric-Reinforced Cementitious Matrix. Materials, 17(17), 4336. https://doi.org/10.3390/ma17174336