Submitted:
06 August 2026
Posted:
07 August 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Experimental Program
2.1. Tested Specimens


| Beam No. | Designation | Strengthening Type | Groove Depth (mm) |
Groove Width (mm) |
Groove Spacing (mm) |
|---|---|---|---|---|---|
| RB1 | Control Beam | No strengthening | — | — | — |
| B2 | EB-1L-F | Single-layer fabric | — | — | — |
| B3 | OG-10D-1L-F | EBROG fabric | 10 | 5 | 70 |
| B4 | IG-10D-1L-F | EBRIG fabric | 15 | 5 | 70 |
| B5 | IG-15D-1L-F | EBRIG fabric | 10 | 5 | 70 |
| B6 | HS-D15-2LF&L | Double-layer hybrid | 15 | 5 | 70 |
| B7 | HS-D15-2LF&L (Anchored) | Double-layer hybrid (Anchored) | 15 | 5 | 70 |
2.2. Materials Properties
2.2.1. Concrete Mix Characteristics
2.2.2. Reinforcement Characterises
2.2.3. CFRP Materials
2.3. Fabrication of Tested RC Beams
2.3.1. Reinforcement Detailing

2.3.2. Beam Casting
2.3.3. Curing and Demolding
2.3.4. Surface Preparation and Grooving
2.3.5. CFRP Installation
2.4. Instrumentation
2.5. Test Procedure
3. Results and Discussion
RB1 Specimen
B2 Specimen
B4 and B5 Specimens
B6 and B7 Specimens
| Beam No. |
Designation | Groove Depth (mm) | Groove Width (m7m) |
Distance Between Grooves (mm) |
Ultimate Load (kN) |
Failure Mode |
|---|---|---|---|---|---|---|
| RB | Control Beam | – | – | – | 380.48 | Diagonal shear crack |
| B2 | EB-1L-F | – | – | – | 420 | Diagonal shear crack (delamination of fiber |
| B3 | OG-10D-1L-F | 10 | 5 | 70 | 423.23 | Shear Failure in Concrete (delamination of fiber |
| B4 | IG-10D-1L-F | 10 | 5 | 70 | 428 | Shear Crack (Rupture of fiber) |
| B5 | IG-15D-1L-F | 15 | 5 | 70 | 428.11 | CFRP rupture in shear (Rupture of fiber) |
| B6 | HS-D15-2LF&L | 15 | 5 | 70 | 438.08 | Shear Failure in Concrete (Separation of concrete cover) |
| B7 | HS-D15-2LF&L(Anchored) | 15 | 5 | 70 | 467.8 | Shear Failure in Concrete accompanied with delamination of CFRP and spalling of concrete under bonding area |
4. Conclusion
Author Contributions
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Teng, J. G.; Chen, J. F.; Smith, S. T.; Lam, L. FRP-strengthened RC structures; John Wiley & Sons, 2002. [Google Scholar]
- ACI Committee 440. ACI 440.2R-17; Guide for the Design and Construction of Externally Bonded FRP Systems for Strengthening Concrete Structures. American Concrete Institute, 2017.
- Rahimi, H.; Hutchinson, T. C. Concrete beams strengthened with externally bonded FRP plates. J. Compos. Constr. 2001, 5(1), 44–56. [Google Scholar] [CrossRef]
- Brena, S. F.; Bramblett, R. M.; Wood, S. L.; Kreger, M. E. Increasing shear capacity of RC beams using carbon fiber-reinforced polymer composites. ACI Struct. J. 2003, 100(1), 36–46. [Google Scholar] [CrossRef]
- Kim, Y. J.; Smith, S. T. Strengthening RC beams in shear with steel-reinforced polymer: Performance comparison with FRP and design considerations. Eng. Struct. 2008, 30(3), 617–626. [Google Scholar]
- Ueda, T.; Dai, J.; Sato, Y. Bond performance of FRP sheets bonded to concrete. In Proceedings of the 8th International Symposium on Fiber-Reinforced Polymer Reinforcement for Concrete Structures (FRPRCS-8), University of Patras, Greece, 2006. [Google Scholar]
- Chajes, M. J.; Januszka, T. F.; Mertz, D. R.; Thomson, T. A.; Finch, W. W. Shear strengthening of reinforced concrete beams using externally applied composite fabrics. ACI Struct. J. 1995, 92(3), 295–303. [Google Scholar] [CrossRef] [PubMed]
- Al-Saffar, M. D. T.; Shalaby, M. R.; Mahmoud, M. H. Debonding in RC beams shear strengthened with complete FRP wraps. ACI Struct. J. 2013, vol. 100(no. 1), 36–46. [Google Scholar]
- Teng, J. G.; Chen, J. F.; Smith, S. T.; Lam, L. FRP-strengthened RC structures; John Wiley & Sons, 2002. [Google Scholar]
- ACI Committee 440. ACI 440.2R-17; Guide for the Design and Construction of Externally Bonded FRP Systems for Strengthening Concrete Structures. American Concrete Institute, 2017.
- Rahimi, H.; Hutchinson, T. C. Concrete beams strengthened with externally bonded FRP plates. J. Compos. Constr. 2001, 5(1), 44–56. [Google Scholar] [CrossRef]
- Brena, S. F.; Bramblett, R. M.; Wood, S. L.; Kreger, M. E. Increasing shear capacity of RC beams using carbon fiber-reinforced polymer composites. ACI Struct. J. 2003, 100(1), 36–46. [Google Scholar] [CrossRef]
- Bilotta, A.; Ceroni, F.; Di Ludovico, M.; Nigro, E.; Pecce, M.; Manfredi, G. Bond efficiency of EBR and NSM FRP systems for strengthening concrete members. J. Compos. Constr. 2011, 15, 757–772. [Google Scholar] [CrossRef]
- Al-Abdwais, H.; Al-Mahaidi, R. Experimental and finite element analysis of flexural performance of RC beams retrofitted using near-surface mounted with CFRP composites and cement adhesive. Eng. Struct. 2021, 241, 112429. [Google Scholar] [CrossRef]
- Al-Abdwais, H.; Al-Mahaidi, R. Performance of reinforced concrete beams strengthened with NSM CFR Composites for flexure using cement-based adhesives. Struct. J. 2020, 27, 1446–1457. [Google Scholar] [CrossRef]
- Mostofinejad, D.; Shameli, S.M.; Hosseini, A. EBROG and EBRIG methods for strengthening of RC beams by FRP sheets. Eur. J. Environ. Civ. Eng. 2014, 18, 652–668. [Google Scholar] [CrossRef]
- Moshiri, N.; Tajmir-Riahi, A.; Mostofinejad, D.; Czaderski, C.; Motavalli, M. Experimental and analytical study on CFRP strips-to-concrete bonded joints using EBROG method. Compos. Part B Eng. 2019, 158, 437–447. [Google Scholar] [CrossRef]
- Tajmir-Riahi, A.; Moshiri, N.; Mostofinejad, D. Bond mechanism of EBROG method using a single groove to attach CFRP sheets on concrete. Constr. Build. Mater. 2019, 197, 693–704. [Google Scholar] [CrossRef]
- Khalifa, A.; Nanni, A. Rehabilitation of rectangular simply supported RC beams with shear deficiencies using CFRP composites. Constr. Build. Mater. 2000, 14(5), 239–248. [Google Scholar]
- Shomali, A.; Mostofinejad, D.; Esfahani, M.R. Experimental and numerical investigation of shear performance of RC beams strengthened with FRP using grooving method. J. Build. Eng. 2020, 31, 101409. [Google Scholar] [CrossRef]
- Mostofinejad, D.; Hosseini, S.A.; Razavi, S.B. Influence of different bonding and wrapping techniques on performance of beams strengthened in shear using CFRP reinforcement. Constr. Build. Mater. 2016, 116, 310–320. [Google Scholar] [CrossRef]
- Ueda, T.; Dai, J.; Sato, Y. Bond performance of FRP sheets bonded to concrete. In Proceedings of the 8th International Symposium on Fiber-Reinforced Polymer Reinforcement for Concrete Structures (FRPRCS-8), University of Patras, Greece, 2006. [Google Scholar]
- Kim, Y. J.; Smith, S. T. Strengthening RC beams in shear with steel-reinforced polymer: Performance comparison with FRP and design considerations. Eng. Struct. 2008, 30(3), 617–626. [Google Scholar]
- Chajes, M. J.; Januszka, T. F.; Mertz, D. R.; Thomson, T. A.; Finch, W. W. Shear strengthening of reinforced concrete beams using externally applied composite fabrics. ACI Struct. J. 1995, 92(3), 295–303. [Google Scholar] [CrossRef] [PubMed]
- Al-Saffar, M. D. T.; Shalaby, M. R.; Mahmoud, M. H. Debonding in RC beams shear strengthened with complete FRP wraps. ACI Struct. J. 2013, vol. 100(no. 1), 36–46. [Google Scholar]
- Mostofinejad, D.; Shameli, S.M. Externally bonded reinforcement in grooves (EBRIG) technique to postpone debonding of FRP sheets in strengthened concrete beams. Constr. Build. Mater. 2013, 38, 751–758. [Google Scholar] [CrossRef]
- Abdel-Kareem, A.H.; Elprince, M.; Makhlouf, M.H. Structural performance of RC beams with openings shear strengthened by hybrid techniques (EBR/EBRIG). Eur. J. Environ. Civ. Eng. 2024, 28, 1637–1657. [Google Scholar] [CrossRef]
- Al-Abdwais, A.; Al-Tamimi, K. Evaluation of bonding properties between CFRP laminate and concrete using externally bonded reinforcement on transverse grooves (EBROTG) method. J. Compos. Sci. 2024, 8, 488. [Google Scholar] [CrossRef]
- Al-Abdwais, A.; Al-Tamimi, K. Performance of Hybrid Strengthening System for Reinforced Concrete Member Using CFRP Composites Inside and over Transverse Groove Technique. Fibers 2025, 13(7), 93. [Google Scholar] [CrossRef]















| Property | Fabric CFRP | Laminate CFRP |
|---|---|---|
| Tensile strength (MPa) | 3500–4000 | 2800–3000 |
| Elastic modulus (GPa) | 230–240 | 165–210 |
| Thickness (mm) | 0.167 | 1.2–1.4 |
| Density (kg/m3) | 1800 | 1600 |
| Ultimate strain (%) | 1.5–1.7 | 1.3–1.5 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).