Parametric Assessment of Composite Strengthening Efficiency in RC T-Beams Using Bonded Steel Wire Rope Systems
Abstract
1. Introduction
2. Summary of the Experimental Program
2.1. Specimen Geometry and Reinforcement Configuration
2.2. Strengthening Application Procedure
2.3. Test Setup and Instrumentation Layout
3. Finite Element Modeling Approach
3.1. Constitutive Models
3.1.1. Representation of Concrete Behavior
3.1.2. Modeling of Steel Materials
3.2. Geometric Modeling and Discretization
3.3. Boundary Conditions and Output Response Monitoring
4. Results and Discussion
4.1. Overview of Experimental Observations
4.2. Validation of the FE Model
4.2.1. Unstrengthened Control Beam (BC)
4.2.2. SWR-Strengthened Beam (BS)
4.3. Parametric Investigation
4.3.1. Effect of SWR Diameter
4.3.2. Effect of the Compressive Strength of Concrete
4.3.3. Effect of Bonding Material Strength
5. Structural Insights and Design Implications
6. Conclusions
- The incorporation of bonded SWRs significantly enhances the flexural capacity of RC T-beams, as evidenced by the increase in crack initiation, yielding, and ultimate load levels. Despite these improvements, the governing mechanism of failure is flexural for both the unstrengthened and the strengthened specimens.
- The FE model developed here demonstrates good predictive capability within the scope of the simplifying assumptions, including perfect bond conditions, smeared-crack modeling, and geometric symmetry. Although these simplifications ensure stable and efficient simulations, they may reduce the direct simulation of localized cracking and interface behavior.
- Increasing the SWR diameter had the most significant impact on flexural performance. The ultimate load was increased by a factor of up to 1.93 compared to that of the control beam, with corresponding improvements in stiffness (by a factor of up to 1.48) and energy dissipation (by a factor of 1.74). However, these gains were accompanied by a reduction in ductility, indicating that the size of the SWR primarily affected the strength and stiffness rather than the deformation capacity.
- The effect of the concrete compressive strength was moderate: increasing the value from 17.50 to 60 MPa resulted in improvements in the load capacity of up to 16% and stiffness gains of up to 21%, while the energy absorption increased only slightly. The effect on ductility was limited, particularly for strengthened beams.
- Variations in the strength of the bonding material had a minimal influence once adequate bond conditions had been achieved. Increasing the bond strength led to only marginal improvements in ultimate load and negligible changes in stiffness, indicating diminishing returns beyond a threshold level.
- Across all parameters, improvements in strength and stiffness were consistently associated with reduced ductility in the strengthened beams. This highlights an inherent trade-off between deformation capability and load-carrying capacity that must be considered in performance-based design.
- Crack patterns varied with strengthening parameters. Larger SWR diameters and higher concrete strength promoted crack localization, while smaller diameters and lower strength led to distributed cracking. Bonding strength had minimal influence once an adequate bond was achieved, with all cases showing flexure-dominated failure.
- Although these findings confirm the effectiveness of SWR strengthening under monotonic loading, the conclusions are limited to the parameter ranges investigated here. Further studies incorporating cyclic loading and bond–slip behavior are recommended to support a broader range of practical applications.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| RC | Reinforced concrete |
| SWR | Steel wire rope |
| FRP | Fiber-reinforced polymer |
| CFRP | Carbon fiber-reinforced polymer |
| NSM | Near-surface mounted |
| HSC | High-strength concrete |
| FE | Finite element |
| LVDTs | Linear variable differential transformers |
| ATENA | Advanced Tool for Engineering Nonlinear Analysis |
| NMSE | Normalized Mean Squared Error |
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| Property | Formula | Value | |
|---|---|---|---|
| Concrete | Mortar | ||
| Compressive strength [48], (MPa) | Test result | 32.40 | 49.85 |
| Tensile strength [53], (MPa) | 2.44 | 3.25 | |
| Elastic modulus [53], (MPa) | 31,294.03 | 36,907.28 | |
| Poisson’s ratio [53], | N/A | 0.2 | 0.25 |
| Critical compressive displacement [53], (m) | N/A | −0.0005 | −0.0005 |
| Specific fracture energy [53], (N/m) | 61.00 | 81.25 | |
| Shear retention factor | N/A | Variable | Variable |
| Material | Section | fy (f1) (MPa) | εy (ε1) (%) | f2, ε2 (MPa, %) | f3, ε3 (MPa, %) | f4, ε4 (MPa, %) | f5, ε5 (MPa, %) | fu (f6) (MPa) | εu (ε6) (%) | E (MPa) |
|---|---|---|---|---|---|---|---|---|---|---|
| Steel reinforcement | Ø8 | 373.85 | 0.185 | - | - | - | - | 525.33 | 20.91 | 201,624 |
| Steel reinforcement | Ø12 | 394.60 | 0.211 | 420.90, 0.454 | 526.13, 2.454 | 552.43, 7.272 | 594.52, 9.090 | 614.26 | 14.55 | 187,596 |
| Steel reinforcement | Ø13 | 479.71 | 0.243 | 496.56, 2.345 | 509.29, 7.272 | 617.52, 9.090 | 719.38, 16.363 | 742.52 | 24.55 | 197,664 |
| Steel wire rope | Ø10 | - | - | - | - | - | - | 743.73 | 2.85 | 35,725 |
| Flexural Characteristics | Data Observation | Ratio | |
|---|---|---|---|
| Test Results [48] | FE Simulation | ||
| Ultimate load (kN) | 111.80 | 100.93 | 0.90 |
| Deflection (mm) | 40.23 | 40.00 | 0.99 |
| Stiffness (kN/mm) | 15.01 | 13.02 | 0.87 |
| Ductility index | 5.40 | 5.18 | 0.96 |
| Energy absorption (kN·mm) | 3739.60 | 3594.11 | 0.96 |
| Flexural Characteristics | Data Observation | Ratio | |
|---|---|---|---|
| Test Results [48] | FE Simulation | ||
| Ultimate load (kN) | 192.80 | 184.42 | 0.96 |
| Deflection (mm) | 41.64 | 41.00 | 0.98 |
| Stiffness (kN/mm) | 24.04 | 18.84 | 0.78 |
| Ductility index | 5.19 | 4.19 | 0.81 |
| Energy absorption (kN·mm) | 5773.23 | 5946.08 | 1.03 |
| Beam Model | SWR Diameter (mm) | Flexural Characteristics | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Ultimate Load (kN) | Stiffness (kN/mm) | Ductility Index | Energy Absorption (kN·mm) | ||||||
| Value | Ratio | Value | Ratio | Value | Ratio | Value | Ratio | ||
| BC | - | 100.93 | - | 13.02 | - | 5.18 | - | 3594.11 | - |
| BS-08 | 8 | 167.40 | 1.66 | 18.96 | 1.46 | 4.62 | 0.89 | 5611.01 | 1.56 |
| BS-10 | 10 | 184.42 | 1.83 | 18.84 | 1.45 | 4.19 | 0.81 | 5946.08 | 1.65 |
| BS-12 | 12 | 194.82 | 1.93 | 19.33 | 1.48 | 4.14 | 0.80 | 6250.28 | 1.74 |
| Beam Model | Concrete Compressive Strength (MPa) | Flexural Characteristics | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Ultimate Load (kN) | Stiffness (kN/mm) | Ductility Index | Energy Absorption (kN·mm) | ||||||
| Value | Ratio | Value | Ratio | Value | Ratio | Value | Ratio | ||
| BC-L | 17.50 | 94.40 | - | 11.80 | - | 4.87 | - | 3440.74 | - |
| BC-B | 32.40 | 100.93 | - | 13.02 | - | 5.18 | - | 3594.11 | - |
| BC-H | 60.00 | 106.97 | - | 14.27 | - | 5.41 | - | 3705.10 | - |
| BS-L | 17.50 | 169.08 | 1.79 | 17.42 | 1.48 | 4.21 | 0.87 | 5585.58 | 1.62 |
| BS-B | 32.40 | 184.42 | 1.83 | 18.84 | 1.45 | 4.19 | 0.81 | 5946.08 | 1.65 |
| BS-H | 60.00 | 195.53 | 1.83 | 19.92 | 1.40 | 4.18 | 0.77 | 6231.77 | 1.68 |
| Beam Model | Bonding Material Strength (MPa) | Flexural Characteristics | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Ultimate Load (kN) | Stiffness (kN/mm) | Ductility Index | Energy Absorption (kN·mm) | ||||||
| Value | Ratio | Value | Ratio | Value | Ratio | Value | Ratio | ||
| BC | - | 100.93 | - | 13.02 | - | 5.18 | - | 3594.11 | - |
| BS-M35 | 35.00 | 180.84 | 1.79 | 18.99 | 1.46 | 4.31 | 0.83 | 5918.77 | 1.65 |
| BS-M50 | 49.85 | 184.42 | 1.83 | 18.84 | 1.45 | 4.19 | 0.81 | 5946.08 | 1.65 |
| BS-M65 | 65.00 | 185.38 | 1.84 | 18.90 | 1.45 | 4.18 | 0.81 | 5965.17 | 1.66 |
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Atmajayanti, A.T.; Haryanto, Y.; Hu, H.-T.; Hsiao, F.-P.; Sudibyo, G.H.; Nugroho, P.S.; Nugroho, L.; Baskara, N.A. Parametric Assessment of Composite Strengthening Efficiency in RC T-Beams Using Bonded Steel Wire Rope Systems. J. Compos. Sci. 2026, 10, 263. https://doi.org/10.3390/jcs10050263
Atmajayanti AT, Haryanto Y, Hu H-T, Hsiao F-P, Sudibyo GH, Nugroho PS, Nugroho L, Baskara NA. Parametric Assessment of Composite Strengthening Efficiency in RC T-Beams Using Bonded Steel Wire Rope Systems. Journal of Composites Science. 2026; 10(5):263. https://doi.org/10.3390/jcs10050263
Chicago/Turabian StyleAtmajayanti, Anggun Tri, Yanuar Haryanto, Hsuan-Teh Hu, Fu-Pei Hsiao, Gathot Heri Sudibyo, Paulus Setyo Nugroho, Laurencius Nugroho, and Nicolas Arya Baskara. 2026. "Parametric Assessment of Composite Strengthening Efficiency in RC T-Beams Using Bonded Steel Wire Rope Systems" Journal of Composites Science 10, no. 5: 263. https://doi.org/10.3390/jcs10050263
APA StyleAtmajayanti, A. T., Haryanto, Y., Hu, H.-T., Hsiao, F.-P., Sudibyo, G. H., Nugroho, P. S., Nugroho, L., & Baskara, N. A. (2026). Parametric Assessment of Composite Strengthening Efficiency in RC T-Beams Using Bonded Steel Wire Rope Systems. Journal of Composites Science, 10(5), 263. https://doi.org/10.3390/jcs10050263

