Experimental and Numerical Study of the Strength Performance of Deep Beams with Perforated Thin Mild Steel Plates as Shear Reinforcement
Abstract
:1. Introduction
2. Materials and Methods
2.1. Reinforcement Design
2.2. Specimen Description
2.3. Testing Setup
3. Experimental Results and Discussion
3.1. Load-Carrying Capacity
3.1.1. Effect of Perforated Hole Arrangement
3.1.2. Effect of TMS Plate Thickness
3.2. Load-Displacement Behaviour
3.2.1. Effect of Perforated Hole Arrangement
3.2.2. Effect of TMS Plate Thickness
3.3. Crack Pattern and Failure Mode
3.3.1. Early Stage and Intermediate Stage of FP and HP Series Specimens
3.3.2. Late Stage of FP Series Specimens
3.3.3. Late Stage of HP Series Specimens
3.3.4. Effect of Adopting TMS Plates on the Failure Mode
4. Numerical Analysis
4.1. Numerical Modelling
4.2. Numerical Results and Discussion
5. Conclusions
- The introduction of holes to the TMS plates produces a slight improvement in the load-carrying capacity compared with the control specimen and FP series specimens. This is because the perforated holes in the TMS plates allow the concrete matrix to pass through the inner core and sides of the concrete cover layers of the deep beam, which then promotes the formation of concrete tenons and better bonding of the perforated TMS plates to the concrete. However, the implementation of more than three columns of holes on the TMS plates decreases the load-carrying capacity in the deep beams, as the effective shear area in these TMS plates was reduced.
- Among the 1.5 mm, 2.0 mm, and 2.5 mm TMS plate thickness specimens, the specimens with 2.0 mm plate thickness can yield the highest load-carrying capacity and recorded the largest ultimate displacement across all the types of series, as the 2.0 mm thick plate provided adequate stiffness.
- The implementation of holes in the TMS plates on RC deep beams altered the failure mode that is commonly seen in conventional RC deep beams. The test results showed the development of gradual flexural cracks before the ultimate loading stage was reached, and diagonal tension cracks when approaching the ultimate loading stage. Compared with the FP series specimens, which showed sudden diagonal tension crack formation at the late stage of loading, the holes in the TMS plates from the HP series specimens showed a reduction in the progression rate of diagonal tension crack formation. This is attributed to the better bonding developed between the inner core and side concrete cover layers of the deep beam.
- All the developed numerical models were able to simulate progressive and ultimate tension crack patterns similar to those observed in the experimental tested specimens. Numerical load-displacement results for the thirteen specimens show a good correlation with the experimental results, with ±10% differences in the values recorded for each specimen. These numerical models can fulfill the needs of future optimization work on proposed deep beams without conducting expensive experimental work such as under the excitation of cyclic loading and fixed end support conditions.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Designated Name | Type of Shear Reinforcement | TMS Plate Thickness (mm) |
---|---|---|
CS | T8-150 as shear link | - |
FP-1.5 | TMS plate without holes | 1.5 |
FP-2.0 | 2.0 | |
FP-2.5 | 2.5 | |
HP3-1.5 | Perforated TMS plate with 3 columns of holes | 1.5 |
HP3-2.0 | 2.0 | |
HP3-2.5 | 2.5 | |
HP4-1.5 | Perforated TMS plate with 4 columns of holes | 1.5 |
HP4-2.0 | 2.0 | |
HP4-2.5 | 2.5 | |
HP5-1.5 | Perforated TMS plate with 5 columns of holes | 1.5 |
HP5-2.0 | 2.0 | |
HP5-2.5 | 2.5 |
Nominal Diameter (mm) | Yield Strength (MPa) | Ultimate Strength (MPa) |
---|---|---|
8 | 487.3 | 610.1 |
10 | 676.7 | 757.3 |
12 | 672.7 | 760.6 |
Plate Thickness (mm) | Yield Strength (MPa) | Ultimate Strength (MPa) |
---|---|---|
1.5 | 349.90 | 363.40 |
2.0 | 337.85 | 393.05 |
2.5 | 303.70 | 351.35 |
Specimen | Ultimate Load (kN) | Comparison with Specimen CS (%) | Mid-Span Deflection at Ultimate Load (mm) |
---|---|---|---|
CS | 240 | - | 7.27 |
FP-1.5 | 206 | −14.2% | 18.43 |
FP-2.0 | 225 | −6.3% | 18.39 |
FP-2.5 | 223 | −7.1% | 18.77 |
HP3-1.5 | 245 | +2.1% | 6.79 |
HP3-2.0 | 247 | +2.9% | 8.53 |
HP3-2.5 | 242 | +0.8% | 6.27 |
HP4-1.5 | 235 | −2.1% | 7.32 |
HP4-2.0 | 242 | +0.8% | 7.53 |
HP4-2.5 | 225 | −6.3% | 7.38 |
HP5-1.5 | 230 | −4.2% | 6.38 |
HP5-2.0 | 235 | −2.1% | 8.57 |
HP5-2.5 | 225 | −6.3% | 7.98 |
Parameter | Dilation Angle | Eccentricity | fb0/fc0 | K |
---|---|---|---|---|
Value | 38.5 | 0.1 | 1.16 | 0.667 |
Steel Type | Density (kg/m3) | Poisson’s Ratio, v | Modulus of Elasticity, E (kN/mm2) | Yield Stress (N/mm2) | Ultimate Stress (N/mm2) |
---|---|---|---|---|---|
High yield steel bar - 8 mm diameter | 7850 | 0.3 | 200,000 | 520 | 755 |
High yield steel bar - 10 mm diameter | 622 | 776 | |||
High yield steel bar - 12 mm diameter | 636 | 808 | |||
Mild steel plate | 28,556 | 284 | 350 |
Specimen | Experimental Ultimate Load (kN) | Numerical Ultimate Load (kN) | Numerical Result/ Experimental Result |
---|---|---|---|
CS | 240 | 237.7 | −1.0% |
FP-1.5 | 206 | 206.6 | +0.3% |
FP-2.0 | 225 | 228.1 | +1.4% |
FP-2.5 | 223 | 228.0 | +2.2% |
HP3-1.5 | 245 | 236.3 | −3.4% |
HP3-2.0 | 247 | 248.7 | +0.7% |
HP3-2.5 | 242 | 225.3 | −6.9% |
HP4-1.5 | 235 | 240.7 | +2.4% |
HP4-2.0 | 242 | 242.3 | +0.1% |
HP4-2.5 | 225 | 241.5 | +7.3% |
HP5-1.5 | 230 | 233.5 | +1.5% |
HP5-2.0 | 235 | 248.4 | +5.7% |
HP5-2.5 | 225 | 246.5 | +9.6% |
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Chai, K.F.; Woon, K.S.; Wong, J.K.; Lim, J.H.; Lee, F.W.; Lee, Y.L. Experimental and Numerical Study of the Strength Performance of Deep Beams with Perforated Thin Mild Steel Plates as Shear Reinforcement. Appl. Sci. 2023, 13, 8217. https://doi.org/10.3390/app13148217
Chai KF, Woon KS, Wong JK, Lim JH, Lee FW, Lee YL. Experimental and Numerical Study of the Strength Performance of Deep Beams with Perforated Thin Mild Steel Plates as Shear Reinforcement. Applied Sciences. 2023; 13(14):8217. https://doi.org/10.3390/app13148217
Chicago/Turabian StyleChai, Khem Fei, Kai Siong Woon, Jee Khai Wong, Jee Hock Lim, Foo Wei Lee, and Yee Ling Lee. 2023. "Experimental and Numerical Study of the Strength Performance of Deep Beams with Perforated Thin Mild Steel Plates as Shear Reinforcement" Applied Sciences 13, no. 14: 8217. https://doi.org/10.3390/app13148217
APA StyleChai, K. F., Woon, K. S., Wong, J. K., Lim, J. H., Lee, F. W., & Lee, Y. L. (2023). Experimental and Numerical Study of the Strength Performance of Deep Beams with Perforated Thin Mild Steel Plates as Shear Reinforcement. Applied Sciences, 13(14), 8217. https://doi.org/10.3390/app13148217