Structural Response of Post-Tensioned Slabs Reinforced with Forta-Ferro and Conventional Shear Reinforcement under Impact Load
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.2. Design Calculations and Reinforcement
2.3. Slabs’ Supports and Impactor
2.4. Testing System
2.5. Forta-Ferro Properties
3. Results and Discussion
3.1. Displacements
3.2. Damping Factor
3.3. Impact Force
3.4. Shear Strength and Crack Pattern
4. Conclusions
- PT-C exhibited the largest displacement, while PT-FS had the least recorded displacement. PT-S showed higher displacement than PT-F.
- The highest damping ratio obtained was for PT-FS, followed by PT-F, PT-S, and PT-C.
- The ultimate impact force calculated was for PT-FS.
- PT-C underwent total failure with a punching cone formation and large spalling of concrete. PT-S and PT-F showed relatively acceptable damage. PT-FS had minimum damage with the formation of thin flexural cracks, indicating a change in the structural response from punching to flexural.
- Forta-Ferro fibers in the concrete slab contributed to enhanced ductility, controlled cracking, post-crack residual strength, and energy absorption. These factors collectively allow the fiber-reinforced slab to exhibit lower displacement and remain resilient, even when subjected to impact loads, compared to the slab without fibers. Slabs prone to impact hazards shall have high ductility and shall be more resilient to avoid catastrophic irreparable failures.
- Shear reinforcement enhanced the slab ductility yet was unable to control the cracking.
- The combination of Forta-Ferro and shear reinforcement resulted in the ultimate performance and resilience on PT slabs. PT-FS exhibited the best results with the lowest displacement, highest impact force, and greatest force-to-displacement ratio, indicating significant enhancement in toughness and stiffness for optimal impact resistance.
- The damping ratios of the four post-tensioned slabs (PT-FS, PT-F, PT-S, PT-C) when subjected to impact load provided valuable information about how different reinforcement techniques affect the structural performance of the slabs. The lower damping factor in the slab with fibers, combined with its ability to withstand the impact without collapsing, suggests that the Forta-Ferro fibers play a crucial role in improving the resilience and post-failure behavior of the concrete. The fibers contribute to controlled cracking, energy absorption, and maintaining structural integrity, all of which collectively lead to a more robust and durable structural response.
- The control slab PT-C experienced extensive damage and almost total failure due to an impact force exceeding its shear strength, with pronounced punching failure. Incorporating fibers and shear reinforcement in the other slabs significantly improved their behavior, shifting the failure mode from pure punching to a combination of shear and flexural failure in PT-F and PT-S and pure flexural in PT-FS, thereby enhancing overall structural performance and energy dissipation.
- The use of 0.4% of Forta-Ferro fibers is convenient to enhance the dynamic structural behavior of post-tensioned slabs.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Sensor Slab | ACC1 (1650 mm) | ACC2 (1195 mm) | ACC3 (650 mm) | ACC4 (1150 mm) |
---|---|---|---|---|
PT-C | ||||
PT-F | ||||
PT-S | ||||
PT-FS |
Property | Value |
---|---|
Specific gravity | 0.91 |
Density | 910 kg/m3 |
Tensile strength | 620 MPa |
Length | 54 mm |
Slab | Impact Load (kg) | Maximum Displacement (mm) | Impact Force (kN) | Shear Strength (kN) | Impact Force/Maximum Displacement (kN/mm) |
---|---|---|---|---|---|
PT-C | 600 | 130 | 622 | 605 | 4.72 |
PT-F | 600 | 82 | 580 | 605 | 7.07 |
PT-S | 600 | 57 | 831 | 1690 | 14.49 |
PT-FS | 600 | 40 | 1179 | 1690 | 29.04 |
Slab | Bottom Face (Tension) | Top Face (Compression) |
---|---|---|
PT-C | ||
PT-F | ||
PT-S | ||
PT-FS |
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Chaaban, S.; Temsah, Y.; Jahami, A.; Darwiche, M. Structural Response of Post-Tensioned Slabs Reinforced with Forta-Ferro and Conventional Shear Reinforcement under Impact Load. Fibers 2024, 12, 79. https://doi.org/10.3390/fib12100079
Chaaban S, Temsah Y, Jahami A, Darwiche M. Structural Response of Post-Tensioned Slabs Reinforced with Forta-Ferro and Conventional Shear Reinforcement under Impact Load. Fibers. 2024; 12(10):79. https://doi.org/10.3390/fib12100079
Chicago/Turabian StyleChaaban, Sandy, Yehya Temsah, Ali Jahami, and Mohamad Darwiche. 2024. "Structural Response of Post-Tensioned Slabs Reinforced with Forta-Ferro and Conventional Shear Reinforcement under Impact Load" Fibers 12, no. 10: 79. https://doi.org/10.3390/fib12100079
APA StyleChaaban, S., Temsah, Y., Jahami, A., & Darwiche, M. (2024). Structural Response of Post-Tensioned Slabs Reinforced with Forta-Ferro and Conventional Shear Reinforcement under Impact Load. Fibers, 12(10), 79. https://doi.org/10.3390/fib12100079