Numerical Modeling of Post-Tensioned Concrete Flat Slabs with Unbonded Tendons in Fire †
Abstract
1. Introduction
2. Numerical Modeling
2.1. Test Specimens
2.2. Numerical Model
3. Verification of FEM
3.1. Temperature Field
3.2. Structural Responses
4. Parametric Study Results and Discussions
4.1. Effects of Tendon Distribution
4.2. Effects of Level of Prestressing
4.3. Effects of Areas Exposed to Fire
4.4. Variations in Stresses of Tendons in the Same Profile
5. Conclusions
- The considered tendon distributions slightly influence the mid-span column strip deflection due to the concrete transient creep strain under fire.
- The prestressing level has a significant effect on the vertical deflections of the slabs under fire. Increasing the level increases the transient creep strain of concrete and the balanced load provided by prestressing tendons, further resulting in a decrease in deflections.
- The fire-exposed area of the slab soffit strongly affects the vertical deflections. Enlarging this area loosens the surrounding panel restraints on the central panel flexural deformation, increasing deflections.
- High initial tendon stresses cause the tendon to yield early in the fire, leading to a sudden stress drop and lower fire resistance of the slabs.
- Tendon stresses start to decline gradually from 300 °C and drop faster as the temperature climbs. Similar temperature field stress–time curves tend to merge into a common one.
- The dropping-stage tendon stresses can be estimated using the common curve when the temperature field and initial stresses are known, without accounting for slab deformation interactions.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Test Case | Tendon Distribution | Design Prestressing Level | Design Loading Ratio |
---|---|---|---|
Test-1 | Distributed–Distributed | 0.37 | 0.50 |
Test-2 | Banded–Distributed | 0.50 | 0.35 |
Test-3 | Distributed–Distributed | 0.50 | 0.50 |
Test-4 | Banded–Distributed | 0.50 | 0.35 |
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Wei, Y.; Fan, D.; Au, F.T.K. Numerical Modeling of Post-Tensioned Concrete Flat Slabs with Unbonded Tendons in Fire. Eng. Proc. 2025, 98, 31. https://doi.org/10.3390/engproc2025098031
Wei Y, Fan D, Au FTK. Numerical Modeling of Post-Tensioned Concrete Flat Slabs with Unbonded Tendons in Fire. Engineering Proceedings. 2025; 98(1):31. https://doi.org/10.3390/engproc2025098031
Chicago/Turabian StyleWei, Ya, Daoan Fan, and Francis T. K. Au. 2025. "Numerical Modeling of Post-Tensioned Concrete Flat Slabs with Unbonded Tendons in Fire" Engineering Proceedings 98, no. 1: 31. https://doi.org/10.3390/engproc2025098031
APA StyleWei, Y., Fan, D., & Au, F. T. K. (2025). Numerical Modeling of Post-Tensioned Concrete Flat Slabs with Unbonded Tendons in Fire. Engineering Proceedings, 98(1), 31. https://doi.org/10.3390/engproc2025098031