Measuring Three-Dimensional Temperature Distributions in Steel–Concrete Composite Slabs Subjected to Fire Using Distributed Fiber Optic Sensors
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimens and Material Properties
- Each end of the two parallel steel beams was connected by a perpendicular, welded rectangular steel tube so that the beams maintained their position during fabrication.
- A 1219 mm × 914 mm rectangular wood formwork was prepared.
- The trapezoidal metal decking was laid on top of the beams inside the formwork.
- The headed studs were welded through the metal decking to the steel beams (Figure 1).
- The welded wire mesh was supported by plastic chairs 8 mm above the metal decking.
- Optical fibers and thermocouples were deployed as detailed in Section 2.
- Concrete was poured into the formwork. Concrete placement using a hand trowel as well as placement directly from the chute on the concrete truck was used.
- The sides of the formwork were tapped using a rubber mallet to consolidate concrete at the edges; no mechanical vibrators were used.
- The cast specimen was covered under wet burlap and a plastic sheet, demolded after 1 day, and cured at room temperature (22 °C ± 3 °C).
2.2. Instrumentation
2.3. Test Setup
2.4. Fire Testing Protocol
3. Results and Discussion
3.1. Observations
3.2. DFOS Temperature Measurements
3.3. Discussion
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Designation | Age at Testing (days) | Internal Relative Humidity before Test | Number of Studs | Distributed Sensors | Thermocouples |
---|---|---|---|---|---|
CS-1 | 33 | 94.3% | 6 | DFOS-1 to DFOS-3 | TC1 to TC6 |
CS-2 | 34 | 93.5% | 6 | DFOS-1 to DFOS-3 | TC1 to TC6 |
CS-3 | 35 | 95.0% | 4 | DFOS-1 to DFOS-3 | TC1 to TC6 |
CS-4 | 36 | 95.2% | 4 | DFOS-1 to DFOS-3 | TC1 to TC6 |
CS-5 | 350 | 77.7% | 4 | DFOS-1 to DFOS-4 | TC1 to TC6; ST1 * to ST9 |
CS-6 | 351 | 78.6% | 6 | DFOS-1 to DFOS-4 | TC1 to TC6; ST1 to ST9 |
Steel Used in the Specimens | ASTM Material Standards | Tensile Yield Strength (MPa) | Ultimate Strength (MPa) | Modulus of Elasticity (GPa) | Testing Standard |
---|---|---|---|---|---|
Beams | A992 (structural steel) | 345 | 450 | 200 | [28] |
Headed studs | A108 (cold drawn) | 414 | 496 | 205 | [29] |
Welded wire mesh | A185 Grade 65 | 448 | 517 | 200 | [30] |
Galvanized metal decking | A611 Grade D (cold rolled) | 276 | 359 | 203 | [31] |
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Bao, Y.; Hoehler, M.S.; Smith, C.M.; Bundy, M.; Chen, G. Measuring Three-Dimensional Temperature Distributions in Steel–Concrete Composite Slabs Subjected to Fire Using Distributed Fiber Optic Sensors. Sensors 2020, 20, 5518. https://doi.org/10.3390/s20195518
Bao Y, Hoehler MS, Smith CM, Bundy M, Chen G. Measuring Three-Dimensional Temperature Distributions in Steel–Concrete Composite Slabs Subjected to Fire Using Distributed Fiber Optic Sensors. Sensors. 2020; 20(19):5518. https://doi.org/10.3390/s20195518
Chicago/Turabian StyleBao, Yi, Matthew S. Hoehler, Christopher M. Smith, Matthew Bundy, and Genda Chen. 2020. "Measuring Three-Dimensional Temperature Distributions in Steel–Concrete Composite Slabs Subjected to Fire Using Distributed Fiber Optic Sensors" Sensors 20, no. 19: 5518. https://doi.org/10.3390/s20195518
APA StyleBao, Y., Hoehler, M. S., Smith, C. M., Bundy, M., & Chen, G. (2020). Measuring Three-Dimensional Temperature Distributions in Steel–Concrete Composite Slabs Subjected to Fire Using Distributed Fiber Optic Sensors. Sensors, 20(19), 5518. https://doi.org/10.3390/s20195518