Fire Effect and Performance of Bridge Pylon Columns under Construction
Abstract
:1. Introduction
2. Fire Scenarios of Bridge Pylon during Construction
2.1. Fire Scenarios Assumption
2.2. Fire Scenario Simulation
2.2.1. Modeling Process and Parameters
2.2.2. Setting of Fire Sources
3. Analysis of Fire Simulation Result
3.1. HRR
3.2. Temperature and Flue Gas Distribution
3.3. Chimney Effect
3.4. Temperature Distribution
4. Thermal–Mechanical Coupling Analysis
4.1. Material Thermal Parameters
4.2. Modeling of Finite Element
5. Analysis of Thermal–Mechanical Coupling Results
5.1. Heat Transfer Analysis
5.2. Mechanical Behavior Analysis
5.2.1. Stress Field
5.2.2. Displacement Field
6. Conclusions
- In the same bridge pylon, the temperature is higher in internal fire scenarios. Additionally, internal fire conditions promote the generation of the chimney effect, and the temperature influence extends in the vertical direction.
- Along the vertical direction, a single negative exponential decline of temperature is observed in internal fires, while external fires exhibit a binomial negative exponential decline of temperature.
- The transfer of fire temperature occurs in the direction of column thickness. The column is subjected to destruction within a specific thickness range. The maximum thickness affected in this study is 200 mm, which renders the column susceptible to cracking.
- Under fire conditions, the column undergoes bending deformation in the inclined direction. The maximum deformation occurs at the top of the inclined inner side of the column. The bottom of the column experiences stress concentration points, with two stress concentration points in the SP and 1 in the MP, which are vulnerable to compression damage.
- By comparing the simulation results of models with and without considering the thermal expansion coefficient, it was observed that the thermal expansion coefficient significantly impacts the model results, leading to higher stress and deformation values. Therefore, incorporating the simulation of the thermal expansion coefficient is crucial for enhancing the safety of fire protection design.
7. Prospects
- A scaled test model will be established to delve into the fire phenomena occurring within the restricted spatial confines of the pylon columns, allowing for an in-depth analysis of the governing principles.
- By conducting simulations and manipulating the length of the pylon column, the crucial length threshold for extinguishing internal flames will be determined, thereby aiming to identify the critical value.
- Various configurations encompassing distinct positions, dimensions, and quantities of working holes will be established to investigate the fire impacts on bridge pylons featuring such apertures, thereby allowing for a comprehensive evaluation of their effects and implications.
- Fire sources with different materials and unit heat release rates are considered in bridge pylon fire simulation to obtain more conservative fire safety results.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Scenario | Types of Scenarios | Location of Fire Source | |
---|---|---|---|
I | 1 | Internal fire of SP | |
2 | Internal fire of MP | ||
II | 1 | External ring fire of SP | |
2 | External ring fire of MP | ||
III | 1 | External fire on one side of SP | |
2 | External fire on one side of MP |
Scenario | Number |
---|---|
I-1 | 248,460 |
I-2 | 256,000 |
II-1 | 246,000 |
II-2 | 256,000 |
III-1 | 89,800 |
III-2 | 88,700 |
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© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
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Li, Y.; Wang, Z.; Wang, C.; Zhang, Y.; Ma, H.; Liu, L. Fire Effect and Performance of Bridge Pylon Columns under Construction. Fire 2023, 6, 387. https://doi.org/10.3390/fire6100387
Li Y, Wang Z, Wang C, Zhang Y, Ma H, Liu L. Fire Effect and Performance of Bridge Pylon Columns under Construction. Fire. 2023; 6(10):387. https://doi.org/10.3390/fire6100387
Chicago/Turabian StyleLi, Yang, Zuocai Wang, Changjian Wang, Yin Zhang, Hongsheng Ma, and Lili Liu. 2023. "Fire Effect and Performance of Bridge Pylon Columns under Construction" Fire 6, no. 10: 387. https://doi.org/10.3390/fire6100387
APA StyleLi, Y., Wang, Z., Wang, C., Zhang, Y., Ma, H., & Liu, L. (2023). Fire Effect and Performance of Bridge Pylon Columns under Construction. Fire, 6(10), 387. https://doi.org/10.3390/fire6100387