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Surrogate Model-Driven Estimation of Adiabatic Surface Temperature of Fire Exposed Suspension Bridge Towers

  • 16-08-2024
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Abstract

The structural integrity of bridges under fire conditions is a pressing concern in civil engineering due to the frequent occurrence of bridge failures caused by fires. While current design practices do not extensively consider fire loads, several studies have shown the limitations of existing fire curves in predicting bridge failure times. This article introduces a surrogate model-driven approach using machine learning to estimate the adiabatic surface temperature (AST) of suspension bridge towers exposed to fire. The research focuses on the Bosphorus suspension bridge, employing FDS simulations to generate detailed fire behavior data. The study then uses a random forest algorithm to create a surrogate model that predicts AST with high accuracy, significantly reducing computational time. The model is validated through cross-validation and comparisons with other machine learning models, demonstrating its superior performance. This innovative approach promises to revolutionize fire safety evaluations for suspension bridges, offering a more efficient and reliable method for assessing structural responses to fire.

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Title
Surrogate Model-Driven Estimation of Adiabatic Surface Temperature of Fire Exposed Suspension Bridge Towers
Authors
Sara Mostofi
Ahmet Can Altunişik
Publication date
16-08-2024
Publisher
Springer US
Published in
Fire Technology / Issue 2/2025
Print ISSN: 0015-2684
Electronic ISSN: 1572-8099
DOI
https://doi.org/10.1007/s10694-024-01628-3
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