Generalized fragility curves for concrete columns exposed to fire through surrogate modelling

R. Chaudhary, Balša Jovanovi?, T. Gernay, R. V. Coile
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引用次数: 2

Abstract

, ABSTRACT Common structural fire design relies on recommendations from design codes, or (a single or small set of) more advanced numerical analyses. When applying such procedures to the design of structures under normal loading conditions, adequate safety is ensured through calibrated safety factors and ample experience with structural failures. This is however not the case when considering accidental fire loading, where the stochasticity in the structural fire behaviour is rarely fully acknowledged. Therefore, a significant interest in the use of probabilistic approaches to evaluate structural fire performance, which take into account the uncertainty associated with model parameters, can be observed among researchers, with a special focus on the development of fragility curves. The calculation of fragility curves is, however, a laborious task, demanding huge computational expense, mainly attributed to the adoption of advanced calculation procedures and the need for a large number of model evaluations. The present study contributes to addressing the limitations imposed by these computational requirements through the development of surrogate models for fire exposed structural members. To achieve this, a framework for carrying out probabilistic studies of structures under fire through the use of surrogate modelling is presented. The framework is applied to a concrete column subjected to a standard fire and proves efficiency and accurateness for the selected simple example. Future studies will investigate the applicability of the framework to structural assemblies under physically-based fires.
用代理模型计算火灾下混凝土柱的广义易损性曲线
常见的结构防火设计依赖于设计规范的建议,或者(单个或小组)更先进的数值分析。当将这些程序应用于正常载荷条件下的结构设计时,通过校准的安全系数和丰富的结构失效经验,确保了足够的安全性。然而,在考虑意外火灾荷载时,情况并非如此,在这种情况下,结构火灾行为的随机性很少得到充分承认。因此,考虑到模型参数的不确定性,研究人员对使用概率方法来评估结构火灾性能非常感兴趣,并特别关注易损性曲线的发展。然而,脆性曲线的计算是一项费力的工作,需要大量的计算费用,主要原因是采用了先进的计算程序,需要进行大量的模型评估。本研究通过开发火灾暴露结构构件的替代模型,有助于解决这些计算要求所带来的限制。为了实现这一目标,提出了一个框架,通过使用代理模型对火灾下的结构进行概率研究。将该框架应用于标准火灾下的混凝土柱,通过选取的简单实例验证了该框架的有效性和准确性。未来的研究将调查该框架在物理火灾下对结构组件的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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