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Simulation methodology for the assessment of the structural safety of concrete tunnel linings based on CFD fire - FE thermo-mechanical analysis: a case study

机译:基于CFD FIR-FE热力学分析评估混凝土隧道衬里结构安全性的仿真方法:案例研究

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This work aims to provide a comprehensive procedure for the assessment of structural safety of tunnel linings exposed to fire. To this purpose, numerical simulations that model the three fundamental features influencing tunnel fire safety design, namely fire dynamics, thermal behavior and structural response, are performed. Fire development within tunnel is simulated by applying advanced Computational Fluid Dynamics (CFD) techniques under a Fire Safety Engineering (FSE) approach. CFD fire simulation is carried out first, and then the results are transferred into a thermo-mechanical Finite Element (FE) model. A "sequentially coupled thermo-mechanical analysis" is then performed by linking a heat-transfer analysis that provides the temperature distribution within the lining with a refined non-linear mechanical simulation. A proper non-linear constitutive model for concrete subjected to high temperature, able to account the main features governing concrete behavior (i.e. cracking and crushing), is applied to the purpose. Comparisons in terms of structural results obtained by applying this coupled procedure and those obtained through a thermo-mechanical analysis adopting a standard time-dependent fire curve are provided. The importance of considering a refined simulation of the fire scenario is proved: from a structural point of view, significant differences concerning stress distribution and cracking development in the lining are indeed observed. Therefore, the use of a realistic model to describe fire development appears crucial to understand the behavior of unreinforced concrete linings subjected to fire and to control their possible weaknesses, such as the appearance of cracks.
机译:这项工作旨在为暴露于火灾的隧道衬里的结构安全提供综合课程。为此目的,进行数值模拟,用于模拟影响隧道防火设计的三个基本特征,即消防动力学,热行为和结构响应。通过在消防安全工程(FSE)方法下应用先进的计算流体动力学(CFD)技术来模拟隧道中的火灾开发。首先进行CFD火灾仿真,然后将结果转移到热机械有限元(Fe)模型中。然后通过将热转印分析连接在衬里内提供温度分布的传热分析来进行“顺序耦合的热机械分析”,其具有精制的非线性机械模拟。用于高温的混凝土的适当非线性本构型模型,能够考虑控制混凝土行为的主要特征(即破解和破碎),应用于目的。提供了通过应用该耦合程序获得的结构结果的比较,并通过采用标准时间依赖的火灾曲线获得的通过热机械分析获得的结构。考虑到对火灾情景的精致模拟的重要性是:从结构的角度来看,确实观察到衬里中的应力分布和开裂的显着差异。因此,使用逼真的模型来描述消防发育至关重要,了解经过火灾的未成用混凝土衬里的行为,并控制其可能的弱点,例如裂缝的外观。

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