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Numerical assessment of temperature effects on concrete failure behavior

机译:温度效应对混凝土失效行为的数值评估

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This work focuses on the evaluation of temperature effects on concrete failure behavior and modes by means of a realistic thermodynamically consistent non-local poroplastic constitutive model, previously developed by the authors, which is modified in this work. In this regard, two original contributions are presented and discussed. Firstly, and based on significant published experimental results related to this very complex aspect such as the effects of temperature in concrete failure, a temperature dependent non-associated flow rule is introduced to the poroplastic constitutive model to more accurately account for the temperature dependent inelastic volumetric behavior of concrete in post-peak regime. This is crucial for improving overall model accuracy, particularly regarding the temperature effects on concrete released energy during degradation processes. Secondly, and more importantly, the explicit solution of the localization condition in terms of the critical hardening modulus is developed regarding the non-local poroplastic constitutive model reformulated in this work, which allows the analysis of localized failure modes in the form of discontinuous bifurcation of quasi-brittle porous materials like concrete under different temperature, hydraulic and stress state scenarios. Also numerical procedures are followed, which also allow the evaluation of temperature effects on the critical directions for localized failure or cracking which is performed in this work for a wide spectrum of stress states and temperatures. Both, undrained and drained hydraulic conditions are evaluated. The results in this work demonstrate the soundness of the proposed constitutive model modifications and of the derived explicit solution for the critical hardening modulus to accurately predict the temperature effects on both, concrete volumetric behavior, and on the failure modes and related critical cracking direction. They also demonstrate that concrete failure mode and critical localization directions are highly sensitive to temperature, particularly in the compressive regime.
机译:这项工作侧重于通过现实的热力学一致的非局部孔塑料本构模型对混凝土故障行为和模式的评估,以前由作者开发,这在这项工作中被修改。在这方面,提出并讨论了两个原始贡献。首先,基于与这种非常复杂的方面相关的显着公开的实验结果,例如温度的效果在混凝土发生故障中,将温度依赖性无相关的流量规则引入散形本构模型,以更准确地占温度依赖性的内弹性体积后峰上制度中混凝土的行为。这对于提高整体模型精度至关重要,特别是关于在降解过程中对混凝土释放能量的温度效应。其次,更重要的是,在临界硬化模量方面的本地化条件的明确解开关于本工作中重新制定的非局部孔塑料本构模型,这允许以不连续分叉形式分析局部失效模式拟脆性多孔材料如混凝土在不同温度,液压和应力状态方案下。遵循数值手术,其还允许评估对本地化故障或开裂的临界方向的临界方向评估,这在该工作中进行了广泛的应力状态和温度。评估不介绍和排出的液压条件。这项工作中的结果证明了所提出的本构模型修改的声音和临界硬化模量的推导式显式解决方案,以准确地预测对两者,混凝土容积行为以及故障模式和相关临界裂缝方向的温度效应。它们还证明了混凝土故障模式和临界局部化方向对温度非常敏感,特别是在压缩制度中。

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