A Macroscale Modelling Approach for Nonlinear Analysis of Masonry Arch Bridges

B. Pantò, C. Chisari, L. Macorini, B. Izzuddin
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引用次数: 1

Abstract

. Masonry arches represent the most important structural components of masonry arch bridges. Their response is strongly affected by material nonlinearity which is associated with the masonry texture. For this reason, the use of mesoscale models, where units and mortar joints are individually represented, enables accurate response predictions under different loading conditions. However, these detailed models can be very computationally demanding and unsuitable for practical assessments of large structures. In this regard, the use of macro-models, based on simplified homogenised continuum representations for masonry, can be preferable as it leads to a drastic reduction of the computational burden. On the other hand, the latter modelling approach requires accurate calibration of the model parameters to correctly allow for masonry bond. In the present paper, a simplified macro-modelling strategy, particularly suitable for nonlinear analysis of multi-ring brick-masonry arches, is proposed and validated. A numerical calibration procedure, based on genetic algorithms, is used to evaluate the macro-model parameters from the results of meso- scale “virtual” tests. The proposed macroscale description and the calibration procedure are applied to simulate the nonlinear behaviour up to collapse of two multi-ring arches previously tested in laboratory and then to predict the response of masonry arches interacting with backfill material. The numerical results confirm the ability of the proposed modelling strategy for masonry arches to predict the actual nonlinear response and complex failure mechanisms, also induced by ring separation, with a reduced computational cost compared to detailed mesoscale models.
砌体拱桥非线性分析的宏观建模方法
。砌体拱是砌体拱桥最重要的结构构件。它们的响应受与砌体结构相关的材料非线性的强烈影响。出于这个原因,使用中尺度模型,其中单元和砂浆缝单独表示,可以准确预测不同载荷条件下的响应。然而,这些详细的模型在计算上要求很高,不适合大型结构的实际评估。在这方面,使用基于简化的均质连续体表示的宏观模型可以更好,因为它可以大大减少计算负担。另一方面,后一种建模方法需要精确校准模型参数,以正确考虑砌体粘结。本文提出并验证了一种简化的宏观建模策略,该策略特别适用于多环砖混结构拱的非线性分析。采用一种基于遗传算法的数值校准程序,从中尺度“虚拟”试验结果中评估宏观模型参数。将提出的宏观尺度描述和校正程序应用于模拟两个实验室试验的多环拱直至倒塌的非线性行为,然后预测砌体拱与回填材料相互作用的响应。数值结果证实了所提出的砌体拱模型策略能够预测实际的非线性响应和复杂的破坏机制(也包括环分离),与详细的中尺度模型相比,计算成本更低。
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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