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Application of stochastic numerical analyses in the assessment of spatially variable unreinforced masonry walls subjected to in-plane shear loading

机译:随机数值分析在面内剪切载的空间变量不合因的砌体壁评估中的应用

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This paper develops a modelling strategy for the finite element analysis of perforated (arched) unreinforced masonry walls subjected to in-plane shear loading. An experimental baseline was used to facilitate an accurate calibration and assessment of the chosen modelling strategy. This study provides the procedure and the results relevant to a stochastic assessment of unreinforced masonry shear walls. These results may be used in future studies of the reliability of these structures and may be applied in the calibration of reliability-based design practices. Utilising a two-dimensional micro-modelling approach, the capacity of a monotonic loading scheme to capture the envelope of a cyclically applied load was examined. It was found that, while the elastic stiffness of the laboratory specimens was overestimated by the finite element models, the peak load and global response was accurately recreated by the monotonically loaded models. Once the applicability of this procedure had been established, a series of spatially variable stochastic finite element analyses were created by considering the stochastic properties of key material parameters. These analyses were able to estimate the mean load resistance of the experimentally tested walls with a greater accuracy than a deterministic model. Furthermore, these analyses produced an accurate estimate of the variability of shear capacity of and the observed damage to the laboratory specimens. Due to the fact that the tested walls failed almost exclusively in a rocking mode, a failure mechanism highly dependent upon the structures? geometry, the variability of the peak strength was minimal. However, the observed damage and presence of some sliding and stepped cracking indicates that the proposed methodology is likely to capture more variable and unstable failure modes in shear walls with a smaller height to-length ratio or those more highly confined.
机译:本文开发了穿孔(拱形)未使用内砂浆壁的有限元分析的建模策略。使用实验基线促进精确的校准和评估所选择的建模策略。本研究提供了与未原始的砌体剪力墙随机评估相关的程序和结果。这些结果可用于未来的这些结构的可靠性研究,并且可以应用于基于可靠性的设计实践的校准。利用二维微型建模方法,检查了单调加载方案的容量捕获循环施加的载荷的包络。发现,虽然通过有限元模型高估了实验室标本的弹性刚度,但通过单调装载的模型精确地重新创建峰值负荷和全局响应。一旦建立了该程序的适用性,通过考虑关键材料参数的随机性能来创建一系列空间可变随机有限元分析。这些分析能够估计实验测试壁的平均载荷电阻,其精度高于确定性模型。此外,这些分析产生了准确估计对实验室标本的剪切能力的可变性和观察到的损坏。由于测试壁几乎完全在摇摆模式下失效,因此高度依赖于结构的故障机制?几何形状,峰值强度的可变性最小。然而,观察到的损坏和存在一些滑动和阶梯式裂缝表明,所提出的方法可能捕获具有较小高度的剪力墙中的更具变量和不稳定的故障模式,或者更高度限制。

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