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Stress-strain model for C-shape confined concrete masonry boundary elements of RM shear walls

机译:RM剪力墙C形承压混凝土砌体边界元的应力应变模型

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Reinforced masonry (RM) shear walls with boundary elements have been recently presented as a more ductile alternative to RM rectangular shear walls. Evaluating the complete (i.e. including the post-peak branch) compression stress-strain behavior of the confined and unconfined masonry is essential for predicting the seismic response of the RM walls with boundary elements. Recently, the authors investigated the effect of various volumetric ratios of transverse reinforcement, vertical reinforcement ratios, and grout strength on the axial stress-strain behavior of reinforced masonry boundary elements (RMBEs). However, all the specimens had a specific height to thickness ratio (i.e., AR = 5). This study presents the observed stress-strain relationship of seventeen half-scale fully grouted unreinforced and RMBE specimens, built using C-shape blocks, tested under concentric compression loading up to failure. Thus, quantifying the effect of various aspect (height to thickness) and confinement ratios on the RMBEs peak stress, strain corresponding to peak, and post-peak behavior. The results indicate that, as the hoop spacings and/or aspect ratio decreases, the peak stress and post-peak strains increase. Moreover, this study presents a stress-strain empirical model capable of predicting the RMBE stress-strain response by computing the confined and unconfined masonry stress-strain behavior. The model is calibrated using the experimental data of thirty-three RMBE specimens, tested in this study and literature. The proposed model presents an efficient tool that can be implemented in different analyticalumerical packages.
机译:近来已经提出了带有边界元件的增强砌体(RM)剪力墙,作为RM矩形剪力墙的一种更具延展性的替代方案。评估受限和无限制砌体的完整(即包括峰后分支)压缩应力-应变行为对于预测带有边界元素的RM墙的地震响应至关重要。最近,作者研究了横向配筋体积比,竖向配筋比例和灌浆强度对砌体边界单元(RMBEs)的轴向应力-应变行为的影响。但是,所有样品均具有特定的高度与厚度之比(即AR = 5)。这项研究提出了观察到的应力-应变关系,使用C型块建造的17个半比例的全灌浆未加固和RMBE标本在同心压缩荷载下进行了测试,直至破坏。因此,量化各个方面(高度到厚度)和约束比率对RMBE峰值应力,对应于峰值的应变以及峰后行为的影响。结果表明,随着环间距和/或纵横比的减小,峰值应力和峰后应变会增加。此外,本研究提出了一种应力-应变经验模型,该模型能够通过计算约束和无约束的砌体应力-应变行为来预测RMBE应力-应变响应。使用本研究和文献中测试的33个RMBE标本的实验数据对模型进行了校准。提出的模型提出了一种可以在不同的分析/数字软件包中实施的有效工具。

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