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Simplified mechanics-based approach for modeling of flexurally dominated reinforced masonry structural wall systems subjected to lateral load

机译:基于力学的简化方法对受侧向荷载作用的受弯支配筋砌体结构墙系统进行建模

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This paper presents a simplified analytical approach for modeling the behavior of both individual reinforced masonry structural walls (RMSWs) (component level) and systems of RMSWs as the main lateral load resistance system (LLRS) (system level) under lateral loading. Analytical modeling of individual RMSWs, with different end configurations (rectangular, flanged & end-confined), was achieved by generating the load-displacement relationships for these walls based on simple mechanics and accounting for plastic hinging. Knowing that plastic hinging is concentrated at the base of cantilever structural wall, its value was estimated based on experimental results and plasticity theory, taking into consideration the effect of strain penetration inside concrete foundation, inclined flexural-shear cracking and variation of curvature profile following yielding. Also, analytical modeling of a system of RMSWs may be conducted and the displacement of each wall can be calculated by simple geometrical relations, if the displacement of the center of mass (CM) and the rotation angle of the building are known. Results of some experimental tests were used to verify the results of the developed analytical models for individual RMSWs. The maximum error obtained in all models at maximum load, deformation at maximum load and deformation at 80% strength degradation, compared to experimental results, were 8.05%, 8.55% and 9.87% respectively. A third-scale building composed of several RMSWs as its main LLRS was used to verify the developed analytical algorithm for a system of RMSWs and the results showed that the value of building resistance was lower than the average value between push and pull cycles from experimental results by 7.38%. The analytical algorithms developed for both individual RMSWs and systems of RMSWs throughout this study were simply relying on analytical application program. As a result, better understanding of the behavior of systems of RMSWs when subjected to seismic loads can be achieved. The factors affecting the accuracy of the developed modeling technique are presented and discussed in this paper. Recommendations for problems faced through developing this modeling technique and the governing factors are presented throughout this study. Based on the analytical verification presented, a parametric study was carried out to investigate the effect of different parameters as lateral load eccentricity, torsional effects, and presence of walls orthogonal to the loading direction.
机译:本文提出了一种简化的分析方法,用于对单个加筋砌体结构墙(RMSWs)(组件级)和RMSWs系统作为侧向荷载作用下的主要侧向荷载抵抗系统(LLRS)(系统级)的行为进行建模。通过基于简单的力学并考虑塑性铰的作用为这些墙生成载荷-位移关系,可以对具有不同端部配置(矩形,法兰和端部限制)的单个RMSW进行分析建模。考虑到塑性铰集中在悬臂结构墙的底部,根据实验结果和可塑性理论,考虑了混凝土基础内部的应变渗透,倾斜的弯曲剪切裂缝以及屈服后曲率轮廓变化的影响,估计了塑性铰的值。 。同样,如果已知质心(CM)的位移和建筑物的旋转角度,则可以对RMSW的系统进行分析建模,并可以通过简单的几何关系来计算每面墙的位移。一些实验测试的结果用于验证针对单个RMSW的已开发分析模型的结果。与实验结果相比,所有模型在最大载荷,最大载荷下的变形和强度降低80%时的变形中获得的最大误差分别为8.05%,8.55%和9.87%。使用由几个RMSW作为其主要LLRS的三层建筑物来验证针对RMSW系统开发的解析算法,结果表明,根据实验结果,建筑物阻力的值低于推拉循环之间的平均值减少了7.38%。在整个研究中,为单个RMSW和RMSW系统开发的分析算法仅依赖于分析应用程序。结果,可以更好地理解RMSW的系统在遭受地震载荷时的行为。本文介绍并讨论了影响已开发建模技术准确性的因素。在整个研究过程中,针对通过开发此建模技术所面临的问题和控制因素提出了建议。在提出的分析验证的基础上,进行了参数研究,以研究不同参数的影响,例如横向载荷偏心率,扭转效应以及与载荷方向正交的墙的存在。

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