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Seismic Collapse Assessment of Composite Plate Shear Walls

机译:复合板剪力墙的地震塌陷评估

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Collapse evaluation of composite plate shear walls (C-PSWs) under seismic loading requires a reliable analytical model that can accurately capture deterioration in the strength and stiffness of the system. In this study, research was carried out to develop a macromodeling approach for C-PSWs. Nonlinear time history analyses of six multistory (7-, 10-, and 13-story) C-PSWs (traditional and innovative) located in Western Canada were performed. It was observed that a significant portion of the story shear was resisted by the boundary members, while the RC panel resisted less than 10% of the total story shear. To estimate the seismic response parameters (i.e., ductility-related and overstrengthrelated force modification factors) for designing C-PSWs, incremental dynamic analysis (IDA) was performed for all archetypes following a standard procedure. It was observed that all archetypes provided significant safety margin against collapse (large collapse margin ratio). In addition, a sensitivity study was conducted and the effects of postyielding parameters (ductility capacity and postcapping stiffness) adopted for the deterioration model for infill plate and postcracking parameters (shear strain corresponding to maximum shear stress, yielding shear strain, and residual stress) adopted for the deterioration model for RC panel on seismic collapse capacities of traditional C-PSWs were investigated. It was observed that postyielding parameters for the steel infill plate can affect the seismic response of C-PSWs. On the other hand, variation of postcracking parameters for the concrete panel had a minor effect on seismic collapse capacity of the C-PSW system. DOI: 10.1061/(ASCE) ST.1943-541X.0002829. (c) 2020 American Society of Civil Engineers.
机译:地震载荷下复合板剪力墙(C-PSW)的崩溃评估需要可靠的分析模型,可以准确地捕获系统的强度和刚度的恶化。在这项研究中,进行了研究以开发C-PSW的大规模型方法。在加拿大西部的非线性时间历史分析六个多层(7-,10-和13层)的C-PSW(传统和创新)进行了。观察到,边界构件抵抗故事剪切的重要部分,而RC面板抵抗总故事剪切的少于10%。为了估计用于设计C-PSW的地震响应参数(即,延展性相关和延长体长化的力修改因子),对标准程序后的所有原型进行了增量动态分析(IDA)。据观察,所有原型都提供了显着的安全余量,防止崩溃(崩溃边缘比例大)。此外,进行了灵敏度研究,采用了对填充板和后触发参数的劣化模型采用的延迟参数(延展性容量和后置刚度)的影响(对应于最大剪切应力,产生剪切应变和残余应力)的剪切应变对于RC面板的劣化模型,研究了传统C-PSWS的地震塌陷能力。观察到钢制填充板的后野参数会影响C-PSW的地震反应。另一方面,混凝土面板的后粘接参数的变化对C-PSW系统的地震塌陷能力进行了轻微影响。 DOI:10.1061 /(asce)st.1943-541x.0002829。 (c)2020年美国土木工程师协会。

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