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Plastic analysis and performance-based design of coupled steel plate shear walls

机译:耦合钢板剪力墙的塑性分析和基于性能的设计

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The coupled steel plate shear wall (C-SPSW) configuration consisting of two SPSWs linked by coupling beams at the floor levels, in addition to providing architectural flexibility, has been shown to exhibit superior seismic performance. While the shear strength of the infill panels due to tension field action is the primary source of lateral load resistance in a C-SPSW, the moment resisting actions of the boundary frames and the coupling beams connections provide substantial strength for the system. As such, in order to achieve material-efficient designs, rational procedures are needed to explicitly account for this strength, while maintaining the desirable performance for various hazard levels. Similar to planar SPSWs, the C-SPSW systems have been designed using the conventional force-based design approach, which typically requires several iterations to optimize the design for performance and efficiency. This research employs the principles of plastic analysis to quantify the contribution of the frame action to the overall strength of C-SPSWs and adopts the philosophy of the performance-based plastic design (PBPD) methodology to develop procedures for the efficient seismic design of such systems. To investigate the effectiveness of the proposed design procedure, 8- and 12-story case study C-SPSWs were designed, and their numerical models were analyzed using pushover and response history analyses. The seismic performance of the prototypes were evaluated using two suits of ground motions representing 10/50 and 2/50 hazard levels. The analysis results indicated that the C-SPSWs designed using the proposed approach successfully met the desired performance objectives for both seismic hazard levels considered.
机译:已显示,由两个SPSW组成的耦合钢板剪力墙(C-SPSW)配置在地面水平上通过耦合梁链接,除了提供建筑灵活性外,还显示出卓越的抗震性能。尽管在C-SPSW中,由于张力场作用而引起的填充板的抗剪强度是横向荷载阻力的主要来源,但边界框架和连接梁连接的抗力矩作用为系统提供了相当大的强度。这样,为了实现材料有效的设计,需要合理的程序来明确说明这种强度,同时针对各种危险等级保持理想的性能。与平面SPSW相似,C-SPSW系统是使用常规的基于力的设计方法进行设计的,该方法通常需要进行多次迭代才能优化设计的性能和效率。这项研究采用塑性分析的原理来量化框架作用对C-SPSWs整体强度的贡献,并采用基于性能的塑性设计(PBPD)方法论的原理来开发此类系统的有效抗震设计程序。为了研究提出的设计程序的有效性,设计了8层和12层案例研究C-SPSW,并使用推覆和响应历史分析来分析其数值模型。使用两种代表10/50和2/50危险等级的地面运动对原型的抗震性能进行了评估。分析结果表明,使用所提出的方法设计的C-SPSW成功地满足了所考虑的两种地震危险等级的预期性能目标。

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