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Seismic Behavior of a Coupled Wall System with HPFRC Materials in Critical Regions

机译:HPFRC材料耦合壁系统在关键区域的抗震性能

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摘要

High-performance fiber-reinforced concrete (HPFRC) materials have a unique strain-hardening behavior in tension that translates into enhanced structural response, especially under reversed cyclic loading. Recent experimental research has shown that the use of HPFRC to replace regular concrete in components subjected to high cyclic deformation demands can lead to significant benefits, such as relaxation of detailing requirements and reduction in the amount of reinforcing steel. A structural system that is a good candidate to benefit from HPFRC is reinforced concrete coupled walls, where coupling beams and plastic hinge zones undergo large cyclic deformation demands during the design seismic event. This paper discusses the seismic performance of a prototype 18-story coupled-wall system in which the wall plastic hinge zones and the coupling beams are made of HPFRC materials instead of regular reinforced concrete. Computational simulation models are used to investigate system performance under various hazard levels, and system response is evaluated through various parameters including interstory drift, rotation, and distortion of critical structural parts. The simulation results show that the use of HPFRC in place of regular concrete leads to good overall seismic response with enhanced plastic hinging behavior in the wall piers and crack control in the coupling beams and piers.
机译:高性能纤维增强混凝土(HPFRC)材料在拉力方面具有独特的应变硬化行为,可转变为增强的结构响应,尤其是在反向循环载荷下。最近的实验研究表明,使用HPFRC替代承受高周期性变形要求的部件中的常规混凝土可以带来显着的好处,例如放宽详细的要求和减少钢筋的数量。可以从HPFRC中受益的结构系统是钢筋混凝土联结墙,在设计地震事件中,联结梁和塑料铰链区会承受较大的周期性变形要求。本文讨论了一个原型的18层耦合墙系统的抗震性能,该系统的壁面塑料铰链区和耦合梁由HPFRC材料代替常规的钢筋混凝土制成。计算仿真模型用于调查各种危险等级下的系统性能,并通过各种参数(包括层间漂移,旋转和关键结构部件的变形)评估系统响应。仿真结果表明,使用HPFRC代替常规混凝土可产生良好的整体地震响应,并增强了墙墩的塑性铰性能,并控制了连接梁和墩的裂缝。

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