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Cyclic Performance of a Lightweight Rapidly Constructible and Reconfigurable Modular Steel Floor Diaphragm

机译:轻量级快速结构和可重新配置的模块化钢地板隔膜的循环性能

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One approach to making modern structures more economically and environmentally sustainable is designing and constructing them to be adaptable to rapidly changing markets and building occupancies. At the same time, these structures are required to be resilient to seismic events. As a step towards meeting these goals, a lightweight, two-way, rapidly constructible and reconfigurable modular steel floor (RCRMSF) system has been developed. The system is fabricated from light-gauge steel plates sandwiching a grillage of orthogonally arranged cold formed Z-purlins, can span 9.1 m x 12.2 m, requires only girder supports, and fits within current steel construction framework. This study investigates the seismic behavior of the RCRMSF diaphragm through the use of high fidelity nonlinear finite element (FE) models. Six full-scale cantilever diaphragm models have been developed to study the effect of varying RCRMSF configurations and end support details. Both monotonic and cyclic loading protocols are used to determine the stiffness, strength, energy dissipation capacity, and general hysteretic behavior of the diaphragms. Based on the FE models, the behavior of the RCRMSF diaphragm is influenced primarily by the plate thickness and perimeter connection detail to the supporting steel frame. Overall, the RCRMSF has adequate diaphragm stiffness and strength, and shows favorable energy dissipation capacity due to its post-peak inelastic behavior. This observation implies that the RCRMSF can serve as an alternative solution to current seismic design and construction practices.
机译:一种制造现代结构更具经济和环境可持续的方法正在设计和构建它们适应迅速不断变化的市场和建筑物占用。同时,这些结构需要适应地震事件。作为满足这些目标的一步,已经开发了轻量级,双向,快速结构和可重新配置的模块化钢地板(RCRMSF)系统。该系统由夹在夹中颗粒的粗钢板中,夹在官能布置的冷成形Z-壁素的脂肪砂中,可以跨越9.1米×12.2米,仅需要梁支撑件,并符合当前的钢结构架构。本研究通过使用高保真非线性有限元(FE)模型来研究RCRMSF隔膜的地震行为。已经开发出六种全尺寸悬臂膜片模型来研究不同的RCRMSF配置和最终支持细节的效果。单调和循环加载方案均用于确定隔膜的刚度,强度,能量耗散能力和普通滞后行为。基于FE模型,RCRMSF隔膜的行为主要受到板厚和周边连接细节的影响到支撑钢框架。总的来说,RCRMSF具有足够的隔膜刚度和强度,并且由于其后峰值的效力行为而显示出有利的能量耗散能力。该观察意味着RCRMSF可以作为当前地震设计和构造实践的替代解决方案。

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