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Impact of Diaphragm Behavior on the Seismic Design of Low-Rise Steel Buildings

机译:膜片性能对高层钢结构抗震设计的影响

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Modern building codes allow engineers to use reduced seismic loads in design provided that the seismic load resisting system (SLRS) of the structure is adequately designed and detailed to withstand strong ground shaking through ductile inelastic response. This approach has been adopted by the North American model codes, which typically include special provisions to achieve satisfactory inelastic seismic performance. Single-story buildings often incorporate a steel roof deck diaphragm that is relied on to transfer lateral loads to the vertical bracing bents. The vertical braces are usually selected as the energy dissipating fuse element, while the diaphragm and other elements in the SLRS should be designed such that their capacity exceeds the nominal resistance of the braces. Steel bracing members designed for compression inherently possess significant reserve strength when loaded in tension, which means that large brace tension loads must be considered in the design of the surrounding protected structural components. Capacity design seismic provisions have led to the need for much thicker roof deck panels and more closely spaced diaphragm connection patterns compared with past practice in Canada. This paper describes the current U.S. seismic design approach and provides examples as it is applied to single-story buildings and their diaphragms. An overview of the related aspects of an ongoing research project on the flexibility and ductility of the roof diaphragm in low-rise steel buildings is also included.
机译:现代建筑规范允许工程师在设计中使用减少的地震载荷,前提是结构的抗地震载荷系统(SLRS)经过适当设计和详细设计,可以承受通过延性非弹性响应引起的强烈地面震动。北美模型规范已采用了这种方法,该模型规范通常包括特殊的规定,以实现令人满意的非弹性抗震性能。单层建筑通常包含钢制屋顶甲板隔板,依靠该隔板将侧向载荷传递到垂直支撑弯头。通常选择垂直支架作为能量消散保险丝元件,而SLRS中的膜片和其他元件应设计成其容量超过支架的标称电阻。当承受拉力时,设计用于压缩的钢支撑构件固有地具有显着的储备强度,这意味着在设计周围的受保护结构部件时必须考虑较大的支撑拉力载荷。与加拿大以往的做法相比,能力设计中的抗震规定导致需要更厚的屋顶面板和更紧密间隔的隔膜连接方式。本文介绍了当前的美国地震设计方法,并提供了应用于单层建筑物及其隔板的示例。还包括对正在进行的有关低层钢结构建筑中屋顶隔板的柔韧性和延展性研究项目相关方面的概述。

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