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Strain Life Analysis at Low-Cycle Fatigue on Concentrically Braced Steel Structures with RHS Shape Braces

机译:具有RHS形支撑的同心支撑钢结构低周疲劳时的应变寿命分析

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摘要

The seismic performance of concentrically braced frame systems, with braces designed in order to buckle inelastically under a severe earthquake loading, mainly depends on the hvsteretic response of the steel braces. As observed in past earthquakes and in experimental programs available in the literature, rectangular hollow section shape braces are more susceptible to early fatigue failures compared to other section shapes. This research, in particular, is focused on the evaluation of the hysteretic response of rectangular hollow section shape braces through appropriate low-cycle fatigue model implemented in a fiber-based element computer program. Firstly, the main influence regarding the number of integration points, number of subdivisions for single brace members, and initial camber on the local response of fiber-based inelastic beam-column element models based on force formulation is investigated. Secondly, the peak strain distribution is used to calibrate the input parameters of the low-cycle fatigue material model. Several data obtained from past experimental programs developed at the Universities of Montreal, Washington, and Calgary are also considered. Finally, an eight-story steel building is designed in order to evaluate the performance levels through incremental time history analyses.
机译:同心支撑框架系统的抗震性能主要取决于钢支撑的滞后响应,其中支撑设计为在严重地震载荷下无弹性弯曲。正如在过去的地震和文献中提供的实验程序中所观察到的,与其他截面形状相比,矩形空心截面形状支撑更容易遭受早期疲劳破坏。这项研究特别致力于通过在基于纤维的元素计算机程序中实现的适当的低周疲劳模型来评估矩形空心截面形状支撑的滞后响应。首先,研究了基于积分公式的基于积分的数量,单个支撑构件的细分数量以及初始弯度对基于纤维的非弹性梁柱单元模型局部响应的主要影响。其次,峰值应变分布用于校准低周疲劳材料模型的输入参数。还考虑了从蒙特利尔,华盛顿和卡尔加里大学开发的过去实验计划中获得的一些数据。最后,设计了一个八层的钢结构建筑,以便通过增量时间历史分析来评估性能水平。

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