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Multihazard fragility assessment of steel-concrete composite frame structures with buckling-restrained braces subjected to combined earthquake and wind

机译:钢筋混凝土复合框架结构的多血清脆性评估与屈曲抑制的围绕地震和风

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摘要

Engineering structures may inevitably be subjected to multiple natural hazards (such as earthquakes and winds) during their life cycles. This paper presents an efficient multihazard fragility methodology based on the structural demand models. The approach is applied to two steel-concrete composite frame structures (SCCFSs), with and without buckling-restrained braces (BRBs), aiming to evaluate the effect of BRBs on controlling the structural responses and fragilities under the combined earthquake and wind loads. In total, 120 earthquake records are selected, and 120 sets of wind drag force time histories are simulated by considering the spatial variation along the height of the exemplar building. The combined "earthquake-wind" events are stochastically assembled, in which the intensities of these two hazards are modeled using the Monte Carlo simulation. The OpenSees platform is employed to calculate the dynamic responses of the SCCFSs with and without BRBs under simultaneous earthquake and wind loads. The goodness of fits of the first-, second-, and third-order polynomial in predicting the structural demand are evaluated, and the optimal polynomial is employed to generate the multihazard fragility surfaces at different damage states. The numerical results indicate that the structural responses and fragilities under the combined earthquake and wind are higher than those under an individual hazard, while the influencing extent varies with the relative intensities of these two hazards. The impact of multiple hazards and the control effect of BRBs on the structural responses and fragilities are systematically quantified and discussed in details.
机译:在生命周期期间,工程结构可能不可避免地受到多种自然危害(如地震和风)。本文介绍了基于结构需求模型的高效多血清脆弱方法。该方法适用于两个钢混凝土复合框架结构(SCCFS),具有屈曲抑制的括号(BRBS),旨在评估BRBS对控制组合地震和风力负荷下的结构响应和磁带的影响。总共选择120个地震记录,通过考虑沿着示例性建筑的高度的空间变化来模拟120组风力拖曳力时间历史。组合的“地震风”事件是随机组装的,其中使用蒙特卡罗模拟模拟这两个危险的强度。 Opensees平台用于计算SCCFSS的动态响应,并在同时地震和风力载量下提供BRB。评估在预测结构需求中的第一,第二和三阶多项式的拟合的良好,并且采用最佳多项式在不同损伤状态下产生多血清脆弱表面。数值结果表明,综合地震和风下的结构响应和磁带高于个人危害的结构响应和磁带,而影响程度随着这两个危害的相对强度而变化。在系统量化和讨论细胞对结构反应和磁带的多种危害和BRB对结构反应和脆性的影响。

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  • 来源
    《The structural design of tall buildings》 |2020年第11期|e1746.1-e1746.19|共19页
  • 作者单位

    Dalian Univ Technol Fac Infrastruct Engn State Key Laboratoy Coastal & Offshore Engn 2 Linggong Rd Dalian 116024 Peoples R China|Shenyang Jianzhu Univ Sch Civil Engn Shenyang Peoples R China;

    Dalian Univ Technol Fac Infrastruct Engn State Key Laboratoy Coastal & Offshore Engn 2 Linggong Rd Dalian 116024 Peoples R China;

    Dalian Univ Technol Fac Infrastruct Engn State Key Laboratoy Coastal & Offshore Engn 2 Linggong Rd Dalian 116024 Peoples R China;

    Dalian Univ Technol Fac Infrastruct Engn State Key Laboratoy Coastal & Offshore Engn 2 Linggong Rd Dalian 116024 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    buckling-restrained braces; earthquake; multihazard fragility; steel-concrete composite frame structure; wind;

    机译:屈曲束缚的牙套;地震;多血清脆性;钢混凝土复合框架结构;风;

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