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Assessment of structural damage detection methods for steel structures using full-scale experimental data and nonlinear analysis

机译:使用全规模实验数据和非线性分析评估钢结构结构损伤检测方法

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摘要

Rapid structural damage assessment methodologies are essential to properly allocate emergency response and minimize business interruption due to downtime in the aftermath of earthquakes. Within this context, data-driven algorithms supported by sensing capabilities can be potentially employed. In this paper, we evaluate an extensive number of damage indicators computed based on nonmodel-based system identification techniques and wavelet analysis. The efficiency of these indicators to infer the damage state of conventional steel moment-resisting frames (MRFs) and concentrically braced frames (CBFs) is evaluated through the utilization of landmark full-scale shake table experiments that examined the inelastic behavior of such frames at various seismic intensities. The same data is complemented with numerical simulations of multi-story steel MRFs and CBFs with the overarching goal to identify potential limitations and propose refinements in commonly used damage indicators for rapid seismic risk assessment. It is shown that wavelet-based damage sensitive features are well correlated with commonly used story-based engineering demand parameters that control structural and non-structural damage in conventional steel frame buildings.
机译:快速的结构损伤评估方法是必不可少地分配紧急响应,并在地震后期停机时最小化业务中断。在此上下文中,可以可能采用通过传感能力支持的数据驱动算法。在本文中,我们评估了基于非模型的系统识别技术和小波分析计算的广泛数量的损伤指标。通过利用具有标志性满尺寸摇动表实验,评估这些指标的效率来推断出常规钢力矩抵抗框架(MRF)和同心支撑框架(CBFS)的损坏状态,以各种框架地震强度。相同的数据与多层钢铁MRFS和CBF的数值模拟相辅相成,具有总体目标,以确定潜在的限制,并提出常用损伤指标的细化,以获得快速地震风险评估。结果表明,基于小波的损伤敏感特征与常用的基于故事的工程需求参数良好相关,可控制传统钢框架建筑中的结构和非结构损坏。

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