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首页> 外文期刊>Journal of structural engineering >Near-Real-Time Hybrid System Identification Framework for Civil Structures with Application to Burj Khalifa
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Near-Real-Time Hybrid System Identification Framework for Civil Structures with Application to Burj Khalifa

机译:土木结构近实时混合系统识别框架及其在哈利法塔中的应用

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摘要

This study proposes a near-real-time hybrid framework for system identification (SI) of structures using data from structural health monitoring systems. To account for both stationary/weakly nonstationary response under normal conditions (e.g., extratropical winds and/or ambient excitations) and transient/highly nonstationary response under transient events (e.g., earthquakes, windstorms, or time-varying traffic loadings), a hybrid framework is introduced by integrating a new nonstationary SI scheme based on wavelets in tandem with transformed singular value decomposition, and a robust stationary SI scheme called covariance-driven stochastic subspace identification. Extensive numerical simulations as well as analysis of full-scale data are conducted to evaluate the efficacy of the scheme. To facilitate expeditious and convenient utilization of this framework in a practical application, a web-enabled approach and its workflow concerning measurements of the world's tallest building, Burj Khalifa, are presented. This web approach facilitates automated hybrid SI in near real time as an Internet of Things service, which remotely provides end users (e.g., building owners, managers, engineers, and other stakeholders) with timely information on structural performance and ultimately supports the user's need in decision making regarding structural operation. It is demonstrated that natural frequencies and damping ratios are successfully identified from the streaming data in near real time under both winds and earthquakes. The identified system properties are very useful for tracking the structure's health condition in its lifecycle. The resulting probabilistic characterization of the system properties can be used to enhance performance-based structural design and retrofitting. (C) 2015 American Society of Civil Engineers.
机译:这项研究提出了一种使用结构健康监测系统中的数据进行结构系统识别(SI)的近实时混合框架。考虑到正常条件下的平稳/弱非平稳响应(例如,温带风和/或环境激发)和瞬态事件下的瞬态/高度非平稳响应(例如,地震,暴风雨或随时间变化的交通负荷),混合框架通过将基于小波的新的非平稳SI方案与变换的奇异值分解相结合,以及一种称为协方差驱动的随机子空间识别的鲁棒平稳SI方案,引入了SCI。进行了广泛的数值模拟以及对满量程数据的分析,以评估该方案的有效性。为了促进在实际应用中快速方便地使用此框架,提出了一种基于Web的方法及其有关测量世界最高建筑Burj Khalifa的工作流程。这种Web方法可作为物联网服务促进近乎实时的自动化混合SI,它可以为最终用户(例如,建筑物的所有者,经理,工程师和其他利益相关者)远程提供有关结构性能的及时信息,并最终满足用户的需求。有关结构运营的决策。结果表明,在风和地震作用下,可以从流数据中近实时地成功识别出固有频率和阻尼比。所识别的系统属性对于跟踪结构生命周期中的健康状况非常有用。系统属性的结果概率表征可用于增强基于性能的结构设计和翻新。 (C)2015年美国土木工程师学会。

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