Modal and Wave Propagation Analysis of Vibration Tests on a Laboratory Building Model Before and After Damage

IF 4.6 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Chun-Man Liao
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Abstract

Weakened structural stiffness is often a consequence of building damage, particularly after severe events such as earthquakes, where compromised structural performance can pose significant risks. To prevent immediate structural failure, an early warning system is essential, which requires inspection of local components. This research aims to achieve that by exploring the wave propagation analysis method, specifically seismic interferometry. Previous studies have applied this method to building structures, treating them as homogeneous layers of grouped floors. By analyzing the wave travel time along the height of these layers, the fundamental period of the building was estimated. However, this approach did not account for local damage or the variability of structural components, similar to the limitations of vibration-based damage detection methods, which mainly identify global changes. Thus, the goal of this paper is to improve structural health monitoring by examining the sensitivity of wave screening, bridging the gap between nondestructive testing and vibration-based damage detection. A half-scale, seven-story building model, characterized by vertical stiffness irregularity and transverse plan asymmetry, was tested in a laboratory setting. Two vertical sensor arrays were placed near corner columns of different sizes, representing both strong and weak structural areas. These arrays recorded floor accelerations in three directions. The study confirmed the effectiveness of wave propagation analysis for detecting damage along the sensor arrays before and after the earthquake. A transmissibility damage indicator was used to correlate changes in wave velocity, providing a quantitative assessment of damage levels along the wave propagation path.

Abstract Image

某实验室建筑模型损伤前后振动试验的模态与波传播分析
结构刚度减弱通常是建筑损坏的结果,特别是在地震等严重事件之后,结构性能受损可能带来重大风险。为了防止结构立即失效,早期预警系统是必不可少的,这需要检查当地的部件。本研究旨在通过对地震波传播分析方法,特别是地震干涉测量法的探索来实现这一目标。以前的研究已经将这种方法应用于建筑结构,将它们视为同质层的分组地板。通过分析沿这些层的高度的波传播时间,估计了建筑物的基本周期。然而,这种方法没有考虑到局部损伤或结构部件的可变性,类似于基于振动的损伤检测方法的局限性,主要是识别全局变化。因此,本文的目标是通过检查波筛选的灵敏度来改善结构健康监测,弥合无损检测和基于振动的损伤检测之间的差距。在实验室环境中测试了一个半比例的七层建筑模型,该模型具有垂直刚度不规则和横向平面不对称的特点。两个垂直传感器阵列放置在不同大小的角柱附近,分别代表强弱结构区域。这些阵列记录了三个方向的地板加速度。该研究证实了波传播分析在地震前后沿传感器阵列探测损伤的有效性。透射率损伤指标用于关联波速变化,提供沿波传播路径损伤水平的定量评估。
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来源期刊
Structural Control & Health Monitoring
Structural Control & Health Monitoring 工程技术-工程:土木
CiteScore
9.50
自引率
13.00%
发文量
234
审稿时长
8 months
期刊介绍: The Journal Structural Control and Health Monitoring encompasses all theoretical and technological aspects of structural control, structural health monitoring theory and smart materials and structures. The journal focuses on aerospace, civil, infrastructure and mechanical engineering applications. Original contributions based on analytical, computational and experimental methods are solicited in three main areas: monitoring, control, and smart materials and structures, covering subjects such as system identification, health monitoring, health diagnostics, multi-functional materials, signal processing, sensor technology, passive, active and semi active control schemes and implementations, shape memory alloys, piezoelectrics and mechatronics. Also of interest are actuator design, dynamic systems, dynamic stability, artificial intelligence tools, data acquisition, wireless communications, measurements, MEMS/NEMS sensors for local damage detection, optical fibre sensors for health monitoring, remote control of monitoring systems, sensor-logger combinations for mobile applications, corrosion sensors, scour indicators and experimental techniques.
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