Environmental Effect Removal Based Structural Health Monitoring in the Internet of Things

Hongyang Zhang, Junqi Guo, Xiaobo Xie, R. Bie, Yunchuan Sun
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引用次数: 35

Abstract

Internet of things (IoT) has provided a promising choice for structural health monitoring (SHM) recently. In vibration-based structural health monitoring, structural features which are extracted from periodically spaced measurement using sensors are subject to variable environmental conditions. This paper proposes an environmental effect removal based structural health monitoring scheme in an IoT environment. Principal component analysis (PCA) is employed to eliminate environment effects from sensor data which contain both real vibration feature of architectural structure and environmental interferences. After environmental effects removal, Hilbert-Huang transformation (HHT) which is a classical method for signal analysis is used for structural health analysis and monitoring. Simulation results show that the proposed scheme achieves high accuracy in structural health monitoring and robust performance against environmental interferences.
物联网中基于环境影响去除的结构健康监测
近年来,物联网(IoT)为结构健康监测(SHM)提供了一个有前景的选择。在基于振动的结构健康监测中,利用传感器从周期性间隔测量中提取的结构特征受到不同环境条件的影响。提出了一种物联网环境下基于环境影响去除的结构健康监测方案。采用主成分分析(PCA)对既有建筑结构真实振动特征又有环境干扰的传感器数据进行剔除。将希尔伯特-黄变换(Hilbert-Huang transformation, HHT)作为信号分析的经典方法,在去除环境影响后,用于结构健康分析和监测。仿真结果表明,该方法具有较高的结构健康监测精度和抗环境干扰的鲁棒性。
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