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Inverse Filtering for Frequency Identification of Bridges Using Smartphones in Passing Vehicles: Fundamental Developments and Laboratory Verifications

机译:使用智能手机对过往车辆进行桥梁频率识别的逆滤波:基本发展和实验室验证

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摘要

This paper puts forward a novel methodology of employing inverse filtering technique to extract bridge features from acceleration signals recorded on passing vehicles using smartphones. Since the vibration of a vehicle moving on a bridge will be affected by various features related to the vehicle, such as suspension and speed, this study focuses on filtering out these effects to extract bridge frequencies. Hence, an inverse filter is designed by employing the spectrum of vibration data of the vehicle when moving off the bridge to form a filter that will remove the car-related frequency content. Later, when the same car is moving on the bridge, this filter is applied to the spectrum of recorded data to suppress the car-related frequencies and amplify the bridge-related frequencies. The effectiveness of the proposed methodology is evaluated with experiments using a custom-built robot car as the vehicle moving over a lab-scale simply supported bridge. Nine combinations of speed and suspension stiffness of the car have been considered to investigate the robustness of the proposed methodology against car features. The results demonstrate that the inverse filtering method offers significant promise for identifying the fundamental frequency of the bridge. Since this approach considers each data source separately and designs a unique filter for each data collection device within each car, it is robust against device and car features.
机译:提出了一种采用逆滤波技术从使用智能手机的过往车辆记录的加速度信号中提取桥梁特征的新方法。由于在桥梁上行驶的车辆的振动会受到与车辆相关的各种特征(例如悬架和速度)的影响,因此本研究着重于滤除这些影响以提取桥梁频率。因此,当从桥上移开时通过利用车辆的振动数据的频谱来设计逆滤波器,以形成将去除与汽车有关的频率成分的滤波器。后来,当同一辆车在桥上行驶时,此滤波器将应用于记录数据的频谱,以抑制与车有关的频率并放大与桥有关的频率。拟议方法的有效性通过使用定制的机器人车作为实验来评估,该车在实验室规模的简单支撑桥上行驶。已经考虑了汽车的速度和悬架刚度的九种组合,以研究提出的方法针对汽车特征的鲁棒性。结果表明,逆滤波方法为识别电桥的基频提供了重要的希望。由于此方法分别考虑每个数据源并为每辆汽车内的每个数据收集设备设计一个唯一的过滤器,因此它具有强大的设备和汽车功能。

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