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Multi-output modal identification of landmark suspension bridges with distributed smartphone data: Golden Gate Bridge

机译:具有分布式智能手机数据的地标悬架桥梁多输出模态识别:金门桥

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摘要

Bridge infrastructure assets possess ultimate value for safe, resilient, and sustainable transportation networks. Monitoring of bridge structural characteristics is an essential process to minimize damage-associated risk but requires expensive sensor instrumentation, manpower, and expert intervention. Besides, certain bridges' vitality exceeds practical needs due to their landmark identity with symbolic value. In this study, an economical and consumer-grade-distributed sensor array is utilized to determine dynamic characteristics of the Golden Gate Bridge, the most prominent landmark suspension bridge in the United States. The bridge is instrumented with multiple smartphones throughout the main and the side spans to collect vibration data without obstructing pedestrian or vehicle traffic. The accelerometer data collected under clock distribution are processed to retrieve modal frequencies and mode shapes of the bridge. Asynchronous and sampling-deficient sensing approaches are adopted to extract the bridge modal characteristics despite the low vibration frequency and amplitude of the long-span suspension bridge combined with limited sensing and acquisition quality of the smartphones. The findings show significant correlation with high-fidelity reference instrumentations and present the largest-scale civil infrastructure monitoring example utilizing smartphone technology.
机译:桥梁基础设施资产具有安全,弹性和可持续运输网络的最终价值。监测桥梁结构特征是最大限度地减少损坏风险,但需要昂贵的传感器仪器,人力和专家干预的必要过程。此外,某些桥梁的活力因其具有象征值的地标特性而超过实际需求。在这项研究中,利用经济和消费级分布式传感器阵列来确定金门桥的动态特性,这是美国最着名的地标悬架桥。该桥在整个主要的多个智能手机和侧面跨度介绍,以收集振动数据而不阻碍行人或车辆交通。处理在时钟分布下收集的加速度计数据以检索桥的模态频率和模式形状。采用异步和采样缺陷的感测方法来提取桥式模态特性,尽管长跨度悬架桥的振动频率和幅度的振动频率和振幅结合了智能手机的有限感测和采集质量。该研究结果显示出与高保真参考仪器的显着相关性,并提供了利用智能手机技术的最大规模的民事基础设施监测示例。

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