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基于无线智能传感器的高杆照明灯具风致振动监测

Wind-Induced Vibration Monitoring of High-Mast Illumination Poles Using Wireless Smart Sensors.

作者信息

Shaheen Mona, Li Jian, Bennett Caroline, Collins William

机构信息

Department of Civil, Environmental and Architectural Engineering, The University of Kansas, Lawrence, KS 66045, USA.

出版信息

Sensors (Basel). 2024 Apr 14;24(8):2506. doi: 10.3390/s24082506.

Abstract

This paper describes the use of wireless smart sensors for examining the underlying mechanism for the wind-induced vibration of high-mast illumination pole (HMIP) structures. HMIPs are tall, slender structures with low inherent damping. Video recordings of multiple HMIPs showed considerable vibrations of these HMIPs under wind loading in the state of Kansas. The HMIPs experienced cyclic large-amplitude displacements at the top, which can produce high-stress demand and lead to fatigue cracking at the bottom of the pole. In this study, the natural frequencies of the HMIP were assessed using pluck tests and finite element modeling, and the recorded vibration frequencies were obtained through computer vision-based video analysis. Meanwhile, a 30.48 m tall HMIP with three LED luminaires made of galvanized steel located in Wakeeney, Kansas, was selected for long-term vibration monitoring using wireless smart sensors to investigate the underlying mechanism for the excessive wind-induced vibrations. Data analysis with the long-term monitoring data indicates that while vortex-induced vibration occurs frequently at relatively low amplitude, buffeting-induced vibration was the leading cause of the excessive vibrations of the monitored HMIP. The findings provide crucial information to guide the design of vibration mitigation strategies for these HMIP structures.

摘要

本文描述了使用无线智能传感器来研究高杆照明杆(HMIP)结构风致振动的潜在机制。高杆照明杆是细长结构,固有阻尼较低。多个高杆照明杆的视频记录显示,在堪萨斯州的状态下,这些高杆照明杆在风荷载作用下有明显振动。高杆照明杆顶部经历周期性大幅位移,这会产生高应力需求并导致杆底部出现疲劳裂纹。在本研究中,通过弹拨试验和有限元建模评估了高杆照明杆的固有频率,并通过基于计算机视觉的视频分析获得记录的振动频率。同时,选择了位于堪萨斯州韦基尼的一根30.48米高、带有三个由镀锌钢制成的LED灯具的高杆照明杆,使用无线智能传感器进行长期振动监测,以研究过度风致振动的潜在机制。对长期监测数据的分析表明,虽然涡激振动在相对较低幅度时频繁发生,但抖振引起的振动是监测的高杆照明杆过度振动的主要原因。这些发现为指导这些高杆照明杆结构的减振策略设计提供了关键信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4c7d/11055170/33c0083244c8/sensors-24-02506-g001.jpg

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