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用于经济高效检测工业设备污垢的无线且可电池供电的物联网平台。

Wireless and battery-operatable IoT platform for cost-effective detection of fouling in industrial equipment.

作者信息

Korsimaa Julius, Weber Martin, Salminen Petteri, Mustonen Joonas, Iablonskyi Denys, Hæggström Edward, Klami Arto, Salmi Ari

机构信息

Electronics Research Laboratory, Department of Physics, University of Helsinki, Helsinki, Finland.

Department of Computer Science, University of Helsinki, Helsinki, Finland.

出版信息

Sci Rep. 2024 Jun 18;14(1):14084. doi: 10.1038/s41598-024-64675-4.

Abstract

We present a novel internet of things (IoT) sensing platform that uses helical propagation paths of ultrasonic guided waves (UGWs) for structural health monitoring. This wireless sensor network comprises multiple identical sensor units that communicate with a host PC. The units have dedicated hardware to both generate and receive ultrasonic signals, as well as RF signals for use in triggering the sensors. The system was developed for monitoring and sensing pipelines and similar structures in real-time to facilitate interactive sensing. For accurate sensing with a limited number of arbitrarily scattered sensors, we obtain information from all sensor pairs and analyze helical propagation paths in addition to the commonly used shortest paths. UGWs can propagate long distances along the walls of pipelines, and their propagation velocity depends directly on the thickness of the waveguide, and is affected by energy leakage and mass loading. In this paper, we evaluated the network by utilizing it to detect fouling. The network could be adapted for further ultrasonic measurement tasks, e.g., measuring wall thicknesses or monitoring defects with pulse-echo methods.

摘要

我们提出了一种新型的物联网(IoT)传感平台,该平台利用超声导波(UGW)的螺旋传播路径进行结构健康监测。这个无线传感器网络由多个与主机PC通信的相同传感器单元组成。这些单元具有专门的硬件,用于生成和接收超声信号以及用于触发传感器的射频信号。该系统是为实时监测和传感管道及类似结构而开发的,以促进交互式传感。为了在使用数量有限的任意分散传感器的情况下进行精确传感,我们除了常用的最短路径外,还从所有传感器对中获取信息并分析螺旋传播路径。超声导波可以沿着管道壁传播很长距离,其传播速度直接取决于波导的厚度,并受能量泄漏和质量负载的影响。在本文中,我们通过利用该网络检测污垢来对其进行评估。该网络可适用于进一步的超声测量任务,例如,用脉冲回波法测量壁厚或监测缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31fa/11189449/6e8fb332a506/41598_2024_64675_Fig5_HTML.jpg

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