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A UAV-Based Framework for Semi-Automated Thermographic Inspection of Belt Conveyors in the Mining Industry

机译:采矿业皮带输送机的半自动热成像框架框架

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摘要

Frequent and accurate inspections of industrial components and equipment are essential because failures can cause unscheduled downtimes, massive material, and financial losses or even endanger workers. In the mining industry, belt idlers or rollers are examples of such critical components. Although there are many precise laboratory techniques to assess the condition of a roller, companies still have trouble implementing a reliable and scalable procedure to inspect their field assets. This article enumerates and discusses the existing roller inspection techniques and presents a novel approach based on an Unmanned Aerial Vehicle (UAV) integrated with a thermal imaging camera. Our preliminary results indicate that using a signal processing technique, we are able to identify roller failures automatically. We also proposed and implemented a back-end platform that enables field and cloud connectivity with enterprise systems. Finally, we have also cataloged the anomalies detected during the extensive field tests in order to build a structured dataset that will allow for future experimentation.
机译:对工业部件和设备的频繁和准确检查是必不可少的,因为失败可能导致未安排的停机时间,大规模的材料和金融损失甚至危及工人。在采矿业,皮带惰轮或滚轮是这种关键部件的示例。虽然有许多精确的实验室技术来评估滚筒的状况,但公司仍然遇到了可靠和可扩展的程序来检查其现场资产。本文枚举并讨论现有的滚轮检查技术,并提出了一种基于与热成像相机集成的无人空中车辆(UAV)的新方法。我们的初步结果表明,使用信号处理技术,我们能够自动识别滚子故障。我们还提出并实施了一个后端平台,可以与企业系统启用现场和云连接。最后,我们还编目了在广泛的现场测试期间检测到的异常,以便构建将允许未来的实验的结构化数据集。

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