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Vision-based technique for bolt-loosening detection in wind turbine tower

机译:基于视觉的风力发电机塔架螺栓松动检测技术

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摘要

In this study, a novel vision-based bolt-loosening monitoring technique is proposed for bolted joints connecting tubular steel segments of the wind turbine tower (WTT) structure. Firstly, a bolt-loosening detection algorithm based on image processing techniques is developed. The algorithm consists of five steps: image acquisition, segmentation of each nut, line detection of each nut, nut angle estimation, and bolt-loosening detection. Secondly, experimental tests are conducted on a lab-scale bolted joint model under various bolt-loosening scenarios. The bolted joint model, which is consisted of a ring flange and 32 sets of bolt and nut, is used for simulating the real bolted joint connecting steel tower segments in the WTT. Finally, the feasibility of the proposed vision-based technique is evaluated by bolt-loosening monitoring in the lab-scale bolted joint model.
机译:在这项研究中,提出了一种新颖的基于视觉的螺栓松动监测技术,用于连接风力涡轮机塔架(WTT)结构的管状钢段的螺栓连接。首先,提出了一种基于图像处理技术的螺栓松动检测算法。该算法包括五个步骤:图像获取,每个螺母的分割,每个螺母的线检测,螺母角度估计以及螺栓松动检测。其次,在各种螺栓松动情况下,在实验室规模的螺栓连接模型上进行实验测试。螺栓连接模型由环形法兰和32套螺栓和螺母组成,用于模拟WTT中连接钢塔段的实际螺栓连接。最后,在实验室规模的螺栓连接模型中,通过螺栓松动监控评估了所提出的基于视觉技术的可行性。

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