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Reliable Structural Failure Detection in Eye Bolts using Reflectometry Signals

机译:使用反射信号信号可靠的结构故障检测眼螺栓

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Eye bolts are critical elements of the electrical power distribution systems and structural failures on such devices can lead to service interruption, financial losses and hazard to civilians. Due to their installation characteristics, their common maintenance routine is costly, time-consuming and ineffective, because it depends on the de-energization of the circuit, disassembly and visual inspection of the bolts. In this paper, a new approach for detecting structural failures on eye bolts is proposed. An intelligent system based on an artificial neural network is used to process the reflectometry signals measured in order to detect the condition of the eye bolt automatically. The high accuracy in the experimental results suggests that the method proposed can improve the efficiency of the preventive maintenance routine performed on eye bolts, and, consequently, increase the reliability of the power distribution systems.
机译:眼螺栓是电力分配系统的关键元素,这些设备上的结构故障可能导致服务中断,金融损失和对平民的危害。由于其安装特性,它们的常见维护程序是昂贵的,耗时和无效的,因为它取决于电路的断电,拆卸和螺栓的目视检查。本文提出了一种检测眼螺栓结构故障的新方法。基于人工神经网络的智能系统用于处理测量的反射计数器,以便自动检测眼睛螺栓的状态。实验结果中的高精度表明,所提出的方法可以提高对眼螺栓进行的预防性维护程序的效率,从而提高配电系统的可靠性。

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