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A Guided Wave Transducer with Sprayed Magnetostrictive Powder Coating for Monitoring of Aluminum Conductor Steel-Reinforced Cables

机译:具有喷涂磁致伸缩粉末涂层的引导波传感器,用于监测铝导体钢筋电缆

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摘要

Aluminum conductor steel-reinforced (ACSR) cables are typically used in overhead transmission lines, requiring stringent non-destructive testing owing to the severe conditions they face. Ultrasonic guided wave inspection provides promising online monitoring of the wire breakage of cables with the advantages of high sensitivity, long-range inspection, and full cross-sectional coverage. It is a very popular method to generate and receive guided waves using magnetostrictive and piezoelectric transducers. However, uniformly coupling the acoustic energy excited by transducers into multi-wire structures is always a challenge in the field application of guided waves. Long-term field application of piezoelectric transducers is limited due to the small coupling surface area, localized excitation, and couplant required. Conventional magnetostrictive transducers for steel strand inspection are based on the magnetostrictive effect of the material itself. Two factors affect the transducing performance of the transducers on ACSR cables. On one hand, there is a non-magnetostrictive effect in aluminum wires. On the other hand, the magnetostriction of the innermost steel wires is too weak to generate guided waves. The bias magnetic field is attenuated by the outer layers of aluminum wires. In this paper, an alternative sprayed magnetostrictive powder coating (SMPC) transducer was developed for guided wave generation and detection in ACSR cables. The Fe83Ga17 alloy powder with large magnetostriction was sprayed uniformly on the surfaces of certain sections of the outermost aluminum wires where the transducer would be installed. Experimental investigations were carried out to generate and receive the most commonly used L(0,1) guided waves for wire breakage detection at frequencies of 50 and 100 kHz. The results demonstrate that the discernable reflected waves of the cable end and an artificial defect of three-wire breakage (5.5% reduction in the cable’s cross-sectional area) were received by the transducer with SMPC, which was impossible for the transducer without SMPC. This method makes long-term and online monitoring of ACSR cables feasible due to the high coupling efficiency and good structural surface adaptability.
机译:铝导体钢筋增强(ACSR)电缆通常用于顶置传输线,由于它们面临的严重条件,需要严格的无损检测。超声波引导波检测提供了具有高灵敏度,远程检测和全横截面覆盖的优点的电缆断裂线路监控。使用磁致伸缩和压电换能器产生和接收导向波是一种非常流行的方法。然而,将换能器激发的声能均匀地耦合到多线结构中始终是导向波的现场应用中的挑战。由于需要小的耦合表面积,局部化励磁和偶联剂,压电换能器的长期现场应用受到限制。用于钢绞线检查的常规磁致伸缩换能器基于材料本身的磁致伸缩效果。两个因素会影响换能器在ACSR电缆上的转换性能。一方面,铝线中存在非磁致伸缩效果。另一方面,最内钢丝的磁致伸缩太弱而无法产生引导波。偏置磁场由铝线的外层衰减。本文开发了一种替代的喷涂磁致伸缩粉末涂层(SMPC)换能器,用于引导波动和检测ACSR电缆。具有大磁致伸缩的Fe83Ga17合金粉末均匀地喷洒在最外铝线的某些部分的表面上,其中将安装换能器。进行实验研究以产生和接收最常用的L(0,1)导波,用于在50和100kHz的频率下断线检测。结果表明,电缆端的可辨认的反射波和三断裂的人工缺陷(电缆的横截面积减少5.5%)接收到SMPC,这对于没有SMPC的换能器是不可能的。该方法由于高耦合效率和良好的结构表面适应性而使ACSR电缆的长期和在线监测可行。

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